Genome-wide analysis of the GST gene family in Gossypium hirsutum L.
Received date: 2017-01-03
Revised date: 2017-05-10
Online published: 2017-12-25
Supported by
the National Natural Science Foundation of China(31672497);Anhui Province “115” Industrial Innovation team(([2011]2)
Glutathione-S-transferase (GST) is a ubiquitous multi-functional protein superfamily that plays important roles in plant primary and secondary metabolism, stress and intercellular signal transduction. Concomitantly, it also functions as a ligand in the metabolism of plant hormones and substance transport. In order to understand the GST gene family in upland cotton (Gossypium hirsutum L.), herein we analyzed the species, evolutionary relationship, physical location, gene structure, conserved motifs and expression patterns. We identified 70 GST genes in the whole genome of upland cotton, and divided them into U, F, T, Z, EF1Bγ and TCHQD groups by phylogenetic tree and gene structure analyses. The gene mapping analysis indicated that the GST genes were on every chromosome except chromosome AD/At2, AD/At4, AD/At5, AD/Dt5 and AD/Dt10. Moreover, the GST gene cluster appeared on four chromosomes (AD/At9, AD/Dt7, AD/Dt12 and AD/Dt13). qRT-PCR assays showed that eight genes (GhGSTF2-9) were expressed in the root, stem, leave and fiber of different developmental stages while GhGSTF1 might be a pseudogene. Combining qRT-PCR and bioinformatic analysis, we speculated that GhGSTF8 might be involved in the transport and accumulation of proanthocyanidins/anthocyanins; GhGSTF4, 6 and 9 might play roles in regulating the growth and stress response of upland cotton; the function of GhGSTF2, 3, 5 and 7 remains to be further investigated. Our work provides a theoretical basis for further studies on the molecular evolution and function of the GST gene family in upland cotton.
Lei Xu,Wen Chen,Guoyang Si,Yiyuan Huang,Yi Lin,Yongping Cai,Junshan Gao . Genome-wide analysis of the GST gene family in Gossypium hirsutum L.[J]. Hereditas(Beijing), 2017 , 39(8) : 737 -752 . DOI: 10.16288/j.yczz.16-435
| [1] | Nutricati E, Miceli A, Blando F, De Bellis L. Characterization of two Arabidopsis thaliana glutathione S-transferases. Plant Cell Rep, 2006, 25( 9): 997-1005. | |||
| [2] | Jain M, Ghanashyam C, Bhattacharjee A. Comprehensive expression analysis suggests overlapping and specific roles of rice glutathione S-transferase genes during development and stress responses. BMC Genomics, 2010, 11: 73. | |||
| [3] | Dixon DP, Davis BG, Edwards R. Functional divergence in the glutathione transferase superfamily in plants identification of two classes with putative functions in redox homeostasis in Arabidopsis thaliana. J Biol Chem, 2002, 277( 34): 30859-30869. | |||
| [4] | Shimabukuro RH, Swanson HR, Walsh WC. Glutathione conjugation: atrazine detoxication mechanism in corn. Plant Physiol, 1970, 46( 1): 103-107. | |||
| [5] | Dixon DP, Lapthorn A, Edwards R. Plant glutathione transferases. Genome Biol, 2002, 3: 3004.1. | |||
| [6] | Kumar S, Asif MH, Chakrabarty D, Tripathi RD, Dubey RS, Trivedi PK. Differential expression of rice lambda class GST gene family members during plant growth, development, and in response to stress conditions. Plant Mol Biol Rep, 2013, 31( 3): 569-580. | |||
| [7] | McGonigle B, Keeler SJ, Lau SMC, Koeppe MK, O'Keefe DP. A genomics approach to the comprehensive analysis of the glutathione S-transferase gene family in soybean and maize. Plant Physiol, 2000, 124( 3): 1105-1120. | |||
| [8] | Edwards R, Dixon DP, Walbot V. Plant glutathione S-transferases: enzymes with multiple functions in sickness and in health. Trends Plant Sci, 2000, 5( 5): 193-198. | |||
| [9] | Kampranis SC, Damianova R, Atallah M, Toby G, Kondi G, Tsichlis PN, Makris AM. A novel plant glutathione S-transferase/peroxidase suppresses Bax lethality in yeast. J Biol Chem, 2000, 275( 38): 29207-29216. | |||
| [10] | Goodman CD, Casati P, Walbot V. A multidrug resistance- associated protein involved in anthocyanin transport in Zea mays. Plant Cell, 2004, 16( 7): 1812-1826. | |||
| [11] | Pérez-Díaz R, Madrid-Espinoza J, Salinas-Cornejo J, González-Villanueva E, Ruiz-Lara S. Differential roles for VviGST1, VviGST3, and VviGST4 in proanthocyanidin and anthocyanin transport in Vitis vinífera. Front Plant Sci, 2016, 7: 1166. | |||
| [12] | HUANG YM. Expression analyses and functional verification of proanthocyanidin precursor transmenbrane genes MATE and GSTJN persimmon fruit[D]. Wuhan: Huazhong Agricultural University, 2015. | |||
| [12] | 黄燕梅. 柿原花青素前体跨膜及转运相关基因MATE、GST的表达分析及功能验证[学位论文]. 武汉: 华中农业大学, 2015. | |||
| [13] | Zettl R, Schell J, Palme K. Photoaffinity labeling of Arabidopsis thaliana plasma membrane vesicles by 5-azido- [7-3H] indole-3-acetic acid: identification of a glutathione S-transferase. Proc Natl Acad Sci USA, 1994, 91( 2):
Options
/
|