Please wait a minute...
Journal of Integrative Agriculture  2014, Vol. 13 Issue (6): 1206-1215    DOI: 10.1016/S2095-3119(13)60604-8
Crop Genetics · Breeding · Germplasm Resources Advanced Online Publication | Current Issue | Archive | Adv Search |
Wheat PROTON GRADIENT REGULATION 5 is Involved in Tolerance to Photoinhibition
 WANG Yuan-ge, HE Xue, MA Wen-ying, ZHAO Xue-qiang, LI Bin , TONG Yi-ping
The State Key Laboratory for Plant Cell and Chromosome Engineering, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing 100101, P.R.China
Download:  PDF in ScienceDirect  
Export:  BibTeX | EndNote (RIS)      
摘要  Wheat (Triticum aestivum L.) often experiences photoinhibition due to strong light during the grain filling stage. As such, increasing the tolerance of wheat to photoinhibition is very desirable in breeding efforts focused on increasing grain yields. Previous reports have suggested that PROTON GRADIENT REGULATION 5 (PGR5) plays a central role in the generation of a proton gradient across the thylakoid membrane (DpH) and in acclimation to high light intensity conditions. Three PGR5 homoeologues were isolated from wheat, and mapped onto chromosomes 7A, 7B and 7D, respectively. The TaPGR5s shared highly similar genomic sequences and gene structures. The transcripts of TaPGR5s were found to be abundantly expressed in the flag leaves, and were transiently up-regulated by treatment with high light. High light treatment inhibited the net photosynthetic rate (Pn) and the maximal quantum yield of photosystem II (Fv/Fm). Further, these inhibitions were more evident in the leaves with reduced expression of TaPGR5s achieved using virus-induced gene silencing methods. Moreover, reducing TaPGR5 expression impaired the induction of non-photochemical quenching (NPQ), which caused more severe cell membrane damage and lipid peroxidation in high light. Additionally, we observed that TaPGR5s transcripts were more abundantly expressed in the wheat genotypes with higher ms-delayed light emission (ms-DLE), a value reflecting transthylakoid DpH. These results suggested that TaPGR5s play important roles in the tolerance of wheat to photoinhibition.

Abstract  Wheat (Triticum aestivum L.) often experiences photoinhibition due to strong light during the grain filling stage. As such, increasing the tolerance of wheat to photoinhibition is very desirable in breeding efforts focused on increasing grain yields. Previous reports have suggested that PROTON GRADIENT REGULATION 5 (PGR5) plays a central role in the generation of a proton gradient across the thylakoid membrane (DpH) and in acclimation to high light intensity conditions. Three PGR5 homoeologues were isolated from wheat, and mapped onto chromosomes 7A, 7B and 7D, respectively. The TaPGR5s shared highly similar genomic sequences and gene structures. The transcripts of TaPGR5s were found to be abundantly expressed in the flag leaves, and were transiently up-regulated by treatment with high light. High light treatment inhibited the net photosynthetic rate (Pn) and the maximal quantum yield of photosystem II (Fv/Fm). Further, these inhibitions were more evident in the leaves with reduced expression of TaPGR5s achieved using virus-induced gene silencing methods. Moreover, reducing TaPGR5 expression impaired the induction of non-photochemical quenching (NPQ), which caused more severe cell membrane damage and lipid peroxidation in high light. Additionally, we observed that TaPGR5s transcripts were more abundantly expressed in the wheat genotypes with higher ms-delayed light emission (ms-DLE), a value reflecting transthylakoid DpH. These results suggested that TaPGR5s play important roles in the tolerance of wheat to photoinhibition.
Keywords:  wheat       TaPGR5       high light stress       photoinhibition       photosynthesis  
Received: 09 April 2013   Accepted:
Fund: 

This research was supported by the National Basic Research Program of China (2009CB118302 and 2011CB100304).

Corresponding Authors:  TONG Yi-ping, Tel: +86-10-64806556, Fax: +86-10-64807609, E-mail: yptong@genetics.ac.cn     E-mail:  yptong@genetics.ac.cn

Cite this article: 

WANG Yuan-ge, HE Xue, MA Wen-ying, ZHAO Xue-qiang, LI Bin , TONG Yi-ping. 2014. Wheat PROTON GRADIENT REGULATION 5 is Involved in Tolerance to Photoinhibition. Journal of Integrative Agriculture, 13(6): 1206-1215.

Aro E M, Suorsa M, Rokka A, Allahverdiyeva Y, Paakkarinen V, Saleem A, Battchikova N, Rintamäki E. 2005. Dynamics of photosystem II: A proteomic approach to thylakoid protein complexes. Journal of Experimental Botany, 56, 347-356

 Aro E M, Virgin I, Andersson B. 1993. Photoinhibition of photosystem II: inactivation, protein damage and turnover. Biochimica et Biophysica Acta, 1143, 113-134

 Cheng J F, Ma W M, Chen G Y, Hu M J, Shen Y G, Li Z S, Tong Y P, Li B, Li H W. 2009. Dynamic changes of photosynthetic characteristics in Xiaoyan 54, Jing 411, and the stable selected superior strains of their hybrid progenies. Acta Agronomica Sinica, 35, 1051-1058 (in Chinese)

Fang J J, Ma W Y, Zhao X Q, He X, Li B, Tong Y P, Li Z S. 2012. Lower canopy temperature is associated with higher cytokinin concentration in the flag leaf of wheat. Crop Science, 52, 2743-2756

Field T S, Lee D W, Holbrook N M 2001. Why leaves turn red in autumn? The role of anthocyanins in senescing leaves of red-osier dogwood. Plant Physiology, 127, 566-574

Gould K S, Markham K R, Smith R H, Goris J J 2000. Functional role of anthocyanins in the leaves of Quintinia serrata A. Cunn. Journal of Experimental Botany, 51, 1107-1115

 Hakala M, Tuominen I, Keränen M, Tyystjärvi T, Tyystjärvi E. 2005. Evidence for the role of the oxygen-evolving manganese complex in photoinhibition of photosystem II. Biochimica et Biophysica Acta, 1706, 68-80

 Kasahara M, Kagawa T, Oikawa K, Suetsugu N, Miyao M, Wada M. 2002. Chloroplast avoidance movementreduces photodamage in plants. Nature, 420, 829-832

 Krause G H, Weis E. 1991. Chlorophyll fluorescence and photosynthesis: The basics. Annual Review of Plant Physiology and Plant Molecular Biology, 42, 313-349

 Levitt J. 1980. Responses of Plants to Environmental Stresses: Water, Radiation, Salt and Other Stresses. Academic Press, New York.

Li X P, Zhao X Q, He X, Zhao G Y, Liu D C, Zhang A M, Zhang X Y, Tong Y P, Li Z S. 2011. Haplotype analysis of the genes encoding glutamine synthetase plastic isoforms and their association with nitrogen-use-and yield-related traits in bread wheat. New Phytologist, 189, 449-458

 Livak K J, Schmittgen T D. 2001. Analysis of relative gene expression data using real-time quantitative PCR and the 2-DDCT method. Methods, 25, 402-408

 Long T A, Okegawa Y, Shikanai T, Schmidt G W, Covert S F. 2008. Conserved role of PROTON GRADIENT REGULATION 5 in the regulation of PSI cyclic electron transport. Planta, 228, 907-918

 Mattoo A K, Edelman M. 1987. Intransmbrane translocation and post-translational palmitoylation of the chloroplast 32-kDa herbicide-binding protein. Proceedings of the National Academy of Sciences of the United States of America, 84, 1497-1501

 Munekage Y, Hojo M, Meurer J, Endo T, Tasaka M, Shikanai T. 2002. PGR5 is involved in cyclic electron flow around photosystem I and is essential for photoprotection in Arabidopsis. Cell, 110, 361-371

 Munekage Y N, Genty B, Peltier G. 2008. Effect of PGR5 impairment on photosynthesis and growth in Arabidopsis thaliana. Plant and Cell Physiology, 49, 1688-1698

 Murata N, Takahashi S, Nishiyama Y, Allakhverdiev S I. 2007. Photoinhibition of photosystem II under environmental stress. Biochimica et Biophysica Acta, 1767, 414-421

 Müller P, Li X P, Niyogi K K. 2001. Non-photochemical quenching. A response to excess light energy. Plant Physiology, 125, 1558-1566

 Nishiyama Y, Allakhverdiev S I, Murata N. 2006. A new paradigm for the action of reactive oxygen species in the photoinhibition of photosystem II. Biochimica et Biophysica Acta, 1757, 742-749

 Nishiyama Y, Yamamoto H, Allakhverdiev S I, Inaba M, Yokota A, Murata N. 2001. Oxidative stress inhibits the repair of photodamage to the photosynthetic machinery. EMBO Journal, 20, 5587-5594

Nishikawa Y, Yamamoto H, Okegawa Y, Wada S, Sato N, Taira Y, Sugimoto K, Makino A, Shikanai T. 2012. PGR5- dependent cyclic electron transport around PSI contributes to the redox homeostasis in chloroplasts rather than CO2 fixation and biomass production in rice. Plant and Cell Physiology, 53, 2117-2126

 Niyogi K K. Photoprotection revisited: Genetic and molecular approaches. 1999. Annual Review of Plant Physiology and Plant Molecular Biology, 50, 333-359

 Ohad I, Kyle D J, Arntzen C J. 1984. Membrane protein damage and repair: removal and replacement of inactivated 32-kilodalton polypeptides in chloroplast membranes. The Journal of Cell Biology, 99, 481-485

 Ohnishi N, Allakhverdiev S I, Takahashi S, Higashi S, Watanabe M, Nishiyama Y, Murata N. 2005. Two-step mechanism of photodamage to photosystem II: Step one occurs at the oxygen-evolving complex and step two occurs at the photochemical reaction center. Biochemistry, 44, 8494-8499

 Okegawa Y, Long T A, Iwano M, Takayama S, Kobayashi Y, Covert S F, Shikanai T. 2007. A balanced PGR5 level is required for chloroplast development and optimum operation of cyclic electron transport around photosystem I. Plant and Cell Physiology, 48, 1462-1471

 Reynolds M, Foulkes J, Furbank R, Griffiths S, King J, Murchie E, Parry M, Slafer G. 2012. Achieving yield gains in wheat. Plant, Cell and Environment, 35, 1799-1823

 Sairam R K. 1994. Effect of moisture stress on physiological activities of two contrasting wheat genotypes. Indian Journal of Experimental Biology, 32, 594-593

 Smillie R M, Hetherington S E. 1999. Photoabatement by anthocyanin shields photosynthetic systems from light stress. Photosynthetica, 36, 451-463

 Steyn W J, Wand S J E, Holcroft D M, Jacobs G. 2002. Anthocyanins in vegetative tissues: A proposed unified function in photoprotection. New Phytologist, 155, 349- 361.

Suorsa M, Järvi S, Grieco M, Nurmi M, Pietrzykowska M, Rantala M, Kangasjärvi S, Paakkarinen V, Tikkanen M, Jansson S, Aro E M. 2012. PROTON GRADIENT REGULATION5 is essential for proper acclimation of Arabidopsis photosystem I to naturally and artificially fluctuating light conditions. The Plant Cell, 24, 2934-2948

Takahashi S, Bauwe H, Badger M. 2007. Impairment of the photorespiratory pathway accelerates photoinhibition of photosystem II by suppression of repair process and not acceleration of damage process in Arabidopsis. Plant Physiology, 144, 487-494

Takahashi S, Milward S E, Fan D Y, Chow W S, Badger M R. 2009. How does cyclic electron flow alleviate photoinhibitionin Arabidopsis? Plant Physiology, 149, 1560-1567

Takahashi S, Murata N. 2008. How do environmental stresses accelerate photoinhibition? Trends in Plant Science, 13, 178-182

Tyystjärvi E. 2008. Photoinhibition of photosystem II and photodamage of the oxygen evolving manganese cluster. Coordination Chemistry Reviews, 252, 361-376

Wang P, Duan W, Takabayashi A, Endo T, Shikanai T, Ye J Y, Mi H L. 2006. Chloroplastic NAD(P)H dehydrogenase in tobacco leaves functions in alleviation of oxidative damage caused by temperature stress. Plant Physiology, 141, 465-474

 Wang S W, Xu C C, Bai K Z, Zhang Q D, Li L B, Kuang T Y, Li J Y, Li Z S. 2000. Comparative study on photoinhibition between two wheat genotypes. Acta Botanica Sinica, 42, 1300-1303 (in Chinese)

Wraight C A, Crofts A R. 1971. Delayed light emission and high energy state of chloroplasts. European Journal of Biochemistry, 19, 386-397

 Yang X H, Chen X Y, Ge Q Y, Li B, Tong Y P, Zhang A M, Li Z S, Kuang T Y, Lu C M. 2006. Tolerance of photosynthesis to photoinhibition, high temperature and drought stress in flag leaves of wheat: A comparison between a hybridization line and its parents grown under field conditions. Plant Science, 171, 389-397

 Yu F, Tang C Q, Xin Y Y, Peng D C, Li L B, Kuang T Y, Li Z S. 2001. Comparative spectroscopic studies oil the photoinhibition process in photosystem I complex from two wheat cultivars. Acta Botanica Sinica, 43, 1243-1249 (in Chinese)

Zhao H B, Guo H J, Zhao L S, Gu J Y, Zhao S R, Li J H, Liu L X. 2011. Agronomic traits and photosynthetic characteristics of chlorophyll-deficient wheat mutant induced by spaceflight environment. Acta Agronomica Sinica, 37, 119-126 (in Chinese)

Zhou H B, Li S F, Deng Z Y, Wang X P, Chen T, Zhang J S, Chen S Y, Ling H Q, Zhang A M, Wang D W, Zhang X Q. 2007. Molecular analysis of three new receptor-like kinase genes from hexaploid wheat and evidence for their participation in wheat hypersensitive response to stripe rust fungus infection. The Plant Journal, 52, 420-434
[1] CHU Jin-peng, GUO Xin-hu, ZHENG Fei-na, ZHANG Xiu, DAI Xing-long, HE Ming-rong. Effect of delayed sowing on grain number, grain weight, and protein concentration of wheat grains at specific positions within spikes[J]. >Journal of Integrative Agriculture, 2023, 22(8): 2359-2369.
[2] WANG Xing-long, ZHU Yu-peng, YAN Ye, HOU Jia-min, WANG Hai-jiang, LUO Ning, WEI Dan, MENG Qing-feng, WANG Pu. Irrigation mitigates the heat impacts on photosynthesis during grain filling in maize [J]. >Journal of Integrative Agriculture, 2023, 22(8): 2370-2383.
[3] XU Yan-xia, ZHANG Jing, WAN Zi-yun, HUANG Shan-xia, DI Hao-chen, HE Ying, JIN Song-heng. Physiological and transcriptome analyses provide new insights into the mechanism mediating the enhanced tolerance of melatonin-treated rhododendron plants to heat stress[J]. >Journal of Integrative Agriculture, 2023, 22(8): 2397-2411.
[4] DING Yong-gang, ZHANG Xin-bo, MA Quan, LI Fu-jian, TAO Rong-rong, ZHU Min, Li Chun-yan, ZHU Xin-kai, GUO Wen-shan, DING Jin-feng. Tiller fertility is critical for improving grain yield, photosynthesis and nitrogen efficiency in wheat[J]. >Journal of Integrative Agriculture, 2023, 22(7): 2054-2066.
[5] FAN Ting-lu, LI Shang-zhong, ZHAO Gang, WANG Shu-ying, ZHANG Jian-jun, WANG Lei, DANG Yi, CHENG Wan-li. Response of dryland crops to climate change and drought-resistant and water-suitable planting technology: A case of spring maize[J]. >Journal of Integrative Agriculture, 2023, 22(7): 2067-2079.
[6] WU Xian-xin, ZANG Chao-qun, ZHANG Ya-zhao, XU Yi-wei, WANG Shu, LI Tian-ya, GAO Li.

Characterization of wheat monogenic lines with known Sr genes and wheat cultivars for resistance to three new races of Puccinia graminis f. sp. tritici in China [J]. >Journal of Integrative Agriculture, 2023, 22(6): 1740-1749.

[7] DU Xiang-bei, XI Min, WEI Zhi, CHEN Xiao-fei, WU Wen-ge, KONG Ling-cong. Raised bed planting promotes grain number per spike in wheat grown after rice by improving spike differentiation and enhancing photosynthetic capacity[J]. >Journal of Integrative Agriculture, 2023, 22(6): 1631-1644.
[8] ZHANG Chong, WANG Dan-dan, ZHAO Yong-jian, XIAO Yu-lin, CHEN Huan-xuan, LIU He-pu, FENG Li-yuan, YU Chang-hao, JU Xiao-tang. Significant reduction of ammonia emissions while increasing crop yields using the 4R nutrient stewardship in an intensive cropping system[J]. >Journal of Integrative Agriculture, 2023, 22(6): 1883-1895.
[9] ZHAO Xiao-dong, QIN Xiao-rui, LI Ting-liang, CAO Han-bing, XIE Ying-he. Effects of planting patterns plastic film mulching on soil temperature, moisture, functional bacteria and yield of winter wheat in the Loess Plateau of China[J]. >Journal of Integrative Agriculture, 2023, 22(5): 1560-1573.
[10] ZHANG Zhen-zhen, CHENG Shuang, FAN Peng, ZHOU Nian-bing, XING Zhi-peng, HU Ya-jie, XU Fang-fu, GUO Bao-wei, WEI Hai-yan, ZHANG Hong-cheng. Effects of sowing date and ecological points on yield and the temperature and radiation resources of semi-winter wheat[J]. >Journal of Integrative Agriculture, 2023, 22(5): 1366-1380.
[11] LI Jiao-jiao, ZHAO Li, LÜ Bo-ya, FU Yu, ZHANG Shu-fa, LIU Shu-hui, YANG Qun-hui, WU Jun, LI Jia-chuang, CHEN Xin-hong. Development and characterization of a novel common wheat–Mexico Rye T1DL·1RS translocation line with stripe rust and powdery mildew resistance[J]. >Journal of Integrative Agriculture, 2023, 22(5): 1291-1307.
[12] DONG Xiu-chun, QIAN Tai-feng, CHU Jin-peng, ZHANG Xiu, LIU Yun-jing, DAI Xing-long, HE Ming-rong. Late sowing enhances lodging resistance of wheat plants by improving the biosynthesis and accumulation of lignin and cellulose[J]. >Journal of Integrative Agriculture, 2023, 22(5): 1351-1365.
[13] JIANG Yun, WANG De-li, HAO Ming, ZHANG Jie, LIU Deng-cai.

Development and characterization of wheat–Aegilops kotschyi 1Uk(1A) substitution line with positive dough quality parameters [J]. >Journal of Integrative Agriculture, 2023, 22(4): 999-1008.

[14] Sunusi Amin ABUBAKAR, Abdoul Kader Mounkaila HAMANI, WANG Guang-shuai, LIU Hao, Faisal MEHMOOD, Abubakar Sadiq ABDULLAHI, GAO Yang, DUAN Ai-wang. Growth and nitrogen productivity of drip-irrigated winter wheat under different nitrogen fertigation strategies in the North China Plain[J]. >Journal of Integrative Agriculture, 2023, 22(3): 908-922.
[15] TU Ke-ling, YIN Yu-lin, YANG Li-ming, WANG Jian-hua, SUN Qun. Discrimination of individual seed viability by using the oxygen consumption technique and headspace-gas chromatography-ion mobility spectrometry[J]. >Journal of Integrative Agriculture, 2023, 22(3): 727-737.
No Suggested Reading articles found!