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Updated: Mar 22, 2026

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Published on: May 21, 2020
Genome-wide identification and characterization of GST gene family associated with heat responses in Plectropomus
Ruofan Lv1, Jin Gao2, Fuxiao Chen2
1Guangdong Research Center on Reproductive Control and Breeding Technology of Indigenous Valuable Fish Species, Guangdong Provincial Key Laboratory of Aquatic Animal Disease Control and Healthy Culture, Fisheries College, Guangdong Ocean University, Zhanjiang 524088, China; Hainan Provincial Key Laboratory of Tropical Maricultural Technologies, Hainan Academy of Ocean and Fisheries Sciences, Haikou 571126, China.
Abstract:
Glutathione S-transferases (GSTs) constitute a multifunctional enzyme superfamily ubiquitous across diverse organisms, playing crucial roles in detoxification, antioxidant defense, and stress adaptation. Despite extensive studies in plants and mammals, systematic characterization of GSTs in teleosts, particularly in economically and ecologically significant species, remains limited. In this study, we performed a comprehensive genome-wide analysis of the GST gene family in the Plectropomus leopardus, a high-value aquaculture species vulnerable to environmental stressors such as thermal fluctuation. Through integrated bioinformatics approaches, we identified 24 GST genes unevenly distributed across 14 chromosomes, which were phylogenetically classified into 13 distinct subfamilies, with the MAPEG subfamily being the most abundant. Structural analyses revealed considerable diversity in gene architecture and conserved protein motifs, suggesting functional divergence among members. Expression profiling under controlled heat stress demonstrated tissue-specific upregulation of multiple GST genes in both liver and gill tissues, highlighting their active involvement in thermal response mechanisms. Furthermore, collinearity analysis indicated that segmental duplication events have contributed to the expansion of the GST family in P. leopardus, with strong evolutionary conservation observed among related fish species. Our findings not only provide a genomic foundation for understanding GST-mediated stress adaptation in marine teleosts but also offer potential candidate genes for future molecular breeding efforts aimed at enhancing thermotolerance in aquaculture.
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