Temperature acclimation of leaf respiration differs between marsh and mangrove vegetation in a coastal wetland ecotone

被引:13
|
作者
Sturchio, Matthew A. [1 ,5 ,6 ]
Chieppa, Jeff [1 ,2 ]
Chapman, Samantha K. [3 ,4 ]
Canas, Gabriela [1 ]
Aspinwall, Michael J. [1 ,2 ]
机构
[1] Univ North Florida, Dept Biol, Jacksonville, FL USA
[2] Auburn Univ, Sch Forestry & Wildlife Sci, Auburn, AL 36849 USA
[3] Villanova Univ, Dept Biol, Villanova, PA 19085 USA
[4] Villanova Univ, Ctr Biodivers & Ecosyst Stewardship, Villanova, PA 19085 USA
[5] Colorado State Univ, Dept Biol, Ft Collins, CO 80523 USA
[6] Colorado State Univ, Grad Degree Program Ecol, Ft Collins, CO 80523 USA
基金
美国国家科学基金会; 美国食品与农业研究所;
关键词
Avicennia germinans; coastal wetlands; coordination theory; homeostasis; respiratory capacity; Spartina alterniflora; thermal acclimation; THERMAL-ACCLIMATION; PLANT RESPIRATION; SPARTINA-ALTERNIFLORA; ELEVATED-TEMPERATURES; AVICENNIA-GERMINANS; GROWTH-RESPONSE; CARBON EXCHANGE; PINUS-RADIATA; SNOW GUM; PHOTOSYNTHESIS;
D O I
10.1111/gcb.15938
中图分类号
X176 [生物多样性保护];
学科分类号
090705 ;
摘要
Temperature acclimation of leaf respiration (R) is an important determinant of ecosystem responses to temperature and the magnitude of temperature-CO2 feedbacks as climate warms. Yet, the extent to which temperature acclimation of R exhibits a common pattern across different growth conditions, ecosystems, and plant functional types remains unclear. Here, we measured the short-term temperature response of R at six time points over a 10-month period in two coastal wetland species (Avicennia germinans [C-3 mangrove] and Spartina alterniflora [C-4 marsh grass]) growing under ambient and experimentally warmed temperatures at two sites in a marsh-mangrove ecotone. Leaf nitrogen (N) was determined on a subsample of leaves to explore potential coupling of R and N. We hypothesized that both species would reduce R at 25 degrees C (R-25) and the short-term temperature sensitivity of R (Q(10)) as air temperature (T-air) increased across seasons, but the decline would be stronger in Avicennia than in Spartina. For each species, we hypothesized that seasonal temperature acclimation of R would be equivalent in plants grown under ambient and warmed temperatures, demonstrating convergent acclimation. Surprisingly, Avicennia generally increased R-25 with increasing growth temperature, although the Q(10) declined as seasonal temperatures increased and did so consistently across sites and treatments. Weak temperature acclimation resulted in reduced homeostasis of R in Avicennia. Spartina reduced R-25 and the Q(10) as seasonal temperatures increased. In Spartina, seasonal temperature acclimation was largely consistent across sites and treatments resulting in greater respiratory homeostasis. We conclude that co-occurring coastal wetland species may show contrasting patterns of respiratory temperature acclimation. Nonetheless, leaf N scaled positively with R-25 in both species, highlighting the importance of leaf N in predicting respiratory capacity across a range of growth temperatures. The patterns of respiratory temperature acclimation shown here may improve the predictions of temperature controls of CO2 fluxes in coastal wetlands.
引用
收藏
页码:612 / 629
页数:18
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