Literature DB >> 21438881

Responses of the photosynthetic electron transport system to excess light energy caused by water deficit in wild watermelon.

Satoko Sanda1, Kazuo Yoshida, Masayoshi Kuwano, Tadayuki Kawamura, Yuri Nakajima Munekage, Kinya Akashi, Akiho Yokota.   

Abstract

In plants, drought stress coupled with high levels of illumination causes not only dehydration of tissues, but also oxidative damage resulting from excess absorbed light energy. In this study, we analyzed the regulation of electron transport under drought/high-light stress conditions in wild watermelon, a xerophyte that shows strong resistance to this type of stress. Under drought/high-light conditions that completely suppressed CO(2) fixation, the linear electron flow was diminished between photosystem (PS) II and PS I, there was no photoinhibitory damage to PS II and PS I and no decrease in the abundance of the two PSs. Proteome analyses revealed changes in the abundance of protein spots representing the Rieske-type iron-sulfur protein (ISP) and I and K subunits of NAD(P)H dehydrogenase in response to drought stress. Two-dimensional electrophoresis and immunoblot analyses revealed new ISP protein spots with more acidic isoelectric points in plants under drought stress. Our findings suggest that the modified ISPs depress the linear electron transport activity under stress conditions to protect PS I from photoinhibition. The qualitative changes in photosynthetic proteins may switch the photosynthetic electron transport from normal photosynthesis mode to stress-tolerance mode.
Copyright © Physiologia Plantarum 2011.

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Year:  2011        PMID: 21438881     DOI: 10.1111/j.1399-3054.2011.01473.x

Source DB:  PubMed          Journal:  Physiol Plant        ISSN: 0031-9317            Impact factor:   4.500


  13 in total

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Review 10.  Plant Organellar Proteomics in Response to Dehydration: Turning Protein Repertoire into Insights.

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