{"id":77769,"date":"2025-08-18T16:04:28","date_gmt":"2025-08-18T16:04:28","guid":{"rendered":"https:\/\/www.newsbeep.com\/au\/77769\/"},"modified":"2025-08-18T16:04:28","modified_gmt":"2025-08-18T16:04:28","slug":"sustainable-dna-polysaccharide-hydrogels-as-recyclable-bioplastics","status":"publish","type":"post","link":"https:\/\/www.newsbeep.com\/au\/77769\/","title":{"rendered":"Sustainable DNA-polysaccharide hydrogels as recyclable bioplastics"},"content":{"rendered":"<p>The bioplastics are produced from naturally abundant biomass DNA (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1a i<\/a>) and polysaccharides (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1a ii<\/a>), and the polysaccharide Dex is used as an example for Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1a ii<\/a>. The eco-friendly multi-closed-loop life cycle of the produced bioplastics is illustrated in Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1b<\/a>, including production, recycling, and end-of-life treatment. These biomass DNA and polysaccharides are from bio-renewable resources that are widely present in creatures, plants, germs, and others (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1a i<\/a>)<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 26\" title=\"Gandini, A., Lacerda, T. M., Carvalho, A. J. F. &amp; Trovatti, E. Progress of Polymers from Renewable Resources: Furans, Vegetable Oils, and Polysaccharides. Chem. Rev. 116, 1637&#x2013;1669 (2016).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR26\" id=\"ref-link-section-d44744325e928\" rel=\"nofollow noopener\" target=\"_blank\">26<\/a>. The chemical reaction and the preparation method are illustrated in Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1b ii<\/a> and 1b iii, respectively. Taking Dex as an example, the synthetic process involved Malaprade oxidation of vicinal diols using NaIO4 (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1a ii<\/a>) and a subsequent Schiff base reaction of the resulting aldehydes with the abundant amine groups of the DNA nucleobases (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1a i<\/a>) to form imine bonds under aqueous conditions. Both steps were conducted at room temperature without the requirement of inert gas protection. The hydrogel is characterized by DNA and polysaccharide chains connected through imine bonds (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1b ii<\/a>). The imine bonds are applied due to their well-known reversible bonding and de-bonding characteristics in water-based mild conditions<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Belowich, M. E. &amp; Stoddart, J. F. Dynamic Imine Chemistry. Chem. Soc. Rev. 41, 2003&#x2013;2024 (2012).\" href=\"#ref-CR27\" id=\"ref-link-section-d44744325e947\">27<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Wanasinghe, S. V., Dodo, O. J. &amp; Konkolewicz, D. Dynamic Bonds: Adaptable Timescales for Responsive Materials. Angew. Chem. Int. Ed. 61, e202206938 (2022).\" href=\"#ref-CR28\" id=\"ref-link-section-d44744325e947_1\">28<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 29\" title=\"Chakma, P. &amp; Konkolewicz, D. Dynamic Covalent Bonds in Polymeric Materials. Angew. Chem. Int. Ed. 58, 9682&#x2013;9695 (2019).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR29\" id=\"ref-link-section-d44744325e950\" rel=\"nofollow noopener\" target=\"_blank\">29<\/a>, and such dynamical bindings are widely utilized to endow plastics, including polyester-<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 30\" title=\"Fukuda, K., Shimoda, M., Sukegawa, M., Nobori, T. &amp; Lehn, J. M. Doubly Degradable Dynamers: Dynamic Covalent Polymers Based on Reversible Imine Connections and Biodegradable Polyester Units. Green. Chem. 14, 2907&#x2013;2911 (2012).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR30\" id=\"ref-link-section-d44744325e954\" rel=\"nofollow noopener\" target=\"_blank\">30<\/a>, epoxy-<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 31\" title=\"Zhao, S. &amp; Abu-Omar, M. M. Recyclable and Malleable Epoxy Thermoset Bearing Aromatic Imine Bonds. Macromolecules 51, 9816&#x2013;9824 (2018).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR31\" id=\"ref-link-section-d44744325e958\" rel=\"nofollow noopener\" target=\"_blank\">31<\/a>, and vanillin-based plastics<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 32\" title=\"Xu, Y., Odelius, K. &amp; Hakkarainen, M. Photocurable, Thermally Reprocessable, and Chemically Recyclable Vanillin-Based Imine Thermosets. ACS Sustain. Chem. Eng. 8, 17272&#x2013;17279 (2020).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR32\" id=\"ref-link-section-d44744325e962\" rel=\"nofollow noopener\" target=\"_blank\">32<\/a>, with chemical recycling capabilities. Previous work to crosslink DNA and ionomers involves the mass use of N,N-dimethylformamide (a 10-to-1 mass ratio to ionomers), a relatively high reaction temperature of 130 oC, and an inert gas environment of nitrogen<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 24\" title=\"Wang, D. et al. Transformation of Biomass DNA into Biodegradable Materials from Gels to Plastics for Reducing Petrochemical Consumption. J. Am. Chem. Soc. 142, 10114&#x2013;10124 (2020).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR24\" id=\"ref-link-section-d44744325e975\" rel=\"nofollow noopener\" target=\"_blank\">24<\/a>. In comparison, the reactions in the present study are water-based and proceed at room temperature under ambient atmosphere, thereby reducing the energy consumption and potential negative environmental impacts during the synthesis process. More importantly, the bioplastics exhibit three closed-loops (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1 b<\/a>): (1) physical recycling through water-based healing and remolding (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1b iii<\/a>), (2) chemical recycling enabled by reversible imine bonds (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1b ii<\/a>), and (3) a life-cycle loop spanning bio-renewable resources, product formation, and decomposition into biodegradable waste (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1b i-iv<\/a>). This multi-closed-loop feature was not reported in previous DNA-based bioplastics<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 24\" title=\"Wang, D. et al. Transformation of Biomass DNA into Biodegradable Materials from Gels to Plastics for Reducing Petrochemical Consumption. J. Am. Chem. Soc. 142, 10114&#x2013;10124 (2020).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR24\" id=\"ref-link-section-d44744325e992\" rel=\"nofollow noopener\" target=\"_blank\">24<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 25\" title=\"Han, J., Guo, Y., Wang, H., Zhang, K. &amp; Yang, D. Sustainable Bioplastic Made from Biomass DNA and Ionomers. J. Am. Chem. Soc. 143, 19486&#x2013;19497 (2021).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR25\" id=\"ref-link-section-d44744325e995\" rel=\"nofollow noopener\" target=\"_blank\">25<\/a>, while it is important to maximize the recyclability and minimize the environmental threat posed by microplastics. The combination of sustainable manufacturing and excellent recyclability plays a crucial role in reducing negative environmental impacts and lowering carbon emissions, as demonstrated in the following LCA. In addition, the bioplastics are demonstrated with a range of highly desirable attributes in the following discussion, including (bio)degradability, scalability, precision in nanoscale fabrication, biocompatibility, edibility, and resistance to organic solvents (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1c<\/a>).<\/p>\n<p>Fig. 1: Schematic of the bioplastic and its closed-loop cycles.<a class=\"c-article-section__figure-link\" data-test=\"img-link\" data-track=\"click\" data-track-label=\"image\" data-track-action=\"view figure\" href=\"https:\/\/www.nature.com\/articles\/s41467-025-62682-1\/figures\/1\" rel=\"nofollow noopener\" target=\"_blank\"><img decoding=\"async\" aria-describedby=\"Fig1\" src=\"https:\/\/www.newsbeep.com\/au\/wp-content\/uploads\/2025\/08\/41467_2025_62682_Fig1_HTML.png\" alt=\"figure 1\" loading=\"lazy\" width=\"685\" height=\"494\"\/><\/a><\/p>\n<p>a Chemical compositions of biomass (i) DNA and (ii) polysaccharides using dextran and oxidized dextran as examples. b Illustration of the multiple closed loop cycles of the DNA-polysaccharides-based bioplastics including the first cycle from (i) bio-renewable resources, (ii) chemical reaction, (iii) materials molding, to (iv) biodegradation, the second cycle of (ii) imine bond-based reversible chemical reaction, and (iii) the third cycle of a water-recyclable molding. c Highlights of the bioplastic merits.<\/p>\n<p>After the oxidation of Dex, highly reactive aldehyde groups are generated, which can conjugate with amines of DNA under mild conditions, resulting in the formation of a Dex-DNA composite. The successful bonding between Dex and DNA chains is supported by nuclear magnetic resonance spectroscopy (NMR) (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S1<\/a>&#8211;<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S10<\/a>), Fourier transform infrared (FTIR) spectroscopy (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S11<\/a>), and rheology measurements (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2a<\/a>). In the \u00b9H NMR spectrum of oxidized Dex (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S1<\/a>), the aldehyde group shows a characteristic signal at ~\u03b4 9.7 ppm<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 33\" title=\"Maia, J., Ferreira, L., Carvalho, R., Ramos, M. A. &amp; Gil, M. H. Synthesis and Characterization of New Injectable and Degradable Dextran-Based Hydrogel. Polymer 46, 9604&#x2013;9614 (2005).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR33\" id=\"ref-link-section-d44744325e1049\" rel=\"nofollow noopener\" target=\"_blank\">33<\/a>. No characteristic signal is observed at this region from natural-derived DNA (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S2<\/a>). Upon the formation of Dex-DNA, an additional signal is obtained at \u03b4 9.2\u20139.3 ppm (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S3<\/a>), suggesting the formation of imine groups (RN\u2009=\u2009CHR\u2019), which is also observed in recycled sample (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S4<\/a>). As amine group is on N6, N4 and N2 positions of adenine (A), cytosine (C) and guanine (G), respectively, but not thymine (T) (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig1\" rel=\"nofollow noopener\" target=\"_blank\">1a i<\/a>), to determine which bases interact with the aldehyde groups of Dex, DNA oligomers of nine bases (A9, C9 and G9) were used, respectively, to react with Dex. Compared to the \u00b9H NMR spectra of A9, C9, G9 (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S5<\/a>, <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S6<\/a>, <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S7<\/a>) and Dex (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S1<\/a>), the formed Dex-A9, Dex-C9 and Dex-G9 exhibit additional signals at ~\u03b4 9.25, 9.26, 9.27 ppm (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S8<\/a>, <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S9<\/a>, <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S10<\/a>), respectively, corresponding to the formation of imine groups.<\/p>\n<p>Fig. 2: Preparation and recycling of Dex-DNA bioplastics.<a class=\"c-article-section__figure-link\" data-test=\"img-link\" data-track=\"click\" data-track-label=\"image\" data-track-action=\"view figure\" href=\"https:\/\/www.nature.com\/articles\/s41467-025-62682-1\/figures\/2\" rel=\"nofollow noopener\" target=\"_blank\"><img decoding=\"async\" aria-describedby=\"Fig2\" src=\"https:\/\/www.newsbeep.com\/au\/wp-content\/uploads\/2025\/08\/41467_2025_62682_Fig2_HTML.png\" alt=\"figure 2\" loading=\"lazy\" width=\"685\" height=\"528\"\/><\/a><\/p>\n<p>a Rheology characterizations of Dex (i), DNA (ii), and Dex-DNA (iii). b Photographs of the Dex-5%DNA hydrogels with different Dex contents (i), as well as their bioplastic products for original (ii), 1st (iii), and 2nd (iv) recycling. c Illustration of a typical water-processable recycling process. d Selective recycling processes for mixed plastics consisting of bioplastics, polyethylene (PE), and polystyrene (PS). e Representative SEM images of the bioplastics produced through \u201320 oC (i) and \u2212196 oC (ii) freeze-drying, as well as without freeze-drying (room temperature, iii). Three independent experiments were conducted with similar results. f Analysis of Young\u2019s modulus of the bioplastics with the impact of Dex contents (i), recycling cycles (ii), and microstructures (iii). Data are presented as mean\u00b1standard deviation (n\u2009=\u20093). The scale bar is 1\u2009cm in (b-d) and 50 \u03bcm in (e).<\/p>\n<p>IR measurements further validate the reversible imine bond formation. In the FTIR spectra (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S11<\/a>), the \u2212C=O stretching vibration (1650\u2009cm\u207b\u00b9, 1631\u2009cm\u207b\u00b9) and \u2212N-H stretching vibration (3332\u2009cm\u207b\u00b9, 3210\u2009cm\u207b\u00b9) are observed on the DNA. Compared to Dex, the oxidized Dex exhibits a low-intensity signal at 1732\u2009cm\u22121, corresponding to the \u2212C=O stretching from aldehyde groups<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 33\" title=\"Maia, J., Ferreira, L., Carvalho, R., Ramos, M. A. &amp; Gil, M. H. Synthesis and Characterization of New Injectable and Degradable Dextran-Based Hydrogel. Polymer 46, 9604&#x2013;9614 (2005).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR33\" id=\"ref-link-section-d44744325e1148\" rel=\"nofollow noopener\" target=\"_blank\">33<\/a>. Upon the formation of Dex-DNA composite, \u2212C=N stretching vibration of Schiff base exhibits a characteristic peak at 1654\u2009cm\u207b\u00b9, which is also observed in the recycled sample. The reversible nature of imine bonds offers significant potential for chemical recycling<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Belowich, M. E. &amp; Stoddart, J. F. Dynamic Imine Chemistry. Chem. Soc. Rev. 41, 2003&#x2013;2024 (2012).\" href=\"#ref-CR27\" id=\"ref-link-section-d44744325e1152\">27<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Wanasinghe, S. V., Dodo, O. J. &amp; Konkolewicz, D. Dynamic Bonds: Adaptable Timescales for Responsive Materials. Angew. Chem. Int. Ed. 61, e202206938 (2022).\" href=\"#ref-CR28\" id=\"ref-link-section-d44744325e1152_1\">28<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 29\" title=\"Chakma, P. &amp; Konkolewicz, D. Dynamic Covalent Bonds in Polymeric Materials. Angew. Chem. Int. Ed. 58, 9682&#x2013;9695 (2019).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR29\" id=\"ref-link-section-d44744325e1155\" rel=\"nofollow noopener\" target=\"_blank\">29<\/a>, complemented by water-(re)processability under mild conditions, while it compromises the bioplastic stability in humid\/acidic environments, as discussed in the following sections. Moreover, we note that reversible imine bonds support chemical recycling, while other factors including chain composition, polymer crystallinity, particle size and environmental factors, such as enzymes, exposure to sunlight and mechanical abrasion (e.g., through wave action), also play key roles in polymer degradation and recycling.<\/p>\n<p>Bioplastic samples are named according to their compositions and the solid weight percentages in the hydrogel state, unless otherwise specified. For example, 10%Dex-5%DNA refers to bioplastics prepared from hydrogels containing 10\u2009wt.% oxidized Dex and 5\u2009wt.% DNA. Rheology study reveals that the 10% Dex behaves as a liquid with G\u2019\u2009\u2248\u2009G\u201d\u2009\u2248\u20090.1\u2009Pa (G\u2019, storage modulus, G\u201d, loss modulus), and the 5% DNA forms a hydrogel with G\u2019 value of ~50\u2009Pa and G\u201d value of ~20\u2009Pa (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2a i and ii<\/a>). In contrast, the formed 10%Dex-5%DNA composite exhibits as a hydrogel with significantly enhanced mechanical properties, showing G\u2019 and G\u201d values of ~170\u2009Pa and 40\u2009Pa, respectively (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2a iii<\/a>). The increased G\u2019 and G\u201d values indicate a higher degree of crosslinking, attributed to the formation of imine bonds, cooperatively stabilized by H-bonds, between Dex and DNA. The formulation is proven effective for Dex-5%DNA hydrogels across a broad range of Dex concentrations, from 2% to 20% (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2b i<\/a>). DNA is shown to be uniformly distributed within the Dex-DNA hydrogel, as evidenced by green fluorescence imaging (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S12<\/a>). Well-shaped bioplastic products could be derived from hydrogel composites (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2b ii<\/a>). Increasing the Dex content in the composite results in hydrogels with higher G\u2019 and G\u201d values (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S13a<\/a>). These hydrogels exhibit a reduction in G\u2019 value with elevated temperature from 20 to 80 oC (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S13b<\/a>). Moreover, the generated Dex-DNA bioplastics can be successfully recycled and re-shaped into various configurations (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2b iii and iv<\/a>). Notably, the solid content in the hydrogel plays a crucial role in the shrinkage of generated bioplastics. For example, a bioplastic sample with a 4% solid content (2% Dex and 2% DNA) showed significant shrinkage within 60\u2009minutes after transferring from freeze dryer to atmospheric conditions (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S14<\/a>), which is ascribed to the lack of sufficient solid to support the porous structures under ambient atmosphere.<\/p>\n<p>A typical closed-loop recycling process is illustrated in Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2c<\/a>, using a knife-like 10%Dex-5%DNA bioplastic as an example (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2c i<\/a>). The bioplastic waste (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2c ii<\/a>) is recycled by adding water (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2c iii<\/a>), followed by a mixing process to fully dissolve the bioplastics to form a hydrogel (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2c iv<\/a>). The recycled hydrogel was used to produce solid bioplastic products through the same freeze-drying and molding process. Both the original and recycled bioplastics are observed with the characteristic imine signals at \u03b4 9.2\u20139.3 ppm and 1654\u2009cm\u207b\u00b9 of the \u2212C=N stretching vibration in the \u00b9H NMR (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S4<\/a>) and FTIR spectra (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S11<\/a>), respectively, suggesting the recyclability. Importantly, the water-processable recycling capability allows the bioplastics to be recovered from mixed plastic wastes, a common challenge in daily plastic recycling. We demonstrate this by mixing the bioplastics with two widely used commercial plastics: polystyrene (PS) and polyethylene (PE) debris (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2d i<\/a>). The recycling is carried out through selective solvent dissolution. Water and chloroform are used to selectively recover the bioplastics and PS from the mixed plastics. The bioplastics swell in water (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2d ii<\/a>) and fully dissolve after approximately 24\u2009hours (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2d iii<\/a>). The solid and liquid components are separated by filtration, and the recycled bioplastic solid is obtained by drying the liquid phase (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2d iv<\/a>). The remaining solid is further separated by adding chloroform (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2d v<\/a>). The PS plastic debris dissolves completely after ~24\u2009hours (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2d vi<\/a>). Recovered PS and PE solids are then obtained from the liquid and solid phases, respectively (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2d vii<\/a>).<\/p>\n<p>The freezing and drying process is critical for controlling the microstructures of the produced bioplastics. Scanning electron microscope (SEM) results indicate that the freezing-drying method generates porous microstructures, with bioplastics frozen at \u221220 oC exhibiting larger pores (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2e i<\/a>) compared to these rapidly frozen using liquid nitrogen (\u2212196 oC) (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2e ii<\/a>). The bioplastic pore sizes are approximately 10-40 \u03bcm (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2e i<\/a>) and 2-10 \u03bcm (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2e ii<\/a>) prepared under \u201320 oC and \u2013196 oC conditions, respectively. Moreover, bioplastics dried directly at room temperature display a dense surface with no observable pores at the microscale (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2e iii<\/a>). During room-temperature drying, the gradual evaporation of water enables polymer chains within the hydrogel to reorganize and deposit along the mold boundaries, see schematic illustration in Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S15<\/a>. This confined drying promotes the formation of a dense, shaped bioplastic structure, as the capillary forces and polymer interactions guide the hydrogel shrinkage and consolidation within the mold cavity. The dense bioplastics exhibit a stable water vapor transmission rate (WVTR) of ~480-500\u2009g\/m2\u00b7day and permeability (P) of ~200\u2009g\u00b7mm\/m2\u00b7day\u00b7kPa on both initial and recycled samples (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S16<\/a>). The melting point is measured to be 166 oC and 160 oC in the initial and recycled bioplastics, respectively (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S17<\/a>), without significant variation.<\/p>\n<p>We performed the tensile tests to investigate changes in the bioplastic\u2019s properties throughout the preparation and recycling processes. The results indicate that, with a fixed DNA content of 5%, increasing Dex content from 5% to 20% significantly enhances Young\u2019s modulus from ~36\u2009MPa to ~91\u2009MPa (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2f i<\/a> and Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S18<\/a>). All Dex-DNA bioplastics exhibit a higher Young\u2019s modulus than the pure DNA sample, which has a modulus of ~8\u2009MPa. This demonstrates that Dex-DNA bioplastics possess significantly improved stiffness compared to DNA alone. Additionally, even after 10 times recycling, Young\u2019s modulus shows no significant decline (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2f ii<\/a> and Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S18<\/a>), highlighting the high recyclability of these bioplastics. Moreover, bioplastics prepared by room-temperature drying (without freezing) exhibit notably higher Young\u2019s modulus compared with porous bioplastics (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2f iii<\/a> and Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S18<\/a>). For example, using the same 10%Dex-5%DNA formulation, room-temperature dried bioplastics exhibit Young\u2019s modulus of ~1155\u2009MPa, approximately 24 times higher than that achieved through \u221220 oC freeze-drying, ~48\u2009MPa, (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2f iii<\/a>). This difference is primarily attributed to the microstructure variation between the dense and porous samples (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig2\" rel=\"nofollow noopener\" target=\"_blank\">2e<\/a>). Further comparison between previously reported studies (DNA-based<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 24\" title=\"Wang, D. et al. Transformation of Biomass DNA into Biodegradable Materials from Gels to Plastics for Reducing Petrochemical Consumption. J. Am. Chem. Soc. 142, 10114&#x2013;10124 (2020).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR24\" id=\"ref-link-section-d44744325e1318\" rel=\"nofollow noopener\" target=\"_blank\">24<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 25\" title=\"Han, J., Guo, Y., Wang, H., Zhang, K. &amp; Yang, D. Sustainable Bioplastic Made from Biomass DNA and Ionomers. J. Am. Chem. Soc. 143, 19486&#x2013;19497 (2021).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR25\" id=\"ref-link-section-d44744325e1321\" rel=\"nofollow noopener\" target=\"_blank\">25<\/a> and water-processable plastics<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 5\" title=\"Wang, J., Emmerich, L., Wu, J., Vana, P. &amp; Zhang, K. Hydroplastic Polymers as Eco-Friendly Hydrosetting Plastics. Nat. Sustain. 4, 877&#x2013;883 (2021).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR5\" id=\"ref-link-section-d44744325e1325\" rel=\"nofollow noopener\" target=\"_blank\">5<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Duraj-Thatte, A. M. et al. Water-Processable, Biodegradable and Coatable Aquaplastic from Engineered Biofilms. Nat. Chem. Biol. 17, 732&#x2013;738 (2021).\" href=\"#ref-CR34\" id=\"ref-link-section-d44744325e1328\">34<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Qiu, Y. et al. Coassembly of Hybrid Microscale Biomatter for Robust, Water-Processable, and Sustainable Bioplastics. Sci. Adv. 11, eadr1596 (2025).\" href=\"#ref-CR35\" id=\"ref-link-section-d44744325e1328_1\">35<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 36\" title=\"Yuan, Y. &amp; Solin, N. Water Processable Bioplastic Films from Functionalized Protein Fibrils. Adv. Mater. Interfaces 9, 2200926 (2022).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR36\" id=\"ref-link-section-d44744325e1331\" rel=\"nofollow noopener\" target=\"_blank\">36<\/a>) and several typical commercial plastics (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S19<\/a>)<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 37\" title=\"Young&#x2019;s Modulus of Common Polymers and Plastics, Materials Data Resources, Matemake, &#010;                  https:\/\/matmake.com\/properties\/youngs-modulus-of-polymers-and-plastics.html&#010;                  &#010;                . Access date 20 April 2025.\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR37\" id=\"ref-link-section-d44744325e1339\" rel=\"nofollow noopener\" target=\"_blank\">37<\/a> and the presently introduced bioplastics was conducted. It is found that the Young\u2019s modulus of the bioplastic is higher than that of DNA-based plastics\/gels<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 24\" title=\"Wang, D. et al. Transformation of Biomass DNA into Biodegradable Materials from Gels to Plastics for Reducing Petrochemical Consumption. J. Am. Chem. Soc. 142, 10114&#x2013;10124 (2020).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR24\" id=\"ref-link-section-d44744325e1343\" rel=\"nofollow noopener\" target=\"_blank\">24<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 25\" title=\"Han, J., Guo, Y., Wang, H., Zhang, K. &amp; Yang, D. Sustainable Bioplastic Made from Biomass DNA and Ionomers. J. Am. Chem. Soc. 143, 19486&#x2013;19497 (2021).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR25\" id=\"ref-link-section-d44744325e1346\" rel=\"nofollow noopener\" target=\"_blank\">25<\/a>, and closely overlaps the values demonstrated by biofilm-\/protein-based bioplastics<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 5\" title=\"Wang, J., Emmerich, L., Wu, J., Vana, P. &amp; Zhang, K. Hydroplastic Polymers as Eco-Friendly Hydrosetting Plastics. Nat. Sustain. 4, 877&#x2013;883 (2021).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR5\" id=\"ref-link-section-d44744325e1350\" rel=\"nofollow noopener\" target=\"_blank\">5<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 36\" title=\"Yuan, Y. &amp; Solin, N. Water Processable Bioplastic Films from Functionalized Protein Fibrils. Adv. Mater. Interfaces 9, 2200926 (2022).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR36\" id=\"ref-link-section-d44744325e1353\" rel=\"nofollow noopener\" target=\"_blank\">36<\/a>, high-\/low-density polyethylene (HDPE\/LDPE)<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 37\" title=\"Young&#x2019;s Modulus of Common Polymers and Plastics, Materials Data Resources, Matemake, &#010;                  https:\/\/matmake.com\/properties\/youngs-modulus-of-polymers-and-plastics.html&#010;                  &#010;                . Access date 20 April 2025.\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR37\" id=\"ref-link-section-d44744325e1357\" rel=\"nofollow noopener\" target=\"_blank\">37<\/a>, and polyvinylidene fluoride (PVDF)<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 37\" title=\"Young&#x2019;s Modulus of Common Polymers and Plastics, Materials Data Resources, Matemake, &#010;                  https:\/\/matmake.com\/properties\/youngs-modulus-of-polymers-and-plastics.html&#010;                  &#010;                . Access date 20 April 2025.\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR37\" id=\"ref-link-section-d44744325e1361\" rel=\"nofollow noopener\" target=\"_blank\">37<\/a>. These results confirm the bioplastics\u2019 high recyclability and demonstrate that their mechanical properties can be fine-tuned by adjusting the freezing process during the preparation process.<\/p>\n<p>We further demonstrate that bioplastics possess several key advantages in terms of chemical resistance and aqua-healing properties. Notably, the bioplastics exhibit intrinsic resistance to several commonly used solvents: they show negligible damages after soaking for 7 days in hexane (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3a i<\/a>), chloroform (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3a ii<\/a>), and dimethyl sulfoxide (DMSO) (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3a iii<\/a>). It is worth mentioning that chloroform can dissolve petroleum-derived PS and low-density polyethylene (LDPE)<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 11\" title=\"Nguyen, B. N. T. &amp; Lim, J. Y. C. Emerging Green Approaches for Valorization of Plastics with Saturated Carbon Backbones. Trends Chem. 6, 100&#x2013;114 (2024).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR11\" id=\"ref-link-section-d44744325e1377\" rel=\"nofollow noopener\" target=\"_blank\">11<\/a>. The bioplastics exhibit slow dissolution in ethylene glycol or softening\/swelling in glycerol and formamide (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S20<\/a> and Movie S<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM3\" rel=\"nofollow noopener\" target=\"_blank\">1<\/a>&#8211;<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM4\" rel=\"nofollow noopener\" target=\"_blank\">2<\/a>). While rapid dissolution of bioplastics under extremely acidic (pH ~1, Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S21a<\/a>) and basic (pH ~14, Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S21b<\/a>) conditions is obtained. Additionally, the bioplastics demonstrate excellent aqua-healing capability, illustrated by a knife-shaped bioplastic. After breaking, the fractured pieces are reassembled to their original shape by applying water to the broken interface, followed by a drying process (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3b i<\/a>). A subsequent tensile test demonstrates that there is no significant change in Young\u2019s modulus before and after the healing process, confirming the high reliability of the aqua-healing feature (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3b ii<\/a>). It is worth mentioning that water processability, including water-based molding and aqua-healing, is a relatively eco-friendly approach. Nevertheless, this indicates the relatively poor moisture resistance of the produced bioplastics. Thus, for practical applications such as packaging materials where high moisture resistance is necessary, further processing of the Dex-DNA bioplastics is required. Potential methods include applying moisture-resistant layers, such as hydrophobic coating (e.g., polydimethylsiloxane), to these bioplastics.<\/p>\n<p>Fig. 3: Properties of the bioplastics: chemical resistance, aqua-healing, precise processability, and biodegradation.<a class=\"c-article-section__figure-link\" data-test=\"img-link\" data-track=\"click\" data-track-label=\"image\" data-track-action=\"view figure\" href=\"https:\/\/www.nature.com\/articles\/s41467-025-62682-1\/figures\/3\" rel=\"nofollow noopener\" target=\"_blank\"><img decoding=\"async\" aria-describedby=\"Fig3\" src=\"https:\/\/www.newsbeep.com\/au\/wp-content\/uploads\/2025\/08\/41467_2025_62682_Fig3_HTML.png\" alt=\"figure 3\" loading=\"lazy\" width=\"685\" height=\"506\"\/><\/a><\/p>\n<p>a Photographs of bioplastic samples soaked in various chemicals, including hexane (i), chloroform (ii), and dimethyl sulfoxide (DMSO) (iii), at day 0 and day 7. b Photographs of an aqua-healing process on a knife-shaped product (i), and Young\u2019s modulus analysis before and after aqua-healing (ii). Data are presented as mean\u00b1standard deviation (n\u2009=\u20093). Photographs of the assembly of building blocks into a 2D rocket (c) and a 3D flower (d) under UV irradiation or exposure to natural light. The bioplastics were stained with fluorescent dyes. Representative SEM images of the (e) biomimetic surface, (f) microneedle patch, and (g) photonic nano-patterns. Three independent experiments were conducted with similar results. (h, i) Photographs of the biodegradation process of the bioplastics: (h) buried in soil under real-world conditions, and (i) degraded in the lab using DNase I with GelRed staining to visualize the degradation more clearly. The scale bar is 1\u2009cm in (a\u2013d).<\/p>\n<p>The bioplastics are highly processable to form well-shaped products, ranging from centimeter to nanometer scale. The centimeter-scale samples were prepared using the \u201320 oC freeze-drying method. Beyond the single-piece molding, we also present an effective strategy that assembles building blocks to generate complex 2D and 3D products (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3c, d<\/a>). The building blocks are bioplastic pieces stained with DNA intercalating fluorescent dyes, GelRed (red), DAPI (blue), and SYBR green I (green). Under UV irradiation, the bioplastic building blocks exhibit uniform coloration (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3c i, d i<\/a>), indicating homogeneous DNA distribution. They are assembled using the aqua-healing method, resulting in well-formed centimeter scale products with slightly discolored appearances (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3c ii, d ii<\/a>), but vibrant, high-contrast fluorescence under UV irradiation (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3c iii, d iii<\/a>), validating the building block strategy. Additionally, the assembled bioplastics exhibit excellent durability. A 3D flower-shaped sample retains its shape and high-contrast fluorescent colors (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3d iv<\/a>) after 2 months of storage in Singapore\u2019s challenging environment (23-34 oC, 80-90% humidity), which is harsher than cold or arid climates.<\/p>\n<p>Moreover, such bioplastics offer high-precision manufacturing down to the nanoscale. This capability is demonstrated through three representative applications, where plastics are commonly used, including biomimetic surfaces (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3e<\/a>), medical microneedle patches (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3f<\/a>), and photonic nano-patterns (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3g<\/a>). A direct drying method with specific templates was applied to achieve precise nanoscale fabrication. The biomimetic surface accurately replicates the original surface texture of a Lotus leaf (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3e<\/a>). The microneedle patches feature well-defined conical structures with ~300\u2009\u00b5m in diameter and sharp tips (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3f<\/a>), and can penetrate the stratum corneum of mouse (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S22<\/a>), which might be further developed as monitoring and delivery devices. The nano-patterns are commonly used for photonic devices, to which the bioplastics are also applicable. The bioplastics are produced into a series of patterns, including rectangular textures (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3g i<\/a>), grids (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3g ii<\/a>), and pyramid arrays (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3g iii<\/a>). Remarkably, no defects are observed across tens of micrometers (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3g i<\/a>), and the feature size reaches as fine as ~150\u2009nm (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3g ii and iii<\/a>). These results highlight the promise of bioplastics for precise, durable products across multiple scales.<\/p>\n<p>To assess its biodegradability, we conducted an experiment in a practical case using a spoon-shaped bioplastic sample alongside a commercial PE-based disposable spoon as a reference. Both were buried in local soil. Over time, the bioplastic sample decayed gradually, achieving complete degradation after 29 days, while the reference PE spoon retained its original shape throughout the experiment (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3h<\/a>). We also conducted a biodegradation test according to the standards of American Society for Testing and Materials (ASTM), and demonstrated that the degradation ratio is ~28% after 45 days (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S23<\/a>). Moreover, we demonstrated that the degradation process can be accelerated with nucleases. The bioplastic sample, stained with GelRed for better illustration, was monitored under UV irradiation to visualize the degradation process. In water containing DNase I nuclease, the red bioplastic gradually decreased in size and fully disappeared in 120\u2009minutes (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig3\" rel=\"nofollow noopener\" target=\"_blank\">3i<\/a>), significantly faster than in soil. Increasing the nuclease concentration further reduced degradation time to 10-20\u2009minutes (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S24a<\/a>). The rapid biodegradation in the lab is attributed to the DNA content in the bioplastic, which makes it susceptible to enzymatic breakdown. In contrast, without nuclease, the red-stained bioplastic remained intact in water after 120\u2009minutes (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S24b<\/a>). Incorporating DNA into the bioplastic matrix offers a key advantage by introducing an additional, orthogonal degradation pathway beyond those available to polysaccharide-based systems alone. While enzymatic degradation of polysaccharides\u2014such as dextran hydrolysis by dextranase\u2014is well-established, these pathways are typically limited to specific glycosidic linkages. DNA, in contrast, is easily degraded by a distinct set of enzymes (e.g., DNase), which are abundant in many natural environments. This approach not only broadens the environmental triggers for material breakdown but also enables more tunable and potentially faster degradation profiles. Moreover, the inclusion of DNA adds chemical diversity to the bioplastic, offering additional handles for molecular design and programmability that are not easily accessible with polysaccharides alone. These results highlight minimal environmental risks posed by uncollectable bioplastic waste, e.g., the threat of microplastics to the ecosystem, and suggest that enzymatic degradation could serve as an efficient end-of-life treatment for large-scale bioplastic disposal in industrial applications.<\/p>\n<p>To demonstrate the universality of this method to produce polysaccharide-DNA bioplastics, we replicated the freeze-drying process by replacing Dex with either AA (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig4\" rel=\"nofollow noopener\" target=\"_blank\">4a\u2013c<\/a>) or CMC (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig4\" rel=\"nofollow noopener\" target=\"_blank\">4d\u2013f<\/a>). Both AA and CMC were oxidized using NaIO4, with their respective oxidization mechanisms illustrated in Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig4\" rel=\"nofollow noopener\" target=\"_blank\">4a, d<\/a>, respectively. Both the AA-DNA and CMC-DNA bioplastics are recyclable and reusable through the same water-processable method. The typical recycling process was demonstrated using samples with 5% DNA and 10% polysaccharides (AA or CMC), as illustrated in Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig4\" rel=\"nofollow noopener\" target=\"_blank\">4b, e<\/a>. It is demonstrated that bioplastics could be produced using hydrogels with a broad range of AA or CMC concentrations (2- 20\u2009wt.%, Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig4\" rel=\"nofollow noopener\" target=\"_blank\">4c, f<\/a>). As the AA or CMC concentrations increased from 2 to 20\u2009wt.%, both AA-DNA and CMC-DNA hydrogels exhibited an increasing G\u2019 value (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S25<\/a>). The resulting bioplastics were found to be recyclable through water-based processing (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S26a<\/a>-b and <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S27a-b<\/a>), and both types also demonstrated aqua-healing capabilities (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S26c<\/a> and <a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S27c<\/a>). Additionally, mechanical tests revealed that Young\u2019s modulus averaged ~116\u2009MPa for 10%AA-5%DNA sample and ~92\u2009MPa for 10%CMC-5%DNA sample (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S28<\/a>), highlighting their robustness and versatility.<\/p>\n<p>Fig. 4: Universality of the method and bioplastic biocompatibility.<a class=\"c-article-section__figure-link\" data-test=\"img-link\" data-track=\"click\" data-track-label=\"image\" data-track-action=\"view figure\" href=\"https:\/\/www.nature.com\/articles\/s41467-025-62682-1\/figures\/4\" rel=\"nofollow noopener\" target=\"_blank\"><img decoding=\"async\" aria-describedby=\"Fig4\" src=\"https:\/\/www.newsbeep.com\/au\/wp-content\/uploads\/2025\/08\/41467_2025_62682_Fig4_HTML.png\" alt=\"figure 4\" loading=\"lazy\" width=\"685\" height=\"539\"\/><\/a><\/p>\n<p>Molecular structure changes of (a) AA and (d) CMC under an oxidization process. Illustration of recyclable processes of the (b) AA-DNA and (e) CMC-DNA bioplastics. Photographs of the (c) AA-5%DNA and (f) CMC-5%DNA bioplastics with different polysaccharide contents of 2%\u221220%. g Cytotoxicity assessment of the three bioplastic formulations, showing cell viability across concentrations. Data are presented as mean\u00b1standard deviation (n\u2009=\u20093). h Representative microscopy images of stained mice organ sections 14 days after ingesting Dex-DNA bioplastics, with comparisons to control group images. Examined organs include heart, intestine, kidney, liver, spleen, and stomach. i Representative microscopy images of stained mice stomach sections 14 days after exposure to AA-DNA and CMC-DNA bioplastics. The scale bar is 1\u2009cm in (a\u2013f) and 50 \u03bcm in (h, i).<\/p>\n<p>To assess the biocompatibility of the bioplastics, we conducted in vitro cytotoxicity tests using primary human dermal fibroblasts and in vivo digestion experiments on mice. The in vitro assessments suggest that cell viability remains above 80% across all three bioplastics: Dex-DNA, AA-DNA, and CMC-DNA (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig4\" rel=\"nofollow noopener\" target=\"_blank\">4g<\/a>) within a concentration range of 0 to 12.5\u2009mg\/mL, with no significant declining trends observed. For the in vivo evaluation, histological examination demonstrated no noticeable differences in body weight between mice fed with the three bioplastics (Dex-DNA, AA-DNA, and CMC-DNA) and the control group after 14 days (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S29a<\/a>). Moreover, no observable pathological damage was found in major organs, including heart, intestine, kidney, liver, spleen, and stomach, when compared with the control group (Figs.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig4\" rel=\"nofollow noopener\" target=\"_blank\">4<\/a>h, i, and S<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">29b<\/a>). Notably, unlike microplastic residues that pose health risks to organisms<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Su, Y. et al. Steam Disinfection Releases Micro(nano)plastics from Silicone-Rubber Baby Teats as Examined by Optical Photothermal Infrared Microspectroscopy. Nat. Nanotechnol. 17, 76&#x2013;85 (2022).\" href=\"#ref-CR12\" id=\"ref-link-section-d44744325e1652\">12<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Wang, M. et al. Oligomer Nanoparticle Release from Polylactic Acid Plastics Catalysed by Gut Enzymes Triggers Acute Inflammation. Nat. Nanotechnol. 18, 403&#x2013;411 (2023).\" href=\"#ref-CR13\" id=\"ref-link-section-d44744325e1652_1\">13<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 14\" title=\"Cabernard, L., Pfister, S., Oberschelp, C. &amp; Hellweg, S. Growing Environmental Footprint of Plastics Driven by Coal Combustion. Nat. Sustain. 5, 139&#x2013;148 (2021).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR14\" id=\"ref-link-section-d44744325e1655\" rel=\"nofollow noopener\" target=\"_blank\">14<\/a>, no such residues were detected in the organ sections. These results indicate the biocompatibility and biosafety of the polysaccharide-DNA bioplastics, which can be attributed to the inherently safe nature of their raw components\u2212polysaccharide and biomass-derived DNA.<\/p>\n<p>We further demonstrate the scalability of the production process and assess the potential environmental impacts of upscaling the production of these bioplastics, using the 10%Dex-5%DNA formulation as a case study. Large-scale hydrogel batches of 500\u2009mL were successfully produced (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig5\" rel=\"nofollow noopener\" target=\"_blank\">5a<\/a>), and the bioplastic foils covering ~12.5 \u00d712.5\u2009cm2 were fabricated (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig5\" rel=\"nofollow noopener\" target=\"_blank\">5b<\/a>), alongside various morphologies designed to meet potential commercial demands (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig5\" rel=\"nofollow noopener\" target=\"_blank\">5c<\/a>). Interestingly, the bioplastic foils with a high solid content exhibit a transparent appearance (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig5\" rel=\"nofollow noopener\" target=\"_blank\">5b<\/a>), contrasting with the white, opaque appearance of products generated through freeze-drying (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig5\" rel=\"nofollow noopener\" target=\"_blank\">5c<\/a>). This difference arises from the microstructural features, where the porous structure of freeze-dried samples scatters visible light more strongly, resulting in the white appearance. These results indicate that the optical properties of the bioplastics can be customized to suit various practical applications, offering flexibility for product design and functionality.<\/p>\n<p>Fig. 5: Production upscaling and environmental impact analysis.<a class=\"c-article-section__figure-link\" data-test=\"img-link\" data-track=\"click\" data-track-label=\"image\" data-track-action=\"view figure\" href=\"https:\/\/www.nature.com\/articles\/s41467-025-62682-1\/figures\/5\" rel=\"nofollow noopener\" target=\"_blank\"><img decoding=\"async\" aria-describedby=\"Fig5\" src=\"https:\/\/www.newsbeep.com\/au\/wp-content\/uploads\/2025\/08\/41467_2025_62682_Fig5_HTML.png\" alt=\"figure 5\" loading=\"lazy\" width=\"685\" height=\"371\"\/><\/a><\/p>\n<p>a Photographs of the upscaling production of 10%Dex-5%DNA hydrogels. Images of bioplastic products in foil form (b) and with various morphologies (c), created using 10%Dex-5%DNA hydrogels. (d) Comparison of the Global Warming Potential (GWP) per use cycle across different recycling times for the bioplastics versus commercial plastics, including polystyrene (PS), polyethylene terephthalate (PET), polyvinyl chloride (PVC), low-density polyethylene (LDPE), high-density polyethylene (HDPE), polypropylene (PP), and polylactic acid (PLA). e GWP of bioplastics recycled 10 times across different countries\/regions. Map adapted from a public domain image on Wikimedia Commons (<a href=\"https:\/\/commons.wikimedia.org\/wiki\/File:Location_Map_Asia.svg\" rel=\"nofollow noopener\" target=\"_blank\">https:\/\/commons.wikimedia.org\/wiki\/File:Location_Map_Asia.svg<\/a>). No copyright restrictions apply.<\/p>\n<p>To assess the environmental impacts of the produced bioplastics, we conducted a cradle-to-grave ex-ante LCA<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Hellweg, S., Benetto, E., Huijbregts, M. A., Verones, F. &amp; Wood, R. Life-cycle assessment to guide solutions for the triple planetary crisis. Nat. Rev. Earth Environ. 4, 471&#x2013;486 (2023).\" href=\"#ref-CR38\" id=\"ref-link-section-d44744325e1727\">38<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" title=\"Chen, W. et al. Designer topological-single-atom catalysts with site-specific selectivity. Nat. Commun. 16, 574 (2025).\" href=\"#ref-CR39\" id=\"ref-link-section-d44744325e1727_1\">39<\/a>,<a data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 40\" title=\"Tsoy, N., Steubing, B., van der Giesen, C. &amp; Guin&#xE9;e, J. Upscaling methods used in ex ante life cycle assessment of emerging technologies: a review. Int. J. Life Cycle Assess. 25, 1680&#x2013;1692 (2020).\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#ref-CR40\" id=\"ref-link-section-d44744325e1730\" rel=\"nofollow noopener\" target=\"_blank\">40<\/a>, and compared them with widely used commercial plastics, including PS, polyethylene terephthalate (PET), polyvinyl chloride (PVC), LDPE, high-density polyethylene (HDPE), polypropylene (PP), and polylactic acid (PLA) (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig5\" rel=\"nofollow noopener\" target=\"_blank\">5 d, e<\/a>). The functional unit for the assessment is 1 m3 of plastic for single-use applications. The end-of-life scenario assumes industrial composting for both the bioplastic and PLA, while landfilling is considered for other commercial plastics. The detailed recycling process of the bioplastics is documented in the Methods section. When the bioplastic is recycled 10 times, its life-cycle Global Warming Potential (GWP) is 861\u2009kg CO2-eq m-3, 58.7% to 78.3% lower than that of commercial plastics without recycling (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig5\" rel=\"nofollow noopener\" target=\"_blank\">5d<\/a>). In contrast, without recycling, the GWP of the bioplastic rises to 6,332\u2009kg CO2-eq m-3, 59.4% to 203.3% higher than the commercial plastics. This is due to emissions from the production phase are distributed across multiple reuse cycles when recycling cycles increase (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig5\" rel=\"nofollow noopener\" target=\"_blank\">5d<\/a>). Given the significant impact of electricity on the GWP, we analyze how different regional electricity sources influence the results in various geospatial locations near Singapore (Fig.\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#Fig5\" rel=\"nofollow noopener\" target=\"_blank\">5e<\/a>). Along with Singapore, Myanmar, Japan, Vietnam, and South Korea exhibit relatively low GWP values (832\u20131002\u2009kg CO2-eq m-3). In contrast, regions with more carbon-intensive energy grids, such as India, Indonesia, Philippines, and China, display higher GWP values (1,186-1,560\u2009kg CO2-eq m-3). These results suggest the importance of adopting low-carbon electricity for bioplastic production and recycling. The comparison results to commercial plastics that are recycled 10 times are also available in Fig. S30. The results of other environmental impact categories are available in Fig. S31 with the details of the contribution analysis in Table\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S1<\/a>. Given that the current production process is still at the lab scale, further reductions in life-cycle greenhouse gas emissions are expected through process optimization and sustainable raw material sourcing in large-scale manufacturing. While offering environmental benefits, the current lab-scale production of these bioplastics incurs a raw materials cost of 3.1-5.2 USD\/gram (Table\u00a0<a data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\" href=\"http:\/\/www.nature.com\/articles\/s41467-025-62682-1#MOESM1\" rel=\"nofollow noopener\" target=\"_blank\">S2<\/a>), which is relatively high. Future cost reduction, including more affordable extraction techniques, optimization of raw material supply chains, and the use of more energy-efficient fabrication equipment, are anticipated to be critical factors for successful commercialization.<\/p>\n<p>In summary, the present study introduces a sustainable bioplastic material, revealing multi-closed-loop recyclability and water (re)processability. The bioplastics are based on abundant polysaccharide biomass products, such as Dex, AA, CMC, and DNA of plants or living organism waste. Chemical (NaIO4), partial oxidation of the polysaccharides to aldehyde\u2212functionalized polysaccharides followed by reversible imine covalent bond formation with amine functionalities associated with DNA yield water processable polysaccharide\/DNA crosslinked hydrogels as a raw material to produce sustainable bioplastic products. The plastic products exhibit (bio)degradability and recyclability reflected by the aqueous recycling of the parent gel constituents by hydrolysis of the plastics and biodegradability of the DNA\/polysaccharides by native biocatalysts (enzymes), e.g., bacteria. The resulting bioplastics reveal resistance towards organic solvents, aqua-healing capacities, scalability, and effective processing across nanometer, micrometer, centimeter to meter scales, suggesting broad and versatile applications. The LCA reveals that the production of 1m3 of the bioplastic results in 861\u2009kg CO2-eq m-3 emission when recycled 10 times, which is 58.7%-78.3% lower than most commercial plastics without recycling. Moreover, we note that the DNA extracted from different sources might differ in sequence, length, and secondary structure. These might affect the resulting bioplastic due to differences in the imine bond densities, and consequently, influence their mechanical properties (e.g., Young\u2019s modulus). Moreover, the key characteristics of the bioplastics, including enzymatic degradability and close-loop recyclability, should be retained. Nevertheless, harnessing pure sequence-programmed DNA stocks could be produced by genetically-engineered crops. While such approaches are at present cost-prohibitive and impractical for large-scale sustainable material production, for special material applications, adaptation of these concepts might be interesting. Furthermore, the concept of polysaccharide\/DNA bioplastics based on reversible imine-crosslinked frameworks may be extended to polysaccharide\/protein crosslinked matrices. At present, the need for a cost-effective \u201cclean\u201d source for NaIO4 is a limiting factor in the process. The use of solar light to produce IO4- or, alternatively, the solar-light photocatalyzed oxidation of the polysaccharides to the aldehyde-modified polysaccharides could potentially overcome this limitation. Photocatalyzed oxidation of iodide to periodate in aqueous basic solutions, or photocatalyzed oxygen-mediated Fenton oxidation of I-, could provide parallel close-hoops for the present process, synthesizing the bioplastic materials. The present study provides, however, important potential pathways, advancing sustainable, environment-friendly bioplastic materials.<\/p>\n","protected":false},"excerpt":{"rendered":"The bioplastics are produced from naturally abundant biomass DNA (Fig.\u00a01a i) and polysaccharides (Fig.\u00a01a ii), and the polysaccharide&hellip;\n","protected":false},"author":2,"featured_media":77770,"comment_status":"","ping_status":"","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[22],"tags":[64,63,1115,59527,75,1320,1321,9183,128],"class_list":["post-77769","post","type-post","status-publish","format-standard","has-post-thumbnail","category-environment","tag-au","tag-australia","tag-dna","tag-dna-and-rna","tag-environment","tag-humanities-and-social-sciences","tag-multidisciplinary","tag-polymers","tag-science"],"_links":{"self":[{"href":"https:\/\/www.newsbeep.com\/au\/wp-json\/wp\/v2\/posts\/77769","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/www.newsbeep.com\/au\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/www.newsbeep.com\/au\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/www.newsbeep.com\/au\/wp-json\/wp\/v2\/users\/2"}],"replies":[{"embeddable":true,"href":"https:\/\/www.newsbeep.com\/au\/wp-json\/wp\/v2\/comments?post=77769"}],"version-history":[{"count":0,"href":"https:\/\/www.newsbeep.com\/au\/wp-json\/wp\/v2\/posts\/77769\/revisions"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/www.newsbeep.com\/au\/wp-json\/wp\/v2\/media\/77770"}],"wp:attachment":[{"href":"https:\/\/www.newsbeep.com\/au\/wp-json\/wp\/v2\/media?parent=77769"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/www.newsbeep.com\/au\/wp-json\/wp\/v2\/categories?post=77769"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/www.newsbeep.com\/au\/wp-json\/wp\/v2\/tags?post=77769"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}