Inhibition and acclimation of photosynthesis to heat stress is closely correlated with activation of ribulose-1,5-bisphosphate Carboxylase/Oxygenase

Author Information
  1. Law: United States Department of Agriculture-Agricultural Research Service, Western Cotton Research Laboratory, 4135 East Broadway Road, Phoenix, Arizona 85040-8803, USA.

Abstract

Increasing the leaf temperature of intact cotton (Gossypium hirsutum L.) and wheat (Triticum aestivum L.) plants caused a progressive decline in the light-saturated CO2-exchange rate (CER). CER was more sensitive to increased leaf temperature in wheat than in cotton, and both species demonstrated photosynthetic acclimation when leaf temperature was increased gradually. Inhibition of CER was not a consequence of stomatal closure, as indicated by a positive relationship between leaf temperature and transpiration. The activation state of ribulose-1,5-bisphosphate carboxylase/oxygenase (Rubisco), which is regulated by Rubisco activase, was closely correlated with temperature-induced changes in CER. Nonphotochemical chlorophyll fluorescence quenching increased with leaf temperature in a manner consistent with inhibited CER and Rubisco activation. Both nonphotochemical fluorescence quenching and Rubisco activation were more sensitive to heat stress than the maximum quantum yield of photochemistry of photosystem II. Heat stress led to decreased 3-phosphoglyceric acid content and increased ribulose-1, 5-bisphosphate content, which is indicative of inhibited metabolite flow through Rubisco. We conclude that heat stress inhibited CER primarily by decreasing the activation state of Rubisco via inhibition of Rubisco activase. Although Rubisco activation was more closely correlated with CER than the maximum quantum yield of photochemistry of photosystem II, both processes could be acclimated to heat stress by gradually increasing the leaf temperature.

References

  1. Plant Physiol. 1987 Sep;85(1):66-71 [PMID: 16665685]
  2. Plant Physiol. 1991 Nov;97(3):894-9 [PMID: 16668528]
  3. Photosynth Res. 1986 Jan;10(1-2):51-62 [PMID: 24435276]
  4. Biochim Biophys Acta. 1993 Sep 3;1202(1):47-55 [PMID: 8373824]
  5. Plant Physiol. 1998 Feb 1;116(2):539-46 [PMID: 9490757]
  6. Plant Physiol. 1997 Feb;113(2):575-86 [PMID: 9046598]
  7. Plant Physiol. 1997 Dec;115(4):1413-1420 [PMID: 12223874]
  8. Photosynth Res. 1990 Feb;23(2):119-30 [PMID: 24421056]
  9. Planta. 1977 Jan;136(3):233-8 [PMID: 24420396]
  10. Plant Physiol. 1997 Jan;113(1):243-248 [PMID: 12223603]
  11. Biotechniques. 1992 Dec;13(6):906-11 [PMID: 1476744]
  12. Arch Biochem Biophys. 1989 Jan;268(1):93-9 [PMID: 2912385]
  13. Plant Physiol. 1997 Dec;115(4):1569-80 [PMID: 9414564]
  14. Plant Physiol. 1998 Jan;116(1):439-444 [PMID: 9449851]
  15. Plant Physiol. 1987 Jan;83(1):69-74 [PMID: 16665218]
  16. Planta. 1991 Mar;183(4):542-54 [PMID: 24193848]
  17. Plant Physiol. 1996 May;111(1):169-178 [PMID: 12226282]
  18. Plant Physiol. 1982 Nov;70(5):1530-4 [PMID: 16662711]
  19. Planta. 1984 Jun;161(4):308-13 [PMID: 24253719]
  20. Planta. 1981 Jan;151(1):33-9 [PMID: 24301667]
  21. Plant Physiol. 1988 Sep;88(1):148-52 [PMID: 16666256]
  22. Plant Physiol. 1997 Jun;114(2):439-444 [PMID: 12223718]

Word Cloud

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