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关键氨基酸介导的能量产生与氨解毒之间的平衡在牡蛎属贝类不同盐度适应中的作用。

The role of the balance between energy production and ammonia detoxification mediated by key amino acids in divergent hypersaline adaptation among crassostrea oysters.

机构信息

CAS and Shandong Province Key Laboratory of Experimental Marine Biology, Center for Ocean Mega-Science, Institute of Oceanology, Chinese Academy of Sciences, Qingdao 266071, China; University of Chinese Academy of Sciences, Beijing 100049, China.

CAS and Shandong Province Key Laboratory of Experimental Marine Biology, Center for Ocean Mega-Science, Institute of Oceanology, Chinese Academy of Sciences, Qingdao 266071, China; Laboratory for Marine Biology and Biotechnology, Laoshan Laboratory, Qingdao 266237, China; Key Laboratory of Breeding Biotechnology and Sustainable Aquaculture, Chinese Academy of Sciences, Wuhan 430072, China; Southern Marine Science and Engineering Guangdong Laboratory (Zhanjiang), Zhanjiang 524000, China.

出版信息

Environ Res. 2024 May 1;248:118213. doi: 10.1016/j.envres.2024.118213. Epub 2024 Jan 25.

Abstract

Global ocean salinity is changing under rapid climate change and intensified anthropogenic activity. Increased differences in salinity threaten marine biodiversity, organismal survival, and evolution, particularly sessile invertebrates dwelling in highly fluctuating intertidal and estuarine environments. Comparing the responses of closely related species to salinity changes can provide insights into the adaptive mechanisms underlying inter- and intraspecific divergence in salinity tolerance, but are poorly understood in marine bivalves. We collected wild individuals of four Crassostrea species, in addition to two populations of the same species from their native habitats and determined the dynamics of hydrolyzed amino acids (HAAs) and transcriptional responses to hypersaline stress. In response to hypersaline stress, species/populations inhabiting natural high-salinity sea environments showed higher survival and less decline in HAAs than that of congeners inhabiting low-salinity estuaries. Thus, native environmental salinity shapes oyster tolerance. Notably, a strong negative correlation between the decline in HAAs and survival indicated that the HAAs pool could predict tolerance to hypersaline challenge. Four HAAs, including glutamine (Glu), aspartic acid (Asp), alanine (Ala) and glycine (Gly), were identified as key amino acids that contributed substantially to the emergency response to hypersaline stress. High-salinity-adapted oyster species only induced substantial decreases in Glu and Asp, whereas low-salinity-adapted congeners further incresaed Ala and Gly metabolism under hypersaline stress. The dynamics of the content and gene expression responsible for key amino acids pathways revealed the importance of maintaining the balance between energy production and ammonia detoxification in divergent hypersaline responses among oyster species/populations. High constructive or plastic expression of evolutionarily expanded gene copies in high-salinity-adapted species may contribute to their greater hypersaline tolerance. Our findings reveal the adaptive mechanism of key amino acids in salinity adaptation in marine bivalves and provide new avenues for the prediction of adaptive potential and aquaculture with high-salinity tolerant germplasms.

摘要

在快速的气候变化和人为活动加剧的影响下,全球海洋的盐度正在发生变化。盐度的差异加大威胁着海洋生物多样性、生物生存和进化,尤其是那些生活在潮间带和河口等高度波动环境中的固着无脊椎动物。比较密切相关物种对盐度变化的反应,可以深入了解盐度耐受性中种间和种内分歧的适应机制,但在海洋双壳类动物中了解甚少。我们收集了四个牡蛎物种的野生个体,以及两个来自其原生栖息地的同种的种群,并确定了水解氨基酸(HAAs)的动态和对高盐胁迫的转录反应。在应对高盐胁迫时,栖息在自然高盐海环境中的物种/种群的存活率较高,HAAs 的下降幅度小于栖息在低盐河口的同类。因此,原生环境盐度塑造了牡蛎的耐受性。值得注意的是,HAAs 下降幅度与存活率之间呈强烈负相关,表明 HAA 库可以预测对高盐胁迫的耐受能力。四种 HAAs,包括谷氨酰胺(Glu)、天冬氨酸(Asp)、丙氨酸(Ala)和甘氨酸(Gly),被确定为对高盐应激做出紧急反应的关键氨基酸。高盐适应的牡蛎物种仅诱导 Glu 和 Asp 的显著下降,而低盐适应的同类在高盐胁迫下进一步增加 Ala 和 Gly 代谢。负责关键氨基酸途径的含量和基因表达的动态揭示了在牡蛎物种/种群之间不同的高盐反应中维持能量产生和氨解毒之间平衡的重要性。高盐适应物种中进化扩展基因拷贝的高构建或可塑性表达可能有助于它们更高的高盐耐受性。我们的研究结果揭示了海洋双壳类动物中盐度适应的关键氨基酸的适应机制,并为预测具有高盐耐受性的适应潜力和水产养殖提供了新途径。

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