柑橘光合效率调控机制的多维研究进展
Journal: Agricultural Science DOI: 10.32629/as.v8i12.3563
Abstract
光合作用是柑橘生长发育和产量品质形成的物质与能量基础。本文系统综述了柑橘特殊光合器官的结构功能特性:以叶片为核心部位分为表皮和叶脉,进行光合作用、制造有机养分、维持生长发育和果实产量;以及柑橘光合碳同化途径:C3光合碳同化途径,关键调控点:关键酶活性调控,电子传递过程调控,光合色素合成与光捕获调控,源-库关系调控,碳代谢相关酶活性调控,抗氧化系统调控,气孔导度调控;同时,探讨柑橘光合作用与干旱、温度、盐胁迫、病虫害等逆境适应,提高柑橘光合作用效率的策略与技术,并展望了未来研究重点方向。为柑橘种植、品种选育和品质优化提供理论基础。为深入理解柑橘光合生理生态机制、优化栽培管理及遗传改良提供理论支撑。
Keywords
柑橘;光合作用;光合调控
Funding
云南省现代农业产业技术水果体系,云南省基础研究重大专项(202101BC070002)。
Full Text
PDF - Viewed/Downloaded: 0 TimesReferences
[1] 伊华林,刘慧宇.我国柑橘品种分布特点及适地适栽品种选择探讨[J].中国果树,2022,(01):1-7.
[2] Growthandphotosynthetic responses of Fraxinus mands hurica seedlings to various to various light environments[J].Journal of Forestry Research,2011,22(03):341-346.
[3] 李丹阳,陈健美.柑橘光合作用研究进展[J].江西科学,2019,37(04):519-525.
[4] 胡利明.柑橘光合特性研究及C4光合途径的初步探讨[D].华中农业大学,2007.
[5] 黄镜浩,温寿星,张艳芳,等.柑橘春梢叶片_型气孔保卫细胞程序性死亡的研究[J].园艺学报,2013,40(11):2153-2160.
[6] 王金秋,何义仲,徐坤洋,等.三种类型相橘成熟果实表面蜡质分析[J].中国农业科学,2016,49(10):1936-1945.
[7] KOCH,K.E.(1984),The path of photosynthate translocati
[8] Buckley TN, Sack L,Gilbert ME. The role of bundle shea
[9] 陈俊伟,张上隆,张良诚,等.相橘果实的光合特性、产物运输及分配在糖分积累中的作用(英文)[J].Acta Botanica Sinica,
[10] KOCH,K.E.(1984),The path of photosynthate translocati on into citrus fruit[J].Plant,Cell& Environment,7:647-653.
[11] Buckley TN, Sack L,Gilbert ME. The role of bundle shea th extensions and life form in stoma tal responses to leaf water status[J].Plant Physiol.2011;156(2):962-973.
[12] 陈俊伟,张上隆,张良诚,等.相橘果实的光合特性、产物运输及分配在糖分积累中的作用(英文)[J].Acta Botanica Sinica,2002,(02):158-163.
[13] Adam,N.R.(2017).C3 Carbon Reduction Cycle[J].In eLS,John Wiley & Sons,Ltd (Ed.).
[14] 罗安才,杨晓红,邓英毅,等.柑橘果实发育过程中有机酸含量及相关代谢酶活性的变化[J].中国农业科学,2003,36(8):941-944.
[15] Jiang HX,Chen LS,Zheng JG,Han S,Tang N,Smith BR.Alum inum-induced effects on Photosystem II photochemistry in citrus leaves assessed by the chlorophyll a fluorescence trans ient[J].Tree Physiol.2008;28(12):1863-1871.
[16] Li Q,Chen LS,Jiang HX,et al.Effects of manganese-exc ess on CO2 assimilation, ribulose-1,5-bisphosphate carboxylase/oxygenase, carbohydrates and photosynthetic electron tra nsport of leaves, and antioxidant systems of leaves and roots in Citrus grandis seedlings[J].BMC Plant Biol.2010;10:42.Publ ished 2010 Mar7.
[17] Jiang HX,Tang N,Zheng JG,Chen LS.Antagonistic actio ns of boron against inhibitory effects of aluminum toxicity on growth, CO2 assimilation,ribulose-1,5-bisphosphate carbox ylase/oxygenase, and photosynthetic electron transport probed by the JIP-test, of Citrus grandis seedlings[J].BMC Plant Biol.2009;9:102.Published 2009 Aug 1.
[18] Jiang HX,Tang N,Zheng JG,Li Y,Chen LS. Phosphorus alle viates aluminum-induced inhibition of growth and photosynt hesis in Citrus grandis seedlings[J].Physio1 Plant.2009;137(3):298-311.
[19] 王羚羽.一氧化氯在调控番茄光合色素合成及低温抗性中的机制[D].浙江大学,2022
[20] Li Z,Duan S, Lu B,Yang C,Ding H,Shen H.Publish Spray ing alginate oligosaccharide improves photosynthetic perfor mance and sugar accumulation in citrus by regulating antiox idant system and related gene expression ed 2023 Jan 30[J].Front Plant Sci.2023;13:1108848.
[21] Li CY,Weiss D,Goldschmidt EE.Girdling affects carboh ydrate-related gene expression in leaves, bark and roots of alternate-bearing citrus trees[J].Ann Bot.2003;92(1):137-143.
[22] Nebauer SG,Renau-Morata B,Guardiola JL,Molina RV. Photosynthesis down-regulation precedes carbohydrate accum ulation under sink limitation in Citrus[J].Tree Physiol.2011;31(2):169-177.
[23] Yu A,Xie Y,Pan X,et al.Photosynthetic Phosphoribuloki nase Structures: Enzymatic Mechanisms and the Redox Regulati on of the Calvin-Benson-Bassham Cycle[J].Plant Cell.2020;32(5):1556-1573.
[24] Sparla F,Zaffagnini M,Wedel N,Scheibe R,Pupillo P Tro st P.Regulation of photosynthetic GAPDH dissected by mutants [J].Plant Physiol.2005;138(4):2210-2219.
[25] 万华方,梁颖,张贺军,等,跟踪微信“公众号”,拓展植物生理学课堂教学内容[J].西南师范大学学报(自然科学版),2021,46(4):178-183.
[26] Chen LS,Qi YP,Smith BR, Liu XH.Aluminum-induced decr ease in CO2 assimilation in citrus seedlings is unaccompanied by decreased activities of key enzymes involved in CO2 assi milation[J].Tree Physiol.2005;25(3):317-324.
[27] Serrato AJ,de Dios Barajas-López J,Chueca A,Sahrawy M.Changing sugar partitioning in FBPase-manipulated plants [J].J Exp Bot.2009;60(10):2923-2931.
[28] 李春荣,张馨,刘翠敏.卡尔文_本森_巴萨姆循环的调节[J].生命科学,2024,36(10):1213-1225.
[29] Lourkisti R,Froelicher Y,Morillon R, Berti L,Santini J. Enhanced Photosynthetic Capacity,Osmotic Adjustment and Ant ioxidant Defenses Contribute to Improve Tolerance to Modera te Water Deficit and Recovery of Triploid Citrus Genotypes [J].Antioxidants(Basel).2022;11(3):562.Published 2022 Mar 16.
[30] 郭延平,周慧芬,曾光辉,等.高温胁迫对柑橘光合速率和光系统活性的影响[J].应用生态学报,2003,(6):867-870.
[31] 李彩.纽荷尔脐橙不同叶片N、K水平对光合及生长的影响[D].西南大学,2012.
[32] Lugassi N,Kelly G, Fidel L,et al.Expression of Arabidop sis Hexokinase in Citrus Guard Cells Controls Stomatal Apert ure and Reduces Transpiration[J].Front Plant Sci.2015;6:1114.Published 2015 Dec 16.
[33] 张效星,樊毅,贾悦,等.水分亏缺对滴灌柑橘光合和产量及水分利用效率的影响[J].农业工程学报,2018,34(3):143-150
[34] 谢深喜,张秋明,熊兴耀,等.水分胁迫对柑橘叶片和根系细胞超微结构的影响[J].湖南农业大学学报(自然科学版),2008,(02):168-172
[35] 杨军,黄淑娥,郭建平,等.不同夜间低温条件对脐橙充合参数和形态特征的影响[J].果树学报,2022,39(11):2088-2098.
[36] 张放,唐晓蕴.低温胁迫对处于不同水分状态柑枯充合作用的影响[J].浙江大学学报(农业与生命科学版),2001,(04):41-45.
[37] 胡美君.高温强光对温州蜜柑(Citrus unshiu Marc.)光合作用的影响及其机理研究[D].浙江大学,浙江大学农业与生物技术学院,2008.
[38] 徐超,杨再强,王雨亭.南丰蜜橘对高温热害的生理响应及耐热性评价模型构建[J].果树学报,2023,40(12):2638-2651.
[39] 吴丽辉,朱美红.柑橘高温热害生理作用机理研究进展(综述)[J].浙江柑橘,2013,30(02):7-11.
[40] 郭雁君,吉前华,杜鹏飞,等,盐碱胁迫对砂糖橘叶片水分亏缺、气体交换及矿质元素微域分布的影响[J].果树学报,2022,39(06):1029-1041.
[41] 甘海峰,刘可慧,傅翠娜,等.NaCl胁迫对不同柑橘砧木品种抗氧化系统的影响[J].生态环境学报,2010,19(01):183-187.
[42] Shahzad,F.;M.Kadyampakeni,D.;Vashish,T.Effect of Grow ing Media pH on Performance of Huanglongbing-Affected You ng Citrus Trees[J].Agronomy 2021,11,439.
[43] 易龙,陈毅群,李双花,等.柑橘衰退病毒侵染对‘赣南早’脐橙植株组织结构及光合作用的影响[J].果树学报,2020,37(04):574-581.
[44] 张超博,李有芳,李思静,等.土壤管理方式对伏旱期柑橘生长及土壤温度和水分的影响[J].华南农业大学学报,2019,40(3):45-52.
[45] Bo Xiong,Yuan Wang,Yue Zhang,Mengmeng Ma,Yifei Gao,Zhiyang Zhou,Bozhi Wang,Tie Wang,Xiulan Lv,Xun Wang,Jin Wang, Honghong Deng,Zhihui Wang, Alleviation of drought stress and the physiological mechanisms in Citrus cultivar(Huangguogan) treated with methyl jasmonate, Bioscience, Biotechnology and Biochemistry[J].Volume 84, Issue 9,1 September 2020,Pages 1958-1965.
[46] 徐培智,解开治,陈建生,等.南方酸性早坡地枯园有机无机肥料配合施用效应研究[J].植物营养与肥料学报,2010,16(3):650-655.
[47] 施雅曼,曾吉兴,薛进军,等.黄龙病对柑橘叶片同化物积累和矿质养分运输的影响[J].植物营养与肥料学报,2023,29(5):949-960.
[48] Arshad Muhammad,Ullah Muhammad Irfan,Qureshi Jaww ad A.,Afzal Muhammad·Physiological Effects of Citrus Leafmi ner Phyllocnistic citrella(Lepidoptera: Gracillariidae) Larval Feeding on Photosynthetic and Gaseous Exchange Rates in Cit rus[J]·Journal of Economic Entomology,2018,111(5).
[49] 向太红,何涛,汪小伟,等.塔罗科血橙新系早结丰产稳产整形修剪新技术[J/OL].安徽农业科学,2020,48(14):60-62+65.http://dianda.cqvip.com/Qikan/Article/Detail?id=7102346186.
[50] 林咸水,章永松,蔡妙珍,等.磷、钾营养对柑桔果实产量、品质和贮藏性的影响[J].植物营养与肥料学报,2006,12(1):82-88.
[51] 孙伟,张欢洋,魏倩倩,等.叶面喷施山梨醇整合钾对花生产量及根际土壤微生物群落的影响土壤学报[J],2024,61(4):1099-1110.
[52] 李梓逸,周影,敖弟彩,等.协同优化水肥管理对水貂抗倒伏特性的影响[J].江苏农业科学,2025,53(10):52-58.
[53] RONG Y, LIAO L,LI S,et al.Comparative Transcriptomic and Physiological Analyses Reveal Key Factors for Interstocks to Improve Grafted Seedling Growth in Tangor[J].Internation al Journal of Molecular Sciences,2023,24(4):6533.
[2] Growthandphotosynthetic responses of Fraxinus mands hurica seedlings to various to various light environments[J].Journal of Forestry Research,2011,22(03):341-346.
[3] 李丹阳,陈健美.柑橘光合作用研究进展[J].江西科学,2019,37(04):519-525.
[4] 胡利明.柑橘光合特性研究及C4光合途径的初步探讨[D].华中农业大学,2007.
[5] 黄镜浩,温寿星,张艳芳,等.柑橘春梢叶片_型气孔保卫细胞程序性死亡的研究[J].园艺学报,2013,40(11):2153-2160.
[6] 王金秋,何义仲,徐坤洋,等.三种类型相橘成熟果实表面蜡质分析[J].中国农业科学,2016,49(10):1936-1945.
[7] KOCH,K.E.(1984),The path of photosynthate translocati
[8] Buckley TN, Sack L,Gilbert ME. The role of bundle shea
[9] 陈俊伟,张上隆,张良诚,等.相橘果实的光合特性、产物运输及分配在糖分积累中的作用(英文)[J].Acta Botanica Sinica,
[10] KOCH,K.E.(1984),The path of photosynthate translocati on into citrus fruit[J].Plant,Cell& Environment,7:647-653.
[11] Buckley TN, Sack L,Gilbert ME. The role of bundle shea th extensions and life form in stoma tal responses to leaf water status[J].Plant Physiol.2011;156(2):962-973.
[12] 陈俊伟,张上隆,张良诚,等.相橘果实的光合特性、产物运输及分配在糖分积累中的作用(英文)[J].Acta Botanica Sinica,2002,(02):158-163.
[13] Adam,N.R.(2017).C3 Carbon Reduction Cycle[J].In eLS,John Wiley & Sons,Ltd (Ed.).
[14] 罗安才,杨晓红,邓英毅,等.柑橘果实发育过程中有机酸含量及相关代谢酶活性的变化[J].中国农业科学,2003,36(8):941-944.
[15] Jiang HX,Chen LS,Zheng JG,Han S,Tang N,Smith BR.Alum inum-induced effects on Photosystem II photochemistry in citrus leaves assessed by the chlorophyll a fluorescence trans ient[J].Tree Physiol.2008;28(12):1863-1871.
[16] Li Q,Chen LS,Jiang HX,et al.Effects of manganese-exc ess on CO2 assimilation, ribulose-1,5-bisphosphate carboxylase/oxygenase, carbohydrates and photosynthetic electron tra nsport of leaves, and antioxidant systems of leaves and roots in Citrus grandis seedlings[J].BMC Plant Biol.2010;10:42.Publ ished 2010 Mar7.
[17] Jiang HX,Tang N,Zheng JG,Chen LS.Antagonistic actio ns of boron against inhibitory effects of aluminum toxicity on growth, CO2 assimilation,ribulose-1,5-bisphosphate carbox ylase/oxygenase, and photosynthetic electron transport probed by the JIP-test, of Citrus grandis seedlings[J].BMC Plant Biol.2009;9:102.Published 2009 Aug 1.
[18] Jiang HX,Tang N,Zheng JG,Li Y,Chen LS. Phosphorus alle viates aluminum-induced inhibition of growth and photosynt hesis in Citrus grandis seedlings[J].Physio1 Plant.2009;137(3):298-311.
[19] 王羚羽.一氧化氯在调控番茄光合色素合成及低温抗性中的机制[D].浙江大学,2022
[20] Li Z,Duan S, Lu B,Yang C,Ding H,Shen H.Publish Spray ing alginate oligosaccharide improves photosynthetic perfor mance and sugar accumulation in citrus by regulating antiox idant system and related gene expression ed 2023 Jan 30[J].Front Plant Sci.2023;13:1108848.
[21] Li CY,Weiss D,Goldschmidt EE.Girdling affects carboh ydrate-related gene expression in leaves, bark and roots of alternate-bearing citrus trees[J].Ann Bot.2003;92(1):137-143.
[22] Nebauer SG,Renau-Morata B,Guardiola JL,Molina RV. Photosynthesis down-regulation precedes carbohydrate accum ulation under sink limitation in Citrus[J].Tree Physiol.2011;31(2):169-177.
[23] Yu A,Xie Y,Pan X,et al.Photosynthetic Phosphoribuloki nase Structures: Enzymatic Mechanisms and the Redox Regulati on of the Calvin-Benson-Bassham Cycle[J].Plant Cell.2020;32(5):1556-1573.
[24] Sparla F,Zaffagnini M,Wedel N,Scheibe R,Pupillo P Tro st P.Regulation of photosynthetic GAPDH dissected by mutants [J].Plant Physiol.2005;138(4):2210-2219.
[25] 万华方,梁颖,张贺军,等,跟踪微信“公众号”,拓展植物生理学课堂教学内容[J].西南师范大学学报(自然科学版),2021,46(4):178-183.
[26] Chen LS,Qi YP,Smith BR, Liu XH.Aluminum-induced decr ease in CO2 assimilation in citrus seedlings is unaccompanied by decreased activities of key enzymes involved in CO2 assi milation[J].Tree Physiol.2005;25(3):317-324.
[27] Serrato AJ,de Dios Barajas-López J,Chueca A,Sahrawy M.Changing sugar partitioning in FBPase-manipulated plants [J].J Exp Bot.2009;60(10):2923-2931.
[28] 李春荣,张馨,刘翠敏.卡尔文_本森_巴萨姆循环的调节[J].生命科学,2024,36(10):1213-1225.
[29] Lourkisti R,Froelicher Y,Morillon R, Berti L,Santini J. Enhanced Photosynthetic Capacity,Osmotic Adjustment and Ant ioxidant Defenses Contribute to Improve Tolerance to Modera te Water Deficit and Recovery of Triploid Citrus Genotypes [J].Antioxidants(Basel).2022;11(3):562.Published 2022 Mar 16.
[30] 郭延平,周慧芬,曾光辉,等.高温胁迫对柑橘光合速率和光系统活性的影响[J].应用生态学报,2003,(6):867-870.
[31] 李彩.纽荷尔脐橙不同叶片N、K水平对光合及生长的影响[D].西南大学,2012.
[32] Lugassi N,Kelly G, Fidel L,et al.Expression of Arabidop sis Hexokinase in Citrus Guard Cells Controls Stomatal Apert ure and Reduces Transpiration[J].Front Plant Sci.2015;6:1114.Published 2015 Dec 16.
[33] 张效星,樊毅,贾悦,等.水分亏缺对滴灌柑橘光合和产量及水分利用效率的影响[J].农业工程学报,2018,34(3):143-150
[34] 谢深喜,张秋明,熊兴耀,等.水分胁迫对柑橘叶片和根系细胞超微结构的影响[J].湖南农业大学学报(自然科学版),2008,(02):168-172
[35] 杨军,黄淑娥,郭建平,等.不同夜间低温条件对脐橙充合参数和形态特征的影响[J].果树学报,2022,39(11):2088-2098.
[36] 张放,唐晓蕴.低温胁迫对处于不同水分状态柑枯充合作用的影响[J].浙江大学学报(农业与生命科学版),2001,(04):41-45.
[37] 胡美君.高温强光对温州蜜柑(Citrus unshiu Marc.)光合作用的影响及其机理研究[D].浙江大学,浙江大学农业与生物技术学院,2008.
[38] 徐超,杨再强,王雨亭.南丰蜜橘对高温热害的生理响应及耐热性评价模型构建[J].果树学报,2023,40(12):2638-2651.
[39] 吴丽辉,朱美红.柑橘高温热害生理作用机理研究进展(综述)[J].浙江柑橘,2013,30(02):7-11.
[40] 郭雁君,吉前华,杜鹏飞,等,盐碱胁迫对砂糖橘叶片水分亏缺、气体交换及矿质元素微域分布的影响[J].果树学报,2022,39(06):1029-1041.
[41] 甘海峰,刘可慧,傅翠娜,等.NaCl胁迫对不同柑橘砧木品种抗氧化系统的影响[J].生态环境学报,2010,19(01):183-187.
[42] Shahzad,F.;M.Kadyampakeni,D.;Vashish,T.Effect of Grow ing Media pH on Performance of Huanglongbing-Affected You ng Citrus Trees[J].Agronomy 2021,11,439.
[43] 易龙,陈毅群,李双花,等.柑橘衰退病毒侵染对‘赣南早’脐橙植株组织结构及光合作用的影响[J].果树学报,2020,37(04):574-581.
[44] 张超博,李有芳,李思静,等.土壤管理方式对伏旱期柑橘生长及土壤温度和水分的影响[J].华南农业大学学报,2019,40(3):45-52.
[45] Bo Xiong,Yuan Wang,Yue Zhang,Mengmeng Ma,Yifei Gao,Zhiyang Zhou,Bozhi Wang,Tie Wang,Xiulan Lv,Xun Wang,Jin Wang, Honghong Deng,Zhihui Wang, Alleviation of drought stress and the physiological mechanisms in Citrus cultivar(Huangguogan) treated with methyl jasmonate, Bioscience, Biotechnology and Biochemistry[J].Volume 84, Issue 9,1 September 2020,Pages 1958-1965.
[46] 徐培智,解开治,陈建生,等.南方酸性早坡地枯园有机无机肥料配合施用效应研究[J].植物营养与肥料学报,2010,16(3):650-655.
[47] 施雅曼,曾吉兴,薛进军,等.黄龙病对柑橘叶片同化物积累和矿质养分运输的影响[J].植物营养与肥料学报,2023,29(5):949-960.
[48] Arshad Muhammad,Ullah Muhammad Irfan,Qureshi Jaww ad A.,Afzal Muhammad·Physiological Effects of Citrus Leafmi ner Phyllocnistic citrella(Lepidoptera: Gracillariidae) Larval Feeding on Photosynthetic and Gaseous Exchange Rates in Cit rus[J]·Journal of Economic Entomology,2018,111(5).
[49] 向太红,何涛,汪小伟,等.塔罗科血橙新系早结丰产稳产整形修剪新技术[J/OL].安徽农业科学,2020,48(14):60-62+65.http://dianda.cqvip.com/Qikan/Article/Detail?id=7102346186.
[50] 林咸水,章永松,蔡妙珍,等.磷、钾营养对柑桔果实产量、品质和贮藏性的影响[J].植物营养与肥料学报,2006,12(1):82-88.
[51] 孙伟,张欢洋,魏倩倩,等.叶面喷施山梨醇整合钾对花生产量及根际土壤微生物群落的影响土壤学报[J],2024,61(4):1099-1110.
[52] 李梓逸,周影,敖弟彩,等.协同优化水肥管理对水貂抗倒伏特性的影响[J].江苏农业科学,2025,53(10):52-58.
[53] RONG Y, LIAO L,LI S,et al.Comparative Transcriptomic and Physiological Analyses Reveal Key Factors for Interstocks to Improve Grafted Seedling Growth in Tangor[J].Internation al Journal of Molecular Sciences,2023,24(4):6533.
Copyright © 2025 王丽娇, 谭建容, 杨浩南, 周玲, 彭磊
This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License
