Research progress on the 14-3-3 protein involved in plant responses to abiotic stress
-
摘要: 14-3-3蛋白是一种在真核生物细胞中普遍存在且高度保守的蛋白。该蛋白在大多数物种中由一个基因家族编码,并以同源或异源二聚体的形式存在。不同的14-3-3蛋白同工型具有不同的细胞特异性,可通过识别特异的磷酸化或非磷酸化序列与靶蛋白相互作用。14-3-3蛋白在植物生长和发育的各个方面都起重要作用。本文主要围绕植物14-3-3蛋白的种类、结构、磷酸化或非磷酸化识别序列及其响应干旱、冷冻、盐碱、营养和机械胁迫等的分子机制研究进展进行综述。Abstract: The 14-3-3 protein is a ubiquitous and highly conserved protein in eukaryotic cells. In most species, it is encoded by one gene family and exists as a homologous or heterologous dimer. Different 14-3-3 protein isoforms have different cell specificities and interact with target proteins by identifying specific phosphorylation or non-phosphorylation sequences. The 14-3-3 protein in plants plays an important role in plant growth and development. In this paper, we reviewed the types, structures, sequences of phosphorylation or non-phosphorylation, and molecular mechanisms of plant 14-3-3 proteins under drought, cold, salinity, nutrition, and mechanical stress.
-
Keywords:
- 14-3-3 protein /
- Structure /
- Abiotic stress
-
-
[1] Moore BW, Perez VJ. Specific acidic proteins of the nervous system[M]//Carlson FD, ed. Physiological and Biochemical Aspects of Nervous Integration. Englewood Cliffs:Prentice-Hall Inc, 1967.
[2] Chen F, Li Q, Sun L, He Z. The rice 14-3-3 gene family and its involvement in responses to biotic and abiotic stress[J]. DNA Res, 2006, 13(2):53-63.
[3] Klychnikov OI, Li KW, Lill H, de Boer AH. The V-ATPase from etiolated barley (Hordeum vulgare L.) shoots is activated by blue light and interacts with 14-3-3 proteins[J]. J Exp Bot, 2007, 58(5):1013-1023.
[4] Bachmann M, Huber JL, Liao PC, Gage DA, Huber SC. The inhibitor protein of phosphorylated nitrate reductase from spinach (Spinacia oleracea) leaves is a 14-3-3 protein[J]. FEBS Lett, 1996, 387(2-3):127-131.
[5] Mamaeva AS, Fomenkov AA, Nosov AV, Novikova GV. Regulation of protein phosphorylation by nitric oxide in cell culture of Arabidopsis thaliana[J]. Russ J Plant Physiol, 2017, 64(5):657-664.
[6] De Vetten NC, Ferl RJ. Two genes encoding GF14(14-3-3) proteins in Zea mays. Structure, expression, and potential regulation by the G-box binding complex[J]. Plant Physiol, 1994, 106(4):1593-1604.
[7] Szopa J, Wróbel M, Matysiak I. The metabolic profile of the 14-3-3 repressed transgenic potato tubers[J]. Plant Sci, 2001, 161(6):1075-1082.
[8] Roberts MR, Bowles DJ. Fusicoccin, 14-3-3 proteins, and defense responses in tomato plants[J]. Plant Physiol, 1999, 119(4):1243-1250.
[9] Brandwein D, Wang Z. Interaction between Rho GTPases and 14-3-3 proteins[J]. Int J Mol Sci, 2017, 18(10):2148.
[10] Aducci P, Camoni L, Marra M, Visconti S. From cytosol to organelles:14-3-3 proteins as multifunctional regulators of plant cell[J]. IUBMB Life, 2002, 53(1):49-55.
[11] Waese J, Fan J, Pasha A, Yu H, Fucile G, et al. ePlant:visualizing and exploring multiple levels of data for hypo-thesis generation in plant biology[J]. Plant Cell, 2017, 29(8):1806-1821.
[12] 文彬, 王小菁. 14-3-3蛋白研究进展[J]. 生命科学, 2004, 16(4):226-230. Wen B, Wang XJ. Advance in 14-3-3 proteins[J]. Chinese Bulletin of Life Sciences, 2004, 16(4):226-230.
-
期刊类型引用(10)
1. 王艳萍,范宇浍,马华燕,胡锦弘,崔祖铭,李家玉. 外源脱落酸对水稻苗期根系形态建成及其诱导化感作用的影响. 应用与环境生物学报. 2024(01): 126-132 . 百度学术
2. 张希子,王玉祥,于秀明,汪鹏,田琳涵. 激素对黄花苜蓿扦插成活率及生长的影响. 现代农业科技. 2023(02): 174-177+183 . 百度学术
3. 刘明,靳容,赵鹏,张强强,朱晓亚,王静,于永超,唐忠厚. 外源生长素调控甘薯根系响应低钾胁迫的效应. 江苏师范大学学报(自然科学版). 2023(02): 29-34 . 百度学术
4. 杨立,杨再强,陆思宇,张源达,郑涵. 高温高湿胁迫对黄瓜产量形成的影响机理. 中国农业气象. 2022(05): 392-407 . 百度学术
5. 季洁韵,李强,曾幼玲. miR169/NFYA模块响应植物非生物胁迫的研究进展. 生物技术通报. 2022(12): 27-34 . 百度学术
6. 卢辛成,蒋剑春,何静,孙康,孙云娟. 木醋液对小麦幼苗生长、抗氧化特性及内源激素含量的影响. 中国农学通报. 2021(07): 7-13 . 百度学术
7. 张浩,吴子龙,付伟,叶嘉,马杰,郝立华,常志杰,郑云普. 外源脱落酸对NaCl盐胁迫下玉米幼苗生长、气孔特征及光合性能的影响. 生态学杂志. 2021(07): 2005-2015 . 百度学术
8. 袁娅娟,白小明,朱雅楠,张毓婧,闫玉邦,张才忠,李玉杰. 甘肃野生草地早熟禾根茎扩展能力与内源激素含量的相关性研究. 中国生态农业学报(中英文). 2021(08): 1359-1369 . 百度学术
9. 王茜. 生物营养液对苗木根系快速恢复的作用及影响. 现代园艺. 2021(14): 19-20 . 百度学术
10. 尤扬,李爱学,李朋朋. 赤霉素及烯效唑对大豆萌发根系形态及内源激素的影响. 新疆农业大学学报. 2021(02): 131-137 . 百度学术
其他类型引用(30)
计量
- 文章访问数: 1662
- HTML全文浏览量: 75
- PDF下载量: 1255
- 被引次数: 40