作物学报 ›› 2025, Vol. 51 ›› Issue (3): 650-666.doi: 10.3724/SP.J.1006.2025.44082
霍如雪1,2(
), 葛祥菡1, 石嘉1, 李雪蕊1, 戴圣杰1, 刘振宁1,*(
), 李宗芸2,*(
)
HUO Ru-Xue1,2(
), GE Xiang-Han1, SHI Jia1, LI Xue-Rui1, DAI Sheng-Jie1, LIU Zhen-Ning1,*(
), LI Zong-Yun2,*(
)
摘要:
组氨酸激酶是植物双组分信号系统中的一类重要元件, 参与了植物生长发育、逆境响应等多种生物学功能。本研究在甘薯中鉴定到一个与拟南芥AHK5同源的基因IbHK5。亚细胞定位研究表明, IbHK5蛋白主要定位于细胞质和细胞核中。利用拟南芥异源超表达和甘薯发状根遗传转化技术研究了IbHK5参与干旱胁迫和盐胁迫的生物学功能。结果表明, IbHK5在拟南芥中的异源超表达能够增强拟南芥的耐旱性和耐盐性, 超表达株系中表现出较高的POD、SOD和CAT酶活, 较少的H2O2和O2-的积累, 以及相对表达量较高的POD、SOD、CAT和GPX等ROS清除系统相关基因。同样, IbHK5在甘薯中的超表达也能增强甘薯的耐旱性和耐盐性, 甘薯发状根也表现出较高的POD、SOD和CAT酶活, 较少的H2O2和O2-的积累。酵母双杂交试验表明, IbHK5能与拟南芥AHP1、AHP2、AHP3和AHP5蛋白互作。上述结果证实IbHK5是参与干旱胁迫和盐胁迫的一个正调控因子。研究结果有助于解析甘薯抵御干旱胁迫和盐胁迫的生理机制与分子机制, 也能够为耐干旱、耐盐的甘薯定向改良和品种选育提供一定的理论依据。
| [1] |
Mochida K, Yoshida T, Sakurai T, Yamaguchi-Shinozaki K, Shinozaki K, Tran L S. Genome-wide analysis of two-component systems and prediction of stress-responsive two-component system members in soybean. DNA Res, 2010, 17: 303-324.
doi: 10.1093/dnares/dsq021 pmid: 20817745 |
| [2] | Tran L S, Urao T, Qin F, Maruyama K, Kakimoto T, Shinozaki K, Yamaguchi-Shinozaki K. Functional analysis of AHK1/ATHK1 and cytokinin receptor histidine kinases in response to abscisic acid, drought, and salt stress in Arabidopsis. Proc Natl Acad Sci USA, 2007, 104: 20623-20628. |
| [3] | Mason M G, Jha D, Salt D E, Tester M, Hill K, Kieber J J, Type-B response regulators ARR1 and ARR12 regulate expression of AtHKT1;1 and accumulation of sodium in Arabidopsis shoots. Plant J, 2010, 64: 753-763. |
| [4] |
Jain M, Tyagi A K, Khurana J P. Molecular characterization and differential expression of cytokinin-responsive type-a response regulators in rice (Oryza sativa). BMC Plant Biol, 2006, 6: 1.
pmid: 16472405 |
| [5] |
Le D T, Nishiyama R, Watanabe Y, Mochida K, Yamaguchi- Shinozaki K, Shinozaki K, Tran L S. Genome-wide expression profiling of soybean two-component system genes in soybean root and shoot tissues under dehydration stress. DNA Res, 2011, 18: 17-29.
doi: 10.1093/dnares/dsq032 pmid: 21208938 |
| [6] |
Jeon J, Kim J. Arabidopsis response regulator1 and Arabidopsis histidine phosphotransfer protein2 (AHP2), AHP3, and AHP5 function in cold signaling. Plant Physiol, 2013, 161: 408-424.
doi: 10.1104/pp.112.207621 pmid: 23124324 |
| [7] |
Nishiyama R, Watanabe Y, Leyva-Gonzalez M A, Ha C V, Fujita Y, Tanaka M, Seki M, Yamaguchi-Shinozaki K, Shinozaki K, Herrera-Estrella L, Tran L S P. Arabidopsis AHP2, AHP3, and AHP5 histidine phosphotransfer proteins function as redundant negative regulators of drought stress response. Proc Natl Acad Sci USA, 2013, 110: 4840-4845.
doi: 10.1073/pnas.1302265110 pmid: 23487796 |
| [8] | 潘雅姣, 王迪, 朱苓华, 傅彬英, 黎志康. 水稻双组分系统基因干旱胁迫表达谱分析. 作物学报, 2009, 35: 1628-1636. |
| Pan Y J, Wang D, Zhu L H, Fu B Y, Li Z K. Differential expressions of two-component element genes in rice under drought stress. Acta Agron Sin, 2009, 35: 1628-1636 (in Chinese with English abstract). | |
| [9] |
Jeon J, Kim N Y, Kim S, Kang N Y, Novák O, Ku S J, Cho C, Lee D J, Lee E J, Strnad M, Kim J. A subset of cytokinin two-component signaling system plays a role in cold temperature stress response in Arabidopsis. J Biol Chem, 2010, 285: 23371-23386.
doi: 10.1074/jbc.M109.096644 pmid: 20463025 |
| [10] | Karan R, Singla-Pareek S L, Pareek A. Histidine kinase and response regulator genes as they relate to salinity tolerance in rice. Funct Integr Genomics, 2009, 9: 411-417. |
| [11] | Schaller G E, Kieber J J, Shiu S H. Two-component signaling elements and histidyl-aspartyl phosphorelays. Arabidopsis Book, 2008, 6: e0112. |
| [12] | Pareek A, Singh A, Kumar M, Kushwaha H R, Lynn A M, Singla-Pareek S L. Whole-genome analysis of Oryza sativa reveals similar architecture of two-component signaling machinery with Arabidopsis. Plant Physiol, 2006, 142: 380-397. |
| [13] | Zameer R, Sadaqat M, Fatima K, Fiaz S, Rasul S, Zafar H, Qayyum A, Nashat N, Raza A, Shah A N, Batool R, Azeem F, Sun S M, Chung G. Two-component system genes in Sorghum bicolor: genome-wide identification and expression profiling in response to environmental stresses. Front Genet, 2021, 12: 794305. |
| [14] |
Chu Z X, Ma Q, Lin Y X, Tang X L, Zhou Y Q, Zhu S W, Fan J, Cheng B J. Genome-wide identification, classification, and analysis of two-component signal system genes in maize. Genet Mol Res, 2011, 10: 3316-3330.
doi: 10.4238/2011.December.8.3 pmid: 22194197 |
| [15] | Liu Z N, Zhang M, Kong L J, Lv Y X, Zou M H, Lu G, Cao J S, Yu X L. Genome-wide identification, phylogeny, duplication, and expression analyses of two-component system genes in Chinese cabbage (Brassica rapa ssp. pekinensis). DNA Res, 2014, 21: 379-396. |
| [16] | Gahlaut V, Mathur S, Dhariwal R, Khurana J P, Tyagi A K, Balyan H S, Gupta P K. A multi-step phosphorelay two-component system impacts on tolerance against dehydration stress in common wheat. Funct Integr Genomics, 2014, 14: 707-716. |
| [17] | He Y J, Liu X, Ye L, Pan C T, Chen L F, Zou T, Lu G. Genome- wide identification and expression analysis of two-component system genes in tomato. Int J Mol Sci, 2016, 17: 1204. |
| [18] | Ahmad B, Azeem F, Ali M A, Nawaz M A, Nadeem H, Abbas A, Batool R, Atif R M, Ijaz U, Nieves-Cordones M, Chung G. Genome-wide identification and expression analysis of two component system genes in Cicer arietinum. Genomics, 2020, 112: 1371-1383. |
| [19] | Huo R X, Liu Z N, Yu X L, Li Z Y. The interaction network and signaling specificity of two-component system in Arabidopsis. Int J Mol Sci, 2020, 21: 4898. |
| [20] |
Kakimoto T. CKI1, a histidine kinase homolog implicated in cytokinin signal transduction. Science, 1996, 274: 982-985.
pmid: 8875940 |
| [21] | Desikan R, Horák J, Chaban C, Mira-Rodado V, Witthöft J, Elgass K, Grefen C, Cheung M K, Meixner A J, Hooley R, Neill S J, Hancock J T, Harter K. The histidine kinase AHK5 integrates endogenous and environmental signals in Arabidopsis guard cells. PLoS One, 2008, 3: e2491. |
| [22] | Mira-Rodado V. New insights into multistep-phosphorelay (MSP)/two-component system (TCS) regulation: are plants and bacteria that different? Plants (Basel), 2019, 8: 590. |
| [23] | Iwama A, Yamashino T, Tanaka Y, Sakakibara H, Kakimoto T, Sato S, Kato T, Tabata S, Nagatani A, Mizuno T. AHK5 histidine kinase regulates root elongation through an ETR1-dependent abscisic acid and ethylene signaling pathway in Arabidopsis thaliana. Plant Cell Physiol, 2007, 48: 375-380. |
| [24] | Pham J, Liu J, Bennett M H, Mansfield J W, Desikan R. Arabidopsis histidine kinase 5 regulates salt sensitivity and resistance against bacterial and fungal infection. New Phytol, 2012, 194: 168-180. |
| [25] |
Pham J, Desikan R. Modulation of ROS production and hormone levels by AHK5 during abiotic and biotic stress signaling. Plant Signal Behav, 2012, 7: 893-897.
doi: 10.4161/psb.20692 pmid: 22827948 |
| [26] | Huo R X, Zhao Y S, Liu T X, Xu M, Wang X H, Xu P, Dai S J, Cui X Y, Han Y H, Liu Z N, Li Z Y. Genome-wide identification and expression analysis of two-component system genes in sweet potato (Ipomoea batatas L.). Front Plant Sci, 2023, 13: 1091620. |
| [27] | Yu Y C, Xuan Y, Bian X F, Zhang L, Pan Z Y, Kou M, Cao Q H, Tang Z H, Li Q, Ma D F, Li Z Y, Sun J. Overexpression of phosphatidylserine synthase IbPSS1 affords cellular Na+ homeostasis and salt tolerance by activating plasma membrane Na+/H+ antiport activity in sweet potato roots. Hortic Res, 2020, 7: 131. |
| [28] |
Clough S J, Bent A F. Floral dip: a simplified method for Agrobacterium-mediated transformation of Arabidopsis thaliana. Plant J, 1998, 16: 735-743.
doi: 10.1046/j.1365-313x.1998.00343.x pmid: 10069079 |
| [29] | Zhang X R, Henriques R, Lin S S, Niu Q W, Chua N H. Agrobacterium-mediated transformation of Arabidopsis thaliana using the floral dip method. Nat Protoc, 2006, 1: 641-646. |
| [30] | Yu H J, Hogan P, Sundaresan V. Analysis of the female gametophyte transcriptome of Arabidopsis by comparative expression profiling. Plant Physiol, 2005, 139: 1853-1869. |
| [31] | Park S C, Kim Y H, Ji C Y, Park S, Jeong J C, Lee H S, Kwak S S. Stable internal reference genes for the normalization of real-time PCR in different sweetpotato cultivars subjected to abiotic stress conditions. PLoS One, 2012, 7: e51502. |
| [32] | Szmitkowska A, Cuyacot A R, Pekaérovaé B, Žd'árská M, Houser J, Komárek J, Jaseňáková Z, Jayasree A, Heunemann M, Ubogoeva E, Spyroglou I, Trtílek M, Mironova V, Harter K, Zemlyanskaya E, Žídek L, Wimmerová M, Hejátko J. AHK5 mediates ETR1-initiated multistep phosphorelay in Arabidopsis. bioRxiv, 2021, DOI: 10.1101/2021.09.16.460643. |
| [33] |
He Y J, Liu X, Zou T, Pan C T, Qin L, Chen L F, Lu G. Genome-wide identification of two-component system genes in Cucurbitaceae crops and expression profiling analyses in cucumber. Front Plant Sci, 2016, 7: 899.
doi: 10.3389/fpls.2016.00899 pmid: 27446129 |
| [1] | 邹仪妹, 徐敏, 汪海洋, 姚辉, 王加峰, 刘浩, 任代胜. 两系不育系水稻幼苗根系响应盐胁迫的转录因子调控网络鉴定[J]. 作物学报, 2026, 52(6): 1728-1742. |
| [2] | 宋裕祯, Bheel Chander Kumar, 王跃, 张颖星, 郭娟, Khound Rituraj, Santra Dipak Kumar, 曹晓宁, 王瑞云. 糜子AP2亚家族全基因组鉴定及PmAP2-1和PmAP2-9耐盐功能分析[J]. 作物学报, 2026, 52(4): 1127-1139. |
| [3] | 蒋嘉卉, 江炳志, 刘冠明, 王章英, 唐朝臣. 紫肉甘薯品质性状的近红外光谱预测模型构建与优化[J]. 作物学报, 2026, 52(4): 1088-1102. |
| [4] | 王懿涵, 李富昌, 刘意, 朱国鹏. 甘薯IbOPR2基因启动子克隆及调控因子的筛选[J]. 作物学报, 2026, 52(4): 1268-1276. |
| [5] | 覃奕琰, 付瑶, 苏畅, 李娜, 徐静茹, 程笑然, 张琪, 赵明辉. OsST41调控水稻苗期耐盐性的功能分析[J]. 作物学报, 2026, 52(3): 802-812. |
| [6] | 于永超, 刘明, 靳容, 赵鹏, 张强强, 王静, 朱晓亚, 唐忠厚. 甘薯高氮徒长的生理机制和转录组分析研究[J]. 作物学报, 2026, 52(3): 813-824. |
| [7] | 刘吉昌, 李思烨, 李雪婷, 王洪章, 刘鹏, 张吉旺, 赵斌, 任佰朝, 任昊. 盐胁迫对不同耐盐型夏玉米品种根系生长及养分吸收效率的影响[J]. 作物学报, 2026, 52(2): 565-577. |
| [8] | 张晴, 杨昱, 郭茜, 岳霈尧, 殷丛丛, 牛景萍, 赵晋忠, 杜维俊, 岳爱琴. 大豆GmARA6a的克隆及响应盐胁迫的功能分析[J]. 作物学报, 2026, 52(2): 480-493. |
| [9] | 杨璇, 李健康, 何婉洁, 李友军, 程相涵, 侯文邦. 硒肥对甘薯鲜切后褐变的影响及其机理解析[J]. 作物学报, 2026, 52(2): 578-589. |
| [10] | 杨飚, 杜帅康, 张继旺, 石瑛, 张丽莉. 马铃薯III类POD基因家族的全基因组鉴定及其表达谱分析[J]. 作物学报, 2026, 52(2): 405-420. |
| [11] | 刘海波, 张蕾, 王立琦, 石晓丽, 周文莹, 崔国贤, 佘玮. 苎麻BnGCL1基因响应干旱胁迫的功能研究[J]. 作物学报, 2026, 52(1): 14-27. |
| [12] | 孔娜, 刘涛, 刘文婷, 陈刚, 文利超, 邓智超, 郭梅, 李伟, 郭永峰. 烟草NtCEP7基因克隆及其编码小肽在苗期抗旱中的作用分析[J]. 作物学报, 2026, 52(1): 249-261. |
| [13] | 胡城祯, 高维东, 孔斌雪, 王建飞, 车卓, 杨德龙, 陈涛. 小麦TaAPC11基因家族鉴定及TaAPC11-5B参与干旱胁迫的生物学功能研究[J]. 作物学报, 2026, 52(1): 148-164. |
| [14] | 王雅致, 杨飚, 季香林, 石瑛, 张丽莉. 二倍体马铃薯抗旱资源鉴定及抗旱基因初步筛选[J]. 作物学报, 2026, 52(1): 72-84. |
| [15] | 张海燕, 解备涛, 董顺旭, 张立明, 段文学. 滴灌条件下不同水溶肥种类和配比对鲜食甘薯产量和品质的影响[J]. 作物学报, 2025, 51(9): 2485-2500. |
|
||