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Abstract
Climate change is increasing the severity and duration of drought events experienced by forest ecosystems. Because water is essential for tree physiological processes, the ability of trees to survive prolonged droughts will largely depend on whether they have access to reliable water sources. While many woody plant species exhibit the ability to shift water sources between different depths of soil and rock water in response to changes in climate and water availability, it is unclear if Sierra Nevada conifers exhibit this plasticity. Here we analysed the δ
18O and δ
13C values of annual tree rings to determine the water-use patterns of large Sierra Nevada conifers during the 2012–16 California drought and 4 years before this drought event (2004–07). We analysed four species (
Pinus jeffreyi Grev. & Balf. (Jeffrey pine),
Pinus lambertiana Dougl. (sugar pine),
Abies concolor (Gord. & Glend.) Lindl. Ex Hilderbr (white fir) and
Calocedrus decurrens (Torr.) Florin (incense-cedar)) across a range of topographic positions to investigate differences in water-use patterns by species and position on the landscape. We found no significant differences in δ
18O and δ
13C values for the pre-drought and drought periods. This stability in δ
18O values suggests that trees did not shift their water-use patterns in response to the 2012–16 drought. We did find species-specific differences in water-use patterns, with incense-cedar exhibiting more depleted δ
18O values than all other species. We also found trends that suggest the water source used by a tree may depend on topographic and growing environment attributes such as topographic wetness and the surrounding basal area. Overall, our results suggest that the water source used by trees varies by the species and topographic position, but that Sierra Nevada conifers do not switch their water-use patterns in response to the drought. This lack of plasticity could make Sierra Nevada conifers particularly vulnerable to drought mortality as their historically reliable water sources begin to dry out with climate change.
Citation
Goodwin, Marissa J; Kerhoulas, Lucy P; Zald, Harold S J; North, Malcolm P; Hurteau, Matthew D. 2023. Conifer water-use patterns across temporal and topographic gradients in the southern Sierra Nevada. Tree Physiology. 43(2): 210-220. https://doi.org/10.1093/treephys/tpac124.