[1] 李雪,沙栖平,高雪芹,等.不同紫花苴蓿种质材料萌发期耐盐性鉴定与综合评价[J].草地学报,2020,28(2):437-445 [2] 全国畜牧总站.中国草业统计2020[M].北京:中国农业出版社,2022:70-71 [3] 苏力合,张凡凡,王旭哲,等.积雪覆盖对不同秋眠型紫花苜蓿产草量及营养品质的影响[J].草地学报,2021,29(2):356-363 [4] 刘鹏,孟庆伟,赵世杰.冷敏感植物的低温光抑制及其生化保护机制[J].植物生理学通讯,2001,37(1):76-82 [5] APOSTOLOVA,EMILIA L. Effect of high-light on photosynthetic apparatus with different content of anionic lipids and organization of light-harvesting complex of photosystem II[J]. Acta Physiologiae Plantarum,2013,35(3):975-978 [6] FEGN W,NAN W,LUYUE Z,et al. Light Signaling-Dependent Regulation of Photoinhibition and Photoprotection in Tomato[J]. Plant physiology,2018,176(2):1311-1326 [7] 赵文静.高、低温胁迫对紫花苜蓿幼苗光合作用和光保护机制的影响[D].乌鲁木齐:新疆农业大学,2022:7-8 [8] ALONSO Z,CRISTIAN M. Concepts of photochemical damage of Photosystem II and the role of excessive excitation[J]. Journal of Photochemistry and Photobiology C:Photochemistry Reviews,2021,47(1):100421-100421 [9] MASARU K,KO N,ICHIRO T. Roles of the Cyclic Electron Flow Around PSI (CEF-PSI) and O2-Dependent Alternative Pathways in Regulation of the Photosynthetic Electron Flow in Short-Term Fluctuating Light in Arabidopsis thaliana[J]. Plant & Cell Physiology,2014,55(5):990-1004 [10] 林宏辉,张大伟,李鹏旭,等.AOX介导的线粒体与叶绿体之间的信号传导[J].西华师范大学学报:自然科学版,2016,37(1):5 [11] KOZAKI A,TAKEBA G. Photorespiration protects C3 plants from photooxidation[J]. Nature,1996,384(6609):557-560 [12] 张金玲,陈海鹏,程达,等.毛乌素沙地臭柏(Sabina vulgaris Ant.)光抑制响应机制研究意义[J].干旱区研究,2018,35(4):9 [13] 宋松泉,陈玲,傅家瑞.不同温度对甜菜种子吸胀过程中线粒体CCO和MDH活性的影响[J].种子,1999,18(4):6-8 [14] ABHAYPRATAP V,DEVI S T,JENNIFER S,et al. Importance of the alternative oxidase (AOX) pathway in regulating cellular redox and ROS homeostasis to optimize photosynthesis during restriction of the cytochrome oxidase pathway in Arabidopsis thaliana.[J]. Annals of Botany,2015,116(4):555-69 [15] TOMAZ T,BAGARD M,PRACHAROENWATTANA I,et al. Mitochondrial malate dehydrogenase lowers leaf respiration and alters photorespiration and plant growth in Arabidopsis.[J]. Plant Physiology,2010,154(3):1143-1157 [16] YOSHIDA K,TERASHIMA I,NOGUCHI K. How and why does mitochondrial respiratory chain respond to light?[J]. Plant Signaling & Behavior,2011,6(6):864-6 [17] 姜闯道,高辉远,邹琦,等.二硫苏糖醇处理导致大豆叶片两光系统间激发能分配失衡[J].植物生理与分子生物学学报,2003,29(06):561-568 [18] 陶宗娅,邹琦.Mehler反应在大豆叶片耗散过剩光能中的作用[J].植物生理与分子生物学学报,2001,27(1):66-72 [19] 叶子飘,王怡娟,王令俐,等.大豆叶片光呼吸对光强和CO2浓度的响应[J].生态学杂志,2017,36(9):2535-2541 [20] STRASSER B J. Donor side capacity of Photosystem II probed by chlorophyll a fluorescence transients[J]. Photosynthesis Research,1997,52(2):147-155 [21] 李天来,路涛,刘玉凤,等.高等植物PSⅠ和PSⅡ光抑制机理的研究进展[J].沈阳农业大学学报,2016,47(5):7 [22] HARBINSON J,FOYER C H. Relationships between the Efficiencies of Photosystems I and II and Stromal Redox State in CO2-Free Air:Evidence for Cyclic Electron Flow in Vivo.[J]. Plant Physiology,1991,97(1):41-49 [23] KRAMER D M,JOHNSON G,KIIRATS O,et al. New Fluorescence Parameters for the Determination of Q A Redox State and Excitation Energy Fluxes[J]. Photosynthesis Research,2004,79(2):209-218 [24] KLUGHAMMER C,SCHREIBER U. Saturation Pulse method for assessment of energy conversion in PSI.[J]. PAM Application Notes,2008(1):11-14 [25] SCHREIBER U,BILGRER W,NEUBAUER C. Chlorophyll fluorescence as a nonintrusive indicator for rapid assessment of in vivo photosynthesis.[J]. Ecophysiology of Photosynthesis,1994,1(100):49-70 [26] BEILBY M J,WALKER N A. Chloride Transport in Chara I. KINETICS AND CURRENT-VOLTAGE CURVES FOR A PROBABLE PROTON SYMPORT[J]. Journal of Experimental Botany,1981,32(1):43-54 [27] CAKMAK I,STRBAC D,MARSCHNER H. Activities of Hydrogen Peroxide-Scavenging Enzymes in Germinating Wheat Seeds[J]. Journal of Experimental Botany,1993,44(1):127-132 [28] YOSHIYUKI N,KOZI A. Purification of Ascorbate Peroxidase in Spinach Chloroplasts;Its Inactivation in Ascorbate-Depleted Medium and Reactivation by Monodehydroascorbate Radical[J]. Plant & Cell Physiology,1987,28(1):131-140 [29] BAILLY C,BENAMAR A,CORBINEAU F,et al. Changes in malondialdehyde content and in superoxide dismutase,catalase and glutathione reductase activities in sunflower seeds as related to deterioration during accelerated aging[J]. Physiologia Plantarum,2010,97(1):104-110 [30] 王浩.摩西球囊霉菌对Pb、Cd胁迫下小麦解毒效应的研究[D].郑州:河南农业大学,2016:24-25 [31] JABS T,DIETRICH R A,DANG J L. Initiation of Runaway Cell Death in an Arabidopsis Mutant by Extracellular Superoxide[J]. Science,1996,273(5283):1853-1856 [32] LI C J. Studies on the relationship between cyanide-resistant respi-ration and expression of alternative oxidase in mung bean using antibodies prepared by synthetic polypeptide[J].Scientia Sinica(Vitae),2001,44(1):66-72 [33] HUANG W,SUN H,TAN S L,et al. The water-water cycle is not a major alternative sink in fluctuating light at chilling temperature[J]. Plant Science:An International Journal of Experimental Plant Biology,2021,1861(9):148235-148243 [34] YAMORI W,SHIKANAI T. Physiological Functions of Cyclic Electron Transport Around Photosystem I in Sustaining Photosynthesis and Plant Growth[J]. Annual Review of Plant Biology,2016,67(1):81-106 [35] LIN R C,XU C C,LI L B,et al. Xanthophyll cycle and its molecular mechanism in photoprotection[J]. Acta Botanica Sinica,2002,44(4):379-383 [36] JIA H,WANG Y,GE D,et al. Improved offset tracking for predisaster deformation monitoring of the 2018 Jinsha River landslide (Tibet,China)[J]. Remote Sensing of Environment,2020,247(2):111899-111899 [37] 梁英,李玉婷,车兴凯,等.小麦叶片PSI光抑制对光合电子传递链的影响[J].植物生理学报,2018,54(9):1426-1432 [38] SUORSA M,ROSSI F,TADINI L,et al. PGR5-PGRL1-Dependent Cyclic Electron Transport Modulates Linear Electron Transport Rate in Arabidopsis thaliana[J]. Molecular Plant,2016,9(2):271-288 [39] MASARU K,ICHIRO T. Elucidation of Photoprotective Mechanisms of PSI Against Fluctuating Light photoinhibition.[J]. Plant Cell Physiology,2016,57(7):1405-1414 [40] MIYAKE C. Alternative Electron Flows(Water-Water Cycle and Cyclic Electron Flow Around PSI) in Photosynthesis:Molecular Mechanisms and Physiological Functions[J]. Plant&Cell Physiology,2010,51(12):1951-63 [41] DRIEVER S M,BAKER N R. The water-water cycle in leaves is not a major alternative electron sink for dissipation of excess excitation energy when CO2 assimilation is restricted[J]. Plant Cell & Environment,2011,34(5):837-846 [42] 李玉婷.低温下线粒体交替氧化酶呼吸途径的光破坏防御作用及其机制[D].泰安:山东农业大学,2018:9-10 [43] LI J,HU L,ZHANG L,PAN X,et al. Exogenous spermidine is enhancing tomato tolerance to salinity-alkalinity stress by regulating chloroplast antioxidant system and chlorophyll metabolism[J]. BMc Plant Biology,2015,15(1):303 [44] GALLIE D R. The role of L-ascorbic acid recycling in responding to environmental stress and in promoting plant growth[J]. Journal of Experimental Botany,2012,64(2):433-443 [45] 吴锦程,梁杰,陈建琴,等.GSH对低温胁迫下枇杷幼果叶绿体AsA-GSH循环代谢的影响[J].林业科学,2009,45(11):15-19 [46] WINGLER A,QUICK W P,BUNGARD R A,et al. The role of photorespiration during drought stress:an analysis utilizing barley mutants with reduced activities of photorespiratory enzymes[J]. Plant,Cell & Environment,1999,22(4):361-373 [47] 杨利,王波,李文姣,等.干旱胁迫下ROS的产生、清除及信号转导研究进展[J].生物技术通报,2021,37(4):194-203 [48] LI Y T,LIU M J,LI Y,et al. Photoprotection by mitochondrial alternative pathway is enhanced at heat but disabled at chilling[J]. the Plant Journal:for Cell and Molecular Biology,2020,104(2):403-415 [49] WANG J,RAJALLENDRAN N,SACAN A,et al. Impact of mitochondrial alternative oxilase expression on the response ofic otiara tab acum to cold temperatre[J]. Physiologia Plantarun,2011,142(4):339-35 |