The study found that heart rate immediately after a lunge jumped to around 22 beats per minute in blue whales and 28 in humpbacks, easing back down over the roughly 60 seconds it takes blue whales to filter, or 17 seconds for humpbacks.

The likely explanation is that a lunge is too fast and too powerful to run on oxygen-fuelled metabolism alone. “These animals are probably not powering those sprints using only aerobic energy stores, likely because they are too powerful, they just can’t get enough oxygen to the muscle in that short bit of time,” said Blawas. 

The study points, instead, to anaerobic pathways – the same ones human sprinters rely on – with the elevated heart rate during the glide helping resupply oxygen and restore energy stores before the next lunge.

Comparing the two species, the researchers also found that blue whale operate across a far wider heart range than humpbacks at roughly six to seven times the difference between their lowest and highest heart rates, compared to about three in humans. Blawas calls this ‘heart rate scope.’

“These really responsive, flexible heart rates that are highly tuneable are important for efficiently matching the demands of exercise,” continued Blawas. “This idea that rorquals have this larger heart rate scope maybe allows them to tune their oxygen supply to a greater degree than many a human, or a smaller terrestrial or marine mammal, might be able to.”

It’s a pattern that has never been documented in the ocean before, and one that suggests that a flexible heart may be one of the physiological keys that let whales grow so large in the first place, idling cheaply for most of a dive, while still able to summon an explosive sprint on demand.

Existing research already shows that rorquals feed harder when prey is dense, and stop bothering when it isn’t.

“If we think of it as, for example, maybe a prey patch becoming sparser, it’s like our willingness to go to a poorly stocked grocery store… you’re just not going to go if it doesn’t have most of the things you’re looking for,” Blawas explained. As ocean warming and shifting currents alter where krill aggregate, that threshold behaviour might start to alter, too. Whales operating this close to their energetic limits may simply abandon a thinning patch rather than adapt to it.

The tagging technology developed in this study also points towards what Blawas has called “whale wearables” – tags that could track an individual whale’s heart rate and stress levels over much longer periods, including its response to an approaching ship or loud underwater noise.

“We want to get these tags to the point where we can put them on whales and measure heart rate over long periods of time, and study variables like an individual’s resting heart rate, or its heart rate variability, or changes in heart rate when it’s exposed to a boat that might approach it.”

For whales that share feeding grounds with shipping lanes, that kind of data could help shape how human activity is managed around them. 

For Blawas, the headline finding is simpler than any of this.

“I think, for the first time, we show that the largest animals on the planet have unique cardiac functions – they have really flexible heart rates – that allow them to perform these sprints underwater,” she said. “These animals are fascinating, and people are at baseline fascinated by them because they are so big and seem so different. But actually, they’re not. They share all the same mammalian systems that we have.”

Click here for more from the Oceanographic Newsroom.