The multi-omics analysis in the hepatopancreas of Eriocheir sinensis provides novel insights into the response mechanism of heat stress

IF 2.2 2区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY Comparative Biochemistry and Physiology D-Genomics & Proteomics Pub Date : 2024-04-04 DOI:10.1016/j.cbd.2024.101232
Chenchen Shen , Guangpeng Feng , Feng Zhao , Xiaorong Huang , Xincang Li
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Abstract

Under global warming, heat stress can induce the excessive production of reactive oxygen species, causing irreversible damage to aquatic animals. It is essential to predict potentially harmful impacts on aquatic organisms under heat stress. Eriocheir sinensis, a typical crustacean crab, is widely distributed in China, American and Europe. Parent E. sinensis need migrate to the estuaries to reproduce in winter, and temperature is a key environmental factor. Herein, we performed a comprehensive transcriptomic and proteomic analysis in the hepatopancreas of E. sinensis under heat stress (20 °C and 30 °C), focusing on heat shock protein family, antioxidant system, energy metabolism and immune defense. The results revealed that parent E. sinensis generated adaptative responses to maintain physiological function under 20 °C stress via the transcriptional up-regulation of energy metabolism enzymes, mRNA synthesis and heat shock proteins. The transcriptional inhibition of key enzymes related to energy metabolism implied that 30 °C stress may lead to the dysfunction of energy metabolism in parent E. sinensis. Meanwhile, parent E. sinensis also enhanced the expression of ferritin and phospholipase D at translational level, and the glutathione s-transferase and heat shock protein 70 at both transcriptional and translational levels, speculating that parent E. sinensis can strengthen antioxidant and immune capacity to resist oxidative stress under 30 °C stress. This study elucidated the potential molecular mechanism in response to heat stress of parent E. sinensis hepatopancreas. The preliminary selection of heat tolerance genes or proteins in E. sinensis can provide a reference for the population prediction and the study of evolutionary mechanism under heat stress in crabs.

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对中华鳖肝胰脏的多组学分析为了解热应激反应机制提供了新的视角
在全球变暖的情况下,热应力会诱发活性氧的过度产生,对水生动物造成不可逆转的损害。预测热胁迫对水生生物的潜在有害影响至关重要。中华绒螯蟹是一种典型的甲壳类蟹类,广泛分布于中国、美洲和欧洲。亲本中华绒螯蟹需要在冬季迁移到河口进行繁殖,而温度是一个关键的环境因素。在此,我们对热胁迫(20 °C和30 °C)条件下中华绒螯蟹肝胰腺的转录组和蛋白质组进行了全面分析,重点关注热休克蛋白家族、抗氧化系统、能量代谢和免疫防御。结果发现,亲本中华鳖在20 ℃胁迫下通过转录上调能量代谢酶、mRNA合成和热休克蛋白,产生适应性反应以维持生理功能。与能量代谢有关的关键酶的转录抑制表明,30 ℃胁迫可能会导致亲本中华鳖的能量代谢功能失调。同时,亲本中华鳖在转录水平上提高了铁蛋白和磷脂酶D的表达,在转录和转译水平上提高了谷胱甘肽转移酶和热休克蛋白70的表达,推测亲本中华鳖在30 ℃胁迫下可增强抗氧化和免疫能力,以抵抗氧化胁迫。本研究阐明了亲本中华鳖肝胰腺对热应激反应的潜在分子机制。初步筛选出中华绒螯蟹耐热基因或蛋白,可为中华绒螯蟹种群预测和热胁迫下的进化机制研究提供参考。
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来源期刊
CiteScore
5.10
自引率
3.30%
发文量
69
审稿时长
33 days
期刊介绍: Comparative Biochemistry & Physiology (CBP) publishes papers in comparative, environmental and evolutionary physiology. Part D: Genomics and Proteomics (CBPD), focuses on “omics” approaches to physiology, including comparative and functional genomics, metagenomics, transcriptomics, proteomics, metabolomics, and lipidomics. Most studies employ “omics” and/or system biology to test specific hypotheses about molecular and biochemical mechanisms underlying physiological responses to the environment. We encourage papers that address fundamental questions in comparative physiology and biochemistry rather than studies with a focus that is purely technical, methodological or descriptive in nature.
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