Literature DB >> 24164092

C3 photosynthesis in the desert plant Rhazya stricta is fully functional at high temperatures and light intensities.

Tracy Lawson1, Phillip A Davey1, Steven A Yates1, Ulrike Bechtold1, Mohammed Baeshen2, Nabih Baeshen2, Mohammed Z Mutwakil2, Jamal Sabir2, Neil R Baker1, Philip M Mullineaux1.   

Abstract

The C3 plant Rhazya stricta is native to arid desert environment zones, where it experiences daily extremes of heat, light intensity (PAR) and high vapour pressure deficit (VPD). We measured the photosynthetic parameters in R. stricta in its native environment to assess the mechanisms that permit it to survive in these extreme conditions. Infrared gas exchange analysis examined diel changes in assimilation (A), stomatal conductance (gs ) and transpiration (E) on mature leaves of R. stricta. A/ci analysis was used to determine the effect of temperature on carboxylation capacity (Vc,max ) and the light- and CO2 -saturated rate of photosynthesis (Amax ). Combined chlorophyll fluorescence and gas exchange light response curve analysis at ambient and low oxygen showed that both carboxylation and oxygenation of Rubisco acted as the major sinks for the end products of electron transport. Physiological analysis in conjunction with gene expression analysis suggested that there are two isoforms of Rubisco activase which may provide an explanation for the ability of R. stricta to maintain Rubisco function at high temperatures. The potential to exploit this ability to cope with extreme temperatures is discussed in the context of future crop improvement.
© 2013 The Authors. New Phytologist © 2013 New Phytologist Trust.

Entities:  

Keywords:  C3 photosynthesis; Rhazya stricta; Rubisco activase; heat stress; stomatal conductance; thermotolerance; transpiration

Mesh:

Substances:

Year:  2013        PMID: 24164092     DOI: 10.1111/nph.12559

Source DB:  PubMed          Journal:  New Phytol        ISSN: 0028-646X            Impact factor:   10.151


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