Song Zhuo, Ye Wei, Tao Yifan, Zheng Tao, Qiang Jun, Li Yan, Liu Wenting, Xu Pao
Wuxi Fisheries College, Nanjing Agricultural University, Wuxi 214081, China.
Key Laboratory of Freshwater Fisheries and Germplasm Resources Utilization, Ministry of Agriculture and Rural Affairs, Freshwater Fisheries Research Center, Chinese Academy of Fishery Sciences, Wuxi 214081, China.
Antioxidants (Basel). 2022 Dec 20;12(1):1. doi: 10.3390/antiox12010001.
Dissolved oxygen (DO) is a key factor affecting the health of aquatic organisms in an intensive aquaculture environment. In this study, largemouth bass () were subjected to acute hypoxic stress for 96 h (DO: 1.00 mg/L) followed by recovery under sufficient DO conditions (DO: 7.50 mg/L) for 96 h. Serum biochemical indices, intestinal histomorphology, the transcriptome, and intestinal microbiota were compared between hypoxia-treated fish and those in a control group. The results showed that hypoxia caused oxidative stress, exfoliation of the intestinal villus epithelium and villus rupture, and increased cell apoptosis. Transcriptome analyses revealed that antioxidant-, inflammation-, and apoptosis-related pathways were activated, and that the MAPK signaling pathway played an important role under hypoxic stress. In addition, 16S rRNA sequencing analyses revealed that hypoxic stress significantly decreased bacterial richness and identified the dominant phyla (Proteobacteria, Firmicutes) and genera (, unclassified , ) involved in the intestinal inflammatory response of largemouth bass. Pearson's correlation analyses showed that differentially expressed genes in the MAPK signaling pathway were significantly correlated with some microflora. The results of this study will help to develop strategies to reduce damage caused by hypoxic stress in aquacultured fish.
溶解氧(DO)是影响集约化水产养殖环境中水生生物健康的关键因素。在本研究中,大口黑鲈在急性低氧胁迫下暴露96小时(DO:1.00毫克/升),随后在充足的溶解氧条件下(DO:7.50毫克/升)恢复96小时。比较了低氧处理组鱼和对照组鱼的血清生化指标、肠道组织形态学、转录组和肠道微生物群。结果表明,低氧导致氧化应激、肠绒毛上皮脱落和绒毛破裂,并增加细胞凋亡。转录组分析显示,抗氧化、炎症和凋亡相关途径被激活,且丝裂原活化蛋白激酶(MAPK)信号通路在低氧胁迫下发挥重要作用。此外,16S核糖体RNA测序分析表明,低氧胁迫显著降低细菌丰富度,并确定了参与大口黑鲈肠道炎症反应的优势门(变形菌门、厚壁菌门)和属(、未分类的、)。Pearson相关性分析表明,MAPK信号通路中的差异表达基因与一些微生物群落显著相关。本研究结果将有助于制定策略,以减少水产养殖鱼类因低氧胁迫造成的损害。