Evolutionary insights and expression dynamics of the glutathione peroxidase (GPX) gene family in water lily ( Nymphaea colorata) in response to multiple abiotic stresses

被引:1
作者
Khan, Wasi Ullah [1 ,2 ]
Khan, Latif Ullah [1 ]
Khan, Noor Muhammad [2 ]
Wenquan, Wang [1 ,2 ]
Chen, Fei [1 ,2 ]
机构
[1] Hainan Univ, Sanya Inst Breeding & Multiplicat, Coll Breeding & Multiplicat, Natl Key Lab Trop Crop Breeding, Sanya 572025, Peoples R China
[2] Hainan Univ, Coll Trop Agr & Forestry, Danzhou 571700, Peoples R China
来源
PLANT STRESS | 2024年 / 14卷
基金
海南省自然科学基金;
关键词
Water lily; Glutathione peroxidase; Genomics; Abiotic stresses; Calcium signaling; Gene expression; MOLECULAR CHARACTERIZATION; PROMOTER ANALYSIS; ARABIDOPSIS; RICE; IDENTIFICATION; PROTEIN; GENOME; REVEALS; L; ARCHITECTURE;
D O I
10.1016/j.stress.2024.100699
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The glutathione peroxidase (GPX) family in plants contains various isoenzymes, each with distinct subcellular localizations, tissue-specific expression patterns, and responses to environmental stress. In current study, we conducted genome-wide bioinformatics analyses of the GPX gene family in Nymphaea colorata, identifying five putative NcGPX genes dispersed across five of the fourteen chromosomes. Examination of the protein sequences revealed that NcGPXs comprehend three conserved cysteine residues, with predicted in-silico subcellular localizations in chloroplast, extracellular, or cytoplasm. We reported that NcGPX genes protein lengths and molecular weight (MW) ranged from 171 to 248 amino acids (aa) and 18.798-27.076 kDa, respectively. A comparative neighbor-joining phylogenetic study revealed that GPX genes were clustered into four main groups (Group A- D) from water lily and two closely related plant species, alongside with Arabidopsis thaliana. The universal analysis showed that segmental duplications occurred within the NcGPX gene family. Investigation of gene structure and motifs suggested that most NcGPX genes have relatively conserved exon-intron structures and motif arrangements. Promoter region exploration of NcGPX genes revealed numerous cis-acting regulatory elements associated with development, stress, and hormone responses. The identified 3D protein structures showed that water lily GPXs form conserved dimeric protein signatures. Finally, gene expression and enzymes accumulation of NcGPXs in response to different abiotic stresses, in leaves of N. colorata were analysed using real-time RT-qPCR and spectrophotometry. The results indicate that different members of the GPX gene family are co-ordinately regulated under specific environmental stress conditions, establishing a foundation for studying their gene functions and improving abiotic stress tolerance in water lily genetic breeding.
引用
收藏
页数:12
相关论文
共 70 条
[1]  
Abdulwahab M.M., Altaee A.H.Y., Effect of calcium chloride and gibberellic acid on the vegetative growth of two cultivars of gladiolus gladiolus hybrid L, IOP Conf. Ser.: Earth Environ. Sci., 1262, 4, (2023)
[2]  
Ahmed S., Rashid M.A.R., Zafar S.A., Azhar M.T., Waqas M., Uzair M., Rana I.A., Azeem F., Chung G., Ali Z., Genome-wide investigation and expression analysis of APETALA-2 transcription factor subfamily reveals its evolution, expansion and regulatory role in abiotic stress responses in Indica Rice (Oryza sativa L. ssp. indica), Genomics, 113, 1, pp. 1029-1043, (2021)
[3]  
Akbudak M.A., Filiz E., Vatansever R., Kontbay K., Genome-wide identification and expression profiling of ascorbate peroxidase (APX) and glutathione peroxidase (GPX) genes under drought stress in sorghum (Sorghum bicolor L.), J. Plant Growth Regul., 37, pp. 925-936, (2018)
[4]  
Bailey T.L., Johnson J., Grant C.E., Noble W.S., The MEME suite, Nucl. Acids Res., 43, W1, pp. W39-W49, (2015)
[5]  
Bela K., Horvath E., Galle A., Szabados L., Tari I., Csiszar J., Plant glutathione peroxidases: emerging role of the antioxidant enzymes in plant development and stress responses, J. Plant Physiol., 176, pp. 192-201, (2015)
[6]  
Bela K., Riyazuddin R., Horvath E., Hurton A., Galle A., Takacs Z., Zsigmond L., Szabados L., Tari I., Csiszar J., Comprehensive analysis of antioxidant mechanisms in Arabidopsis glutathione peroxidase-like mutants under salt-and osmotic stress reveals organ-specific significance of the AtGPXL's activities, Environ. Exp. Bot., 150, pp. 127-140, (2018)
[7]  
Borsch T., Hilu K.W., Wiersema J.H., Lohne C., Barthlott W., Wilde V., Phylogeny of Nymphaea (Nymphaeaceae): evidence from substitutions and microstructural changes in the chloroplast trnT-trnF region, Int. J. Plant Sci., 168, 5, pp. 639-671, (2007)
[8]  
Cartharius K., Frech K., Grote K., Klocke B., Haltmeier M., Klingenhoff A., Frisch M., Bayerlein M., Werner T., MatInspector and beyond: promoter analysis based on transcription factor binding sites, Bioinformatics, 21, 13, pp. 2933-2942, (2005)
[9]  
Chang C.C.C., Slesak I., Jorda L., Sotnikov A., Melzer M., Miszalski Z., Mullineaux P.M., Parker J.E., Karpinska B., Karpinski S., Arabidopsis chloroplastic glutathione peroxidases play a role in cross talk between photooxidative stress and immune responses, Plant Physiol., 150, 2, pp. 670-683, (2009)
[10]  
Chen C., Chen H., Zhang Y., Thomas H.R., Frank M.H., He Y., Xia R., TBtools: an integrative toolkit developed for interactive analyses of big biological data, Mol. Plant, 13, 8, pp. 1194-1202, (2020)