4.4 Article

Poplar saplings exposed to recurring temperature shifts of different amplitude exhibit differences in leaf gas exchange and growth despite equal mean temperature

期刊

AOB PLANTS
卷 6, 期 -, 页码 -

出版社

OXFORD UNIV PRESS
DOI: 10.1093/aobpla/plu018

关键词

A : R ratio; carbon allocation; leaf proteins; Populus deltoides x nigra

资金

  1. United States Department of Energy NICCR Program [07-SC-NICCR-1060]
  2. Fundacao para a Ciencia e Tecnologia [SFRH/BPD/28384/2006]
  3. Fundação para a Ciência e a Tecnologia [SFRH/BPD/28384/2006] Funding Source: FCT

向作者/读者索取更多资源

Most investigations of plant responses to changes in temperature have focused on a constant increase in mean day/night temperature without considering how differences in temperature cycles can affect physiological processes and growth. To test the effects of changes in growth temperature on foliar carbon balance and plant growth, we repeatedly exposed poplar saplings (Populus deltoides x nigra) to temperature cycles consisting of 5 days of a moderate (M, +5 degrees C) or extreme (E, + 10 degrees C) increase in temperature followed by 5 days of a moderate (M, -5 degrees C) or extreme (E, -10 degrees C) decrease in temperature, with respect to a control treatment (C, 23.4 degrees C). The temperature treatments had the same mean temperature over each warm and cool cycle and over the entire study. Our goal was to examine the influence of recurring temperature shifts on growth. Net photosynthesis (A) was relatively insensitive to changes in growth temperature (from 20 to 35 degrees C), suggesting a broad range of optimum temperature for photosynthesis. Leaf respiration (R) exhibited substantial acclimation to temperature, having nearly the same rate at 13 degrees C as at 33 degrees C. There was no evidence that preconditioning through temperature cycles affected the response of A or R to treatment temperature fluctuations. Averaged across the complete warm/cool temperature cycle, the A : R ratio did not differ among the temperature treatments. While foliar carbon balance was not affected, the temperature treatments significantly affected growth. Whole-plant biomass was 1.5 times greater in the M treatment relative to the C treatment. Carbon allocation was also affected with shoot volume and biomass greater in the M and E treatments than in the C treatment. Our findings indicate that temperature fluctuations can have important effects on growth, though there were few effects on leaf gas exchange, and can help explain differences in growth that are not correlated with mean growth temperature.

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