Instituto de Biología, Departamento de Botánica, Universidad Nacional Autónoma de México, Tercer Circuito sn de Ciudad Universitaria, Ciudad de México, Mexico.
Department Territorio e Sistemi Agro-Forestali, University of Padova, Padova, Italy.
Plant Cell Environ. 2020 Dec;43(12):3068-3080. doi: 10.1111/pce.13884. Epub 2020 Oct 25.
While plant height is the main driver of variation in mean vessel diameter at the stem base (VD) across angiosperms, climate, specifically temperature, does play an explanatory role, with vessels being wider with warmer temperature for plants of the same height. Using a comparative approach sampling 537 species of angiosperms across 19 communities, we rejected selection favouring freezing-induced embolism resistance as being able to account for wider vessels for a given height in warmer climates. Instead, we give reason to suspect that higher vapour pressure deficit (VPD) accounts for the positive scaling of height-standardized VD (and potential xylem conductance) with temperature. Selection likely favours conductive systems that are able to meet the higher transpirational demand of warmer climates, which have higher VPD, resulting in wider vessels for a given height. At the same time, wider vessels are likely more vulnerable to dysfunction. With future climates likely to experience ever greater extremes of VPD, future forests could be increasingly vulnerable.
虽然植物高度是被子植物茎基部平均导管直径(VD)变化的主要驱动因素,但气候,特别是温度,确实具有解释作用,对于相同高度的植物,温度较高的导管较宽。通过比较方法,在 19 个群落中对 537 种被子植物进行采样,我们否定了选择有利于抗冻栓塞的观点,认为在温暖气候中,较高的 VPD 解释了与温度呈正相关的高度标准化 VD(和潜在的木质部导度)。相反,我们有理由怀疑较高的蒸气压亏缺(VPD)是导致与温度呈正相关的高度标准化 VD(和潜在的木质部导度)的原因。选择可能有利于能够满足温暖气候下更高蒸腾需求的导水系统,温暖气候下的 VPD 更高,从而导致相同高度下的导管更宽。同时,较宽的导管可能更容易出现功能障碍。随着未来气候可能经历更大的 VPD 极端变化,未来的森林可能更容易受到影响。