Investigating primary sites of damage in photosystem II in response to high temperature
Author:
Funder
ugc India
DST India
Publisher
Springer Science and Business Media LLC
Subject
Plant Science,Agronomy and Crop Science
Link
http://link.springer.com/content/pdf/10.1007/s40502-015-0176-1.pdf
Reference36 articles.
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2. Babani, F., & Lichtenthaler, H. K. (1996). Light-induced and age dependent development of chloroplasts in etiolated barley leaves as visualized by determination of photosynthetic pigments, CO2 assimilation rates and different kinds of chlorophyll fluorescence ratios. Journal of Plant Physiology, 148, 555–566.
3. Barra, M., Haumann, M., & Dau, H. (2005). Specific loss of the extrinsic 18 kDa protein from photosystem II upon heating to 47°C causes inactivation of oxygen evolution likely due to Ca release from the Mn-complex. Photosynthesis Research, 84, 231–237.
4. Chen, L. S., & Cheng, L. (2009). Photosystem 2 is more tolerant to high temperature in apple [Malus domestica Borkh] leaves than in fruit peel. Photosynthetica, 47, 112–120.
5. Christen, D., Schőnmanna, S., Jermini, M., Strasser, R. J., & Defago, G. (2007). Characterization and early detection of grapevine [Vitis vinifera] stress responses to esca disease by in situ chlorophyll fluorescence and comparison with drought stress. Environmental and Experimental Botony, 60, 504–514.
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