Abrous, D. N. et al. Hallmarks of healthy cognitive aging: inter-individual differences in aging trajectories. Ageing Res. Rev. 119, 103102 (2026).

Article 
PubMed 

Google Scholar
 

Brito, D. V. C. et al. Assessing cognitive decline in the aging brain: lessons from rodent and human studies. NPJ Aging 9, 23 (2023).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Lindenberger, U. Human cognitive aging: corriger la fortune? Science 346, 572–578 (2014).

Article 
CAS 
PubMed 

Google Scholar
 

Raz, N. & Rodrigue, K. M. Differential aging of the brain: patterns, cognitive correlates and modifiers. Neurosci. Biobehav. Rev. 30, 730–748 (2006).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Sander, M. C., Fandakova, Y. & Werkle-Bergner, M. Effects of age differences in memory formation on neural mechanisms of consolidation and retrieval. Semin. Cell Dev. Biol. 116, 135–145 (2021).

Article 
PubMed 

Google Scholar
 

Li, Z. et al. Aging and age-related diseases: from mechanisms to therapeutic strategies. Biogerontology 22, 165–187 (2021).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Salthouse, T. A. Decomposing age correlations on neuropsychological and cognitive variables. J. Int. Neuropsychol. Soc. 15, 650–661 (2009).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Garo-Pascual, M. et al. Brain structure and phenotypic profile of superagers compared with age-matched older adults: a longitudinal analysis from the Vallecas Project. Lancet Healthy Longev. 4, e374–e385 (2023).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Nyberg, L. & Pudas, S. Successful memory aging. Annu. Rev. Psychol. 70, 219–243 (2019).

Article 
PubMed 

Google Scholar
 

Stern, Y. et al. A framework for concepts of reserve and resilience in aging. Neurobiol. Aging 124, 100–103 (2023).

Article 
PubMed 

Google Scholar
 

Stern, Y. et al. Whitepaper: defining and investigating cognitive reserve, brain reserve, and brain maintenance. Alzheimer’s Dement. 16, 1305–1311 (2020).

Article 

Google Scholar
 

Aghjayan, S. L. et al. Aerobic exercise improves episodic memory in late adulthood: a systematic review and meta-analysis. Commun. Med. 2, 15 (2022).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Colcombe, S. & Kramer, A. F. Fitness effects on the cognitive function of older adults: a meta-analytic study. Psychol. Sci. 14, 125–130 (2003).

Article 
PubMed 

Google Scholar
 

Erickson, K. I., Donofry, S. D., Sewell, K. R., Brown, B. M. & Stillman, C. M. Cognitive aging and the promise of physical activity. Annu. Rev. Clin. Psychol. 18, 417–442 (2022).

Article 
PubMed 

Google Scholar
 

Cabeza, R. et al. Maintenance, reserve and compensation: the cognitive neuroscience of healthy ageing. Nat. Rev. Neurosci. 19, 701–710 (2018).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Jack, C. R. et al. Age-specific and sex-specific prevalence of cerebral β-amyloidosis, tauopathy, and neurodegeneration in cognitively unimpaired individuals aged 50-95 years: a cross-sectional study. Lancet Neurol. 16, 435–444 (2017).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Boyle, P. A., Yu, L., Wilson, R. S., Schneider, J. A. & Bennett, D. A. Relation of neuropathology with cognitive decline among older persons without dementia. Front. Aging Neurosci. 5, 50 (2013).

Article 
PubMed 
PubMed Central 

Google Scholar
 

De Silva, T. M. & Faraci, F. M. Contributions of aging to cerebral small vessel disease. Annu. Rev. Physiol. 82, 275–295 (2020).

Article 
PubMed 

Google Scholar
 

Wardlaw, J. M. et al. Perivascular spaces in the brain: anatomy, physiology and pathology. Nat. Rev. Neurol. 16, 137–153 (2020).

Article 
PubMed 

Google Scholar
 

Maass, A. et al. Entorhinal tau pathology, episodic memory decline, and neurodegeneration in aging. J. Neurosci. 38, 530–543 (2018).

Article 
CAS 
PubMed 

Google Scholar
 

Sanchez, J. S. et al. The cortical origin and initial spread of medial temporal tauopathy in Alzheimer’s disease assessed with positron emission tomography. Sci. Transl. Med. 13, eabc0655 (2021).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Berron, D. et al. Early stages of tau pathology and its associations with functional connectivity, atrophy and memory. Brain 144, 2771–2783 (2021).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Erickson, K. I. et al. Physical activity, cognition, and brain outcomes: a review of the 2018 physical activity guidelines. Med. Sci. Sports Exerc 51, 1242–1251 (2019).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Stillman, C. M., Cohen, J., Lehman, M. E. & Erickson, K. I. Mediators of physical activity on neurocognitive function: a review at multiple levels of analysis. Front. Hum. Neurosci. 10, 626 (2016).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Gow, A. J. et al. Neuroprotective lifestyles and the aging brain: activity, atrophy, and white matter integrity. Neurology 79, 1802–1808 (2012).

Article 
PubMed 

Google Scholar
 

Kleemeyer, M. M. et al. Changes in fitness are associated with changes in hippocampal microstructure and hippocampal volume among older adults. Neuroimage 131, 155–161 (2016).

Article 
PubMed 

Google Scholar
 

Callow, D. D. et al. Independent associations of sleep and physical activity with cognition are mediated by hippocampal microstructure in middle-aged and older adults. Neurobiol. Aging 147, 22–31 (2025).

Article 
PubMed 

Google Scholar
 

Banerjee, G. et al. MRI-visible perivascular space location is associated with Alzheimer’s disease independently of amyloid burden. Brain 140, 1107–1116 (2017).

Article 
PubMed 

Google Scholar
 

Menze, I. et al. Perivascular space enlargement accelerates in ageing and Alzheimer’s disease pathology: evidence from a three-year longitudinal multicentre study. Alzheimers Res. Ther. 16, 242 (2024).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Sepehrband, F. et al. Volumetric distribution of perivascular space in relation to mild cognitive impairment. Neurobiol. Aging 99, 28–43 (2021).

Article 
CAS 
PubMed 

Google Scholar
 

Marino, F. R. et al. Differences in daily physical activity by Alzheimer’s risk markers among older adults. J. Gerontol. A Biol. Sci. Med. Sci. 79, glae119 (2024).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Nguyen Ho, P. T., Vernooij, M. W., Voortman, T., Rodriguez-Ayllon, M. & Neitzel, J. Objective physical activity and Alzheimer’s disease burden in the population-based Rotterdam study. Alzheimer’s Dement. 21, e70655 (2025).

Article 

Google Scholar
 

Rodriguez-Ayllon, M. et al. Physical activity and amyloid beta in middle-aged and older adults: a systematic review and meta-analysis. J. Sport Health Sci. 13, 133–144 (2024).

Article 
PubMed 

Google Scholar
 

Kimura, N. et al. Association of modifiable lifestyle factors with cortical amyloid burden and cerebral glucose metabolism in older adults with mild cognitive impairment. JAMA Netw. Open 3, e205719 (2020).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Kim, S. A. et al. Physical activity, Alzheimer’s plasma biomarkers, and cognition. JAMA Netw. Open 8, e250096 (2025).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Raffin, J. et al. Associations between moderate-to-vigorous physical activity, p-tau181, and cognition in healthy older adults with memory complaints: a secondary analysis from the MAPT. Lancet Healthy Longev. 6, 100678 (2025).

Article 
PubMed 

Google Scholar
 

Brown, B. M. et al. Self-reported physical activity is associated with tau burden measured by positron emission tomography. J. Alzheimer’s Dis. 63, 1299–1305 (2018).

Article 
CAS 

Google Scholar
 

Yau, W.-Y. W. et al. Physical activity as a modifiable risk factor in preclinical Alzheimer’s disease. Nat. Med. 31, 4075–4083 (2025).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Tucker, A. M. & Stern, Y. Cognitive reserve in aging. Curr. Alzheimer Res. 8, 354–360 (2011).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Song, S., Stern, Y. & Gu, Y. Modifiable lifestyle factors and cognitive reserve: a systematic review of current evidence. Ageing Res. Rev. 74, 101551 (2022).

Article 
PubMed 

Google Scholar
 

Casaletto, K. et al. Late-life physical activity relates to brain tissue synaptic integrity markers in older adults. Alzheimer’s Dement. 18, 2023–2035 (2022).

Article 
CAS 

Google Scholar
 

Casaletto, K. B. et al. Late-life physical and cognitive activities independently contribute to brain and cognitive resilience. J. Alzheimer’s Dis. 74, 363–376 (2020).

Article 

Google Scholar
 

Rabin, J. S. et al. Associations of physical activity and β-amyloid with longitudinal cognition and neurodegeneration in clinically normal older adults. JAMA Neurol. 76, 1203–1210 (2019).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Dougherty, R. J. et al. Physical activity modifies associations between cerebrospinal fluid tau measures and executive function. Alzheimer’s Dement. 11, e70085 (2025).

Article 

Google Scholar
 

Anatürk, M. et al. Prediction of brain age and cognitive age: quantifying brain and cognitive maintenance in aging. Hum. Brain Mapp. 42, 1626–1640 (2021).

Article 
PubMed 

Google Scholar
 

Buchman, A. S. et al. Physical activity, common brain pathologies, and cognition in community-dwelling older adults. Neurology 92, e811–e822 (2019).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Yao, T., Sweeney, E., Nagorski, J., Shulman, J. M. & Allen, G. I. Quantifying cognitive resilience in Alzheimer’s disease: the Alzheimer’s disease cognitive resilience score. PLoS ONE 15, e0241707 (2020).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Hamer, M. & Chida, Y. Physical activity and risk of neurodegenerative disease: a systematic review of prospective evidence. Psychol. Med. 39, 3–11 (2009).

Article 
CAS 
PubMed 

Google Scholar
 

Aghjayan, S. L. et al. Aerobic exercise, cardiorespiratory fitness, and the human hippocampus. Hippocampus 31, 817–844 (2021).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Boots, E. A. et al. Cardiorespiratory fitness is associated with brain structure, cognition, and mood in a middle-aged cohort at risk for Alzheimer’s disease. Brain Imaging Behav. 9, 639–649 (2015).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Cole, R. C. et al. Cardiorespiratory fitness and hippocampal volume predict faster episodic associative learning in older adults. Hippocampus 30, 143–155 (2020).

Article 
PubMed 

Google Scholar
 

Erickson, K. I. et al. Aerobic fitness is associated with hippocampal volume in elderly humans. Hippocampus 19, 1030–1039 (2009).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Stillman, C. M. et al. Cardiorespiratory fitness is associated with enhanced hippocampal functional connectivity in healthy young adults. Hippocampus 28, 239–247 (2018).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Maass, A. et al. Vascular hippocampal plasticity after aerobic exercise in older adults. Mol. Psychiatry 20, 585–593 (2015).

Article 
CAS 
PubMed 

Google Scholar
 

Choi, S. H. et al. Combined adult neurogenesis and BDNF mimic exercise effects on cognition in an Alzheimer’s mouse model. Science 361, eaan8821 (2018).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Vaynman, S., Ying, Z. & Gomez-Pinilla, F. Hippocampal BDNF mediates the efficacy of exercise on synaptic plasticity and cognition. Eur. J. Neurosci. 20, 2580–2590 (2004).

Article 
PubMed 

Google Scholar
 

Vivar, C., Potter, M. C. & van Praag, H. All about running: synaptic plasticity, growth factors and adult hippocampal neurogenesis. Curr. Top. Behav. Neurosci. 15, 189–210 (2013).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

van Praag, H. Neurogenesis and exercise: past and future directions. Neuromolecular Med. 10, 128–140 (2008).

Article 
PubMed 

Google Scholar
 

Boa Sorte Silva, N. C., Barha, C. K., Erickson, K. I., Kramer, A. F. & Liu-Ambrose, T. Physical exercise, cognition, and brain health in aging. Trends Neurosci. 47, 402–417 (2024).

CAS 
PubMed 

Google Scholar
 

Leal, L. G., Lopes, M. A. & Batista, M. L. Physical exercise-induced myokines and muscle-adipose tissue crosstalk: a review of current knowledge and the implications for health and metabolic diseases. Front. Physiol. 9, 1307 (2018).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Pedersen, B. K. Physical activity and muscle-brain crosstalk. Nat. Rev. Endocrinol. 15, 383–392 (2019).

Article 
PubMed 

Google Scholar
 

Wrann, C. D. FNDC5/irisin – their role in the nervous system and as a mediator for beneficial effects of exercise on the brain. Brain Plast. 1, 55–61 (2015).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Engeroff, T. et al. Is objectively assessed sedentary behavior, physical activity and cardiorespiratory fitness linked to brain plasticity outcomes in old age? Neuroscience 388, 384–392 (2018).

Article 
CAS 
PubMed 

Google Scholar
 

Erickson, K. I. et al. Exercise training increases size of hippocampus and improves memory. Proc. Natl. Acad. Sci. USA 108, 3017–3022 (2011).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Gökçe, E. & Gün, N. The relationship between exercise, cathepsin b, and cognitive functions: systematic review. Percept. Mot. Skills 130, 1366–1385 (2023).

Article 
PubMed 

Google Scholar
 

Moon, H. Y. et al. Running-induced systemic cathepsin B secretion is associated with memory function. Cell Metab. 24, 332–340 (2016).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Gaitán, J. M. et al. Effects of aerobic exercise training on systemic biomarkers and cognition in late middle-aged adults at risk for Alzheimer’s disease. Front. Endocrinol. 12, 660181 (2021).

Article 

Google Scholar
 

Vandersmissen, J., Dewachter, I., Cuypers, K. & Hansen, D. The impact of exercise training on the brain and cognition in type 2 diabetes, and its physiological mediators: a systematic review. Sports Med. Open 11, 42 (2025).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Morland, C. et al. Exercise induces cerebral VEGF and angiogenesis via the lactate receptor HCAR1. Nat. Commun. 8, 15557 (2017).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Maass, A. et al. Relationships of peripheral IGF-1, VEGF and BDNF levels to exercise-related changes in memory, hippocampal perfusion and volumes in older adults. Neuroimage 131, 142–154 (2016).

Article 
CAS 
PubMed 

Google Scholar
 

Leckie, R. L. et al. BDNF mediates improvements in executive function following a 1-year exercise intervention. Front. Hum. Neurosci. 8, 985 (2014).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Althubaiti, A. Information bias in health research: definition, pitfalls, and adjustment methods. J. Multidiscip. Healthc. 9, 211–217 (2016).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Caspersen, C. J., Powell, K. E. & Christenson, G. M. Physical activity, exercise, and physical fitness: definitions and distinctions for health-related research. Public Health Rep. 100, 126–131 (1985).

CAS 
PubMed 
PubMed Central 

Google Scholar
 

Cruz-Jentoft, A. J. et al. Sarcopenia: revised European consensus on definition and diagnosis. Age Ageing 48, 601 (2019).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Arosio, B. et al. Sarcopenia and cognitive decline in older adults: targeting the muscle-brain axis. Nutrients 15, 1853 (2023).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Behrenbruch, N. et al. A physically and mentally active lifestyle relates to younger brain and cognitive age. Geroscience 48, 1853–1873 (2026).

Article 
PubMed 

Google Scholar
 

Rullmann, M. et al. Multicenter 18F-PI-2620 PET for in vivo Braak staging of tau pathology in Alzheimer’s disease. Biomolecules 12, 458 (2022).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Mormino, E. C. et al. Tau PET imaging with 18F-PI-2620 in aging and neurodegenerative diseases. Eur. J. Nucl. Med. Mol. Imaging 48, 2233–2244 (2021).

Article 
CAS 
PubMed 

Google Scholar
 

Brendel, M. et al. Assessment of 18F-PI-2620 as a biomarker in progressive supranuclear palsy. JAMA Neurol. 77, 1408–1419 (2020).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Maass, A. et al. Associations of [18F]PI-2620 binding with memory and phosphorylated tau 217 in cognitively unimpaired older adults. J. Nucl. Med. 125, 271927 https://doi.org/10.2967/jnumed.125.271927 (2026)

Helmstaedter, C. & Durwen, H. F. The Verbal learning and retention test. A useful and differentiated tool in evaluating verbal memory performance. Schweiz. Arch. Neurol. Psychiatr. 141, 21–30 (1990).

CAS 
PubMed 

Google Scholar
 

Meyers, J. E. & Meyers, K. R. Rey complex figure test under four different administration procedures. Clin. Neuropsychol. 9, 63–67 (1995).

Article 

Google Scholar
 

Papp, K. V., Rentz, D. M., Orlovsky, I., Sperling, R. A. & Mormino, E. C. Optimizing the preclinical Alzheimer’s cognitive composite with semantic processing: the PACC5. Alzheimer’s Dement. 3, 668–677 (2017).

Article 

Google Scholar
 

Schmid, N. S., Ehrensperger, M. M., Berres, M., Beck, I. R. & Monsch, A. U. The extension of the German CERAD neuropsychological assessment battery with tests assessing subcortical, executive and frontal functions improves accuracy in dementia diagnosis. Dement. Geriatr. Cogn. Dis. Extra 4, 322–334 (2014).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Singh, B. et al. Effectiveness of exercise for improving cognition, memory and executive function: a systematic umbrella review and meta-meta-analysis. Br. J. Sports Med. 59, 866–876 (2025).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Rojer, A. G. M. et al. Objectively assessed physical activity and sedentary behavior and global cognitive function in older adults: a systematic review. Mech. Ageing Dev. 198, 111524 (2021).

Article 
PubMed 

Google Scholar
 

Ciria, L. F. et al. An umbrella review of randomized control trials on the effects of physical exercise on cognition. Nat. Hum. Behav. 7, 928–941 (2023).

Article 
PubMed 

Google Scholar
 

Wang, M.-L. et al. Associations of MRI-visible perivascular spaces with longitudinal cognitive decline across the Alzheimer’s disease spectrum. Alzheimer’s Res. Ther. 14, 185 (2022).

Article 

Google Scholar
 

Francis, F., Ballerini, L. & Wardlaw, J. M. Perivascular spaces and their associations with risk factors, clinical disorders and neuroimaging features: a systematic review and meta-analysis. Int. J. Stroke 14, 359–371 (2019).

Article 
PubMed 

Google Scholar
 

Kohno, K. et al. Association of MRI-visible perivascular spaces with longitudinal cognitive decline over a decade. Neurology 106, e214803 (2026).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Barisano, G., Iv, M., Choupan, J. & Hayden-Gephart, M. Alzheimer’s disease neuroimaging initiative. Robust, fully-automated assessment of cerebral perivascular spaces and white matter lesions: a multicentre MRI longitudinal study of their evolution and association with risk of dementia and accelerated brain atrophy. EBioMedicine 111, 105523 (2025).

Article 
CAS 
PubMed 

Google Scholar
 

Yang, Y. et al. Enlarged perivascular spaces and age-related clinical diseases. Clin. Inter. Aging 18, 855–867 (2023).

Article 

Google Scholar
 

He, X.-F. et al. Voluntary exercise promotes glymphatic clearance of amyloid beta and reduces the activation of astrocytes and microglia in aged mice. Front. Mol. Neurosci. 10, 144 (2017).

Article 
PubMed 

Google Scholar
 

Bliss, E. S., Wong, R. H., Howe, P. R. & Mills, D. E. Benefits of exercise training on cerebrovascular and cognitive function in ageing. J. Cereb. Blood Flow. Metab. 41, 447–470 (2021).

Article 
PubMed 

Google Scholar
 

Pereira, J. B. et al. Plasma GFAP is an early marker of amyloid-β but not tau pathology in Alzheimer’s disease. Brain 144, 3505–3516 (2021).

Article 
PubMed 
PubMed Central 

Google Scholar
 

VandeBunte, A. M. et al. Physical activity relates to lower astrocytic activation and axonal breakdown in clinically normal older adults. Alzheimer’s Dement. 18, e063455 (2022).

Article 

Google Scholar
 

Raffin, J. Does physical exercise modify the pathophysiology of Alzheimer’s disease in older persons?. JAR Life 13, 77–81 (2024).

CAS 
PubMed 
PubMed Central 

Google Scholar
 

Roccati, E. et al. Modifiable dementia risk factors and AT(N) biomarkers: findings from the EPAD cohort. Front. Aging Neurosci. 16, 1346214 (2024).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Roccati, E. et al. Modifiable risk factors for dementia, cognition, and plasma phosphorylated tau 181 in a large-scale cohort of Australian older adults. Neurobiol. Aging 131, 106–114 (2023).

Article 
CAS 
PubMed 

Google Scholar
 

Zhong, S. et al. Associations of physical activity with alzheimer’s disease pathologies and cognition: the CABLE study. J. Alzheimer’s Dis. 89, 483–492 (2022).

Article 
CAS 

Google Scholar
 

Law, L. L. et al. Moderate intensity physical activity associates with CSF biomarkers in a cohort at risk for Alzheimer’s disease. Alzheimer’s Dement. 10, 188–195 (2018).


Google Scholar
 

Hou, X.-H. et al. Associations of healthy lifestyles with cerebrospinal fluid biomarkers of Alzheimer’s disease pathology in cognitively intact older adults: the CABLE study. Alzheimers Res. Ther. 13, 81 (2021).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Groot, C. et al. Mesial temporal tau is related to worse cognitive performance and greater neocortical tau load in amyloid-β–negative cognitively normal individuals. Neurobiol. Aging 97, 41–48 (2021).

Article 
CAS 
PubMed 

Google Scholar
 

Lowe, V. J. et al. Cross-sectional associations of tau-PET signal with cognition in cognitively unimpaired adults. Neurology 93, e29–e39 (2019).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Makizako, H. et al. Moderate-intensity physical activity, hippocampal volume, and memory in older adults with mild cognitive impairment. J. Gerontol. A Biol. Sci. Med. Sci. 70, 480–486 (2015).

Article 
CAS 
PubMed 

Google Scholar
 

Jak, A. J. et al. Quantification of five neuropsychological approaches to defining mild cognitive impairment. Am. J. Geriatr. Psychiatry 17, 368–375 (2009).

Article 
PubMed 
PubMed Central 

Google Scholar
 

The Wechsler Memory Scale—Revised | Springer Nature Link. https://link.springer.com/chapter/10.1007/978-1-4613-0555-2_3.

Buschke, H. Cued recall in amnesia. J. Clin. Neuropsychol. 6, 433–440 (1984).

Article 
CAS 
PubMed 

Google Scholar
 

Smith, A. Symbol Digit Modalities Test. https://doi.org/10.1037/t27513-000 (2016).

Aschenbrenner, S., Tucha, O. & Lange, K. W. Regensburger Wortflüssigkeits-Test (Hogrefe, 2000).

Xie, L. et al. Automated segmentation of medial temporal lobe subregions on in vivo T1-weighted MRI in early stages of Alzheimer’s disease. Hum. Brain Mapp. 40, 3431–3451 (2019).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Boccardi, M. et al. Delphi definition of the EADC-ADNI Harmonized Protocol for hippocampal segmentation on magnetic resonance. Alzheimer’s Dement. 11, 126–138 (2015).

Article 

Google Scholar
 

Frisoni, G. B. et al. The EADC-ADNI harmonized protocol for manual hippocampal segmentation on magnetic resonance: evidence of validity. Alzheimer’s Dement. 11, 111–125 (2015).

Article 

Google Scholar
 

Raz, N., Daugherty, A. M., Bender, A. R., Dahle, C. L. & Land, S. Volume of the hippocampal subfields in healthy adults: differential associations with age and a pro-inflammatory genetic variant. Brain Struct. Funct. 220, 2663–2674 (2015).

Article 
CAS 
PubMed 

Google Scholar
 

Valdés Hernández, M. D. C. et al. Influence of threshold selection and image sequence in in-vivo segmentation of enlarged perivascular spaces. J. Neurosci. Methods 403, 110037 (2024).

Article 
PubMed 

Google Scholar
 

Potter, G. M., Chappell, F. M., Morris, Z. & Wardlaw, J. M. Cerebral perivascular spaces visible on magnetic resonance imaging: development of a qualitative rating scale and its observer reliability. Cerebrovasc. Dis. 39, 224–231 (2015).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Isensee, F. et al. Automated brain extraction of multisequence MRI using artificial neural networks. Hum. Brain Mapp. 40, 4952–4964 (2019).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Joshi, A. A. et al. A hybrid high-resolution anatomical MRI atlas with sub-parcellation of cortical gyri using resting fMRI. J. Neurosci. Methods 374, 109566 (2022).

Article 
PubMed 
PubMed Central 

Google Scholar
 

Peterson, R. A. bestNormalize: Normalizing Transformation Functions. https://doi.org/10.32614/CRAN.package.bestNormalize (2025).

Kroth, H. et al. Discovery and preclinical characterization of [18F]PI-2620, a next-generation tau PET tracer for the assessment of tau pathology in Alzheimer’s disease and other tauopathies. Eur. J. Nucl. Med. Mol. Imaging 46, 2178–2189 (2019).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Ichise, M. et al. Linearized reference tissue parametric imaging methods: application to [11C]DASB positron emission tomography studies of the serotonin transporter in human brain. J. Cereb. Blood Flow. Metab. 23, 1096–1112 (2003).

Article 
PubMed 

Google Scholar
 

López-González, F. J. et al. QModeling: a multiplatform, easy-to-use and open-source toolbox for PET kinetic analysis. Neuroinformatics 17, 103–114 (2019).

Article 
PubMed 

Google Scholar
 

Want, A., Morgan, J. E. & Barde, Y.-A. Brain-derived neurotrophic factor measurements in mouse serum and plasma using a sensitive and specific enzyme-linked immunosorbent assay. Sci. Rep. 13, 7740 (2023).

Article 
CAS 
PubMed 
PubMed Central 

Google Scholar
 

Wickham, H. et al. Welcome to the Tidyverse. J. Open Source Softw. 4, 1686 (2019).

Article 

Google Scholar
 

Wei, T. and Simko, V. (2021) Corrplot Visualization of a Correlation Matrix. R Package Version 0.92. – References – Scientific Research Publishing. https://www.scirp.org/reference/referencespapers?referenceid=4233203.

Preacher, K. J. & Hayes, A. F. Asymptotic and resampling strategies for assessing and comparing indirect effects in multiple mediator models. Behav. Res. Methods 40, 879–891 (2008).

Article 
PubMed 

Google Scholar