Sunlight streaming through towering tree canopy against a blue sky
Sun peeks through the redwood tree canopy in the UC Davis Arboretum. (Gregory Urquiaga/UC Davis)

Coast Redwoods Slow Their ‘Breathing’ and ‘Eating’ When Temperatures Spike

Study Links High Temperatures to Physiological Changes in the World’s Tallest Trees

California’s iconic coast redwoods are used to growing in cool, coastal areas where the average temperature is around 59 degrees Fahrenheit. But as average yearly temperatures rise and heatwaves push to 100-degree-plus spikes, the trees are responding by slowing the very operation that nourishes them, according to a study from the University of California, Davis.

Small silver foil cover with curved clear wire and green clip on dark surface outdoors
Researchers covered small redwood branches in aluminum foil for 20 minutes to impose darkness, removed the foil and measured their responses to light to assess their capacity for photosynthesis. (Lily Klinek/UC Davis)

When under heat stress, the world’s tallest trees slow photosynthesis, the chemical reaction that turns sunlight, water and carbon dioxide from the air into carbon the trees use to grow and perform other essential processes. It’s as if the trees slow their “breathing” and, as a result, their “eating.” The findings raise alarm about the fate of the redwood forests, especially in their already vulnerable central, southern and eastern habitats in the state.

The study, published in JGR Biogeosciences, marks the first time anyone has studied the effects of heat on coast redwood photosynthesis, said lead author Lily Klinek, a Ph.D. candidate with the Plant Optics Lab in the UC Davis Department of Plant Sciences. The team used an array of measurements taken over three summers in a redwood forest in Mendocino County.

When temperatures topped 86 degrees, as they did during the summers of 2022 and 2024, the temperatures of some leaves were nearly 20 degrees higher than the temperature of the air. It’s a sign of stress. 

“The leaves aren’t able to cool down,” Klinek said, which means they probably closed their stomata – the tiny, mouth-like pores that “breathe” in the air’s carbon dioxide. Further tests in the lab at temperatures ranging up to 110 degrees confirmed photosynthesis was reduced, even when their “mouths” were open and taking in plenty of carbon dioxide.

“We don’t know what the upper temperature thresholds are for redwood photosynthesis and mortality,” Klinek said. “With this work, we see there’s a significant impact of heat on photosynthesis and physiology. That’s an important start for figuring out what parts of the redwood range are at risk, knowing what to expect and trying to intervene for the health of redwood ecosystems.”

Small green sprig in water-filled jar beneath white cylindrical sensor on tripod at lab bench
Redwood branches placed in jars of water to keep their leaves wet and stomata open. This helped researchers measure rates of photosynthesis at different temperatures. (Lily Klinek/UC Davis)

Redwoods sweat, too — unless they’re thirsty

Under the right circumstances, trees can regulate their temperature through a process called evapotranspiration. They use those tiny mouths, or stomata, to “sweat” out some of the moisture they hold inside to cool off.

“It’s similar to the way we sweat to stay cool,” Klinek said. 

Heat spikes not only raise air temperatures, but also burn off the coastal fog that redwoods depend on for much of their water. The huge gap found between air and leaf temperatures indicated that the leaves likely closed their stomata to avoid losing precious water and overheated as a result, Klinek explained.

In the lab, the researchers put their leaf samples in jars of water, so they had access to plenty of water and could sweat all they pleased. Still, photosynthesis was reduced, even as the leaves kept their stomata open. 

“This means that, even if the redwood trees have more water to sweat with, the heat might still impair their breathing and functioning,” Klinek said.

Additional authors include Troy Magney, Jessie Au and Milagros Rodriguez-Caton of UC Davis; Mukund Palat Rao of Columbia University; Lauren Fety of The Conservation Fund; and George Koch of Northern Arizona University.

The study was funded by the National Science Foundation and California Forestry and Fire Protection, and it was conducted in cooperation with The Conservation Fund.

Four smiling people taking a sunny forest selfie with lens flare and a parked car
The UC Davis Plant Optics Laboratory team pauses their field work in Mendocino to pose for a photo in 2022. From left, Associate Professor Troy Magney, researchers Lauren Fety, Jessie Au and Lily Klinek. (Troy Magney/UC Davis)

 

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