Related Experiment Video
Updated: Mar 29, 2026

Temperature Response of Soil Organic Matter Decomposition Rates: Construction and Applications of a Temperature Gradient Block
Published on: January 30, 2026
Tropical nighttime warming as a dominant driver of variability in the terrestrial carbon sink
William R L Anderegg1, Ashley P Ballantyne2, W Kolby Smith2
1Department of Ecology and Evolutionary Biology, Princeton University, Princeton, NJ 08544; Department of Biology, University of Utah, Salt Lake City, UT 84112; anderegg@princeton.edu pacala@princeton.edu.
Abstract:
The terrestrial biosphere is currently a strong carbon (C) sink but may switch to a source in the 21st century as climate-driven losses exceed CO2-driven C gains, thereby accelerating global warming. Although it has long been recognized that tropical climate plays a critical role in regulating interannual climate variability, the causal link between changes in temperature and precipitation and terrestrial processes remains uncertain. Here, we combine atmospheric mass balance, remote sensing-modeled datasets of vegetation C uptake, and climate datasets to characterize the temporal variability of the terrestrial C sink and determine the dominant climate drivers of this variability. We show that the interannual variability of global land C sink has grown by 50-100% over the past 50 y. We further find that interannual land C sink variability is most strongly linked to tropical nighttime warming, likely through respiration. This apparent sensitivity of respiration to nighttime temperatures, which are projected to increase faster than global average temperatures, suggests that C stored in tropical forests may be vulnerable to future warming.
Related Concept Videos
Global Climate Change
Microbes and Climate Change
The Carbon Cycle
Carbon-dioxide Fixation
What is Climate?
Regulation of Transpiration by Stomata

