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

被引:1
|
作者
Shen, Chenchen [1 ,2 ]
Feng, Guangpeng [1 ,2 ]
Zhao, Feng [1 ]
Huang, Xiaorong [1 ]
Li, Xincang [1 ]
机构
[1] Chinese Acad Fishery Sci, East China Sea Fisheries Res Inst, Shanghai Engn Res Ctr Fisheries Resources Enhancem, Shanghai 200090, Peoples R China
[2] Shanghai Ocean Univ, Coll Fisheries & Life Sci, Shanghai 201306, Peoples R China
基金
中国国家自然科学基金;
关键词
Eriocheir sinensis; Hepatopancreas; High temperature; Transcriptomics; Proteomics; PHOSPHOLIPASE-D; SALINITY; TEMPERATURE; TOLERANCE; INTESTINE; JAPONICUS; FERRITIN; REVEALS; IRON;
D O I
10.1016/j.cbd.2024.101232
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
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 degrees C and 30 degrees 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 degrees 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 degrees 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 degrees 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.
引用
收藏
页数:9
相关论文
共 50 条
  • [1] Multi-omics analysis of oxidative stress and apoptosis in hepatopancreas cells induced by Polyascus gregaria parasitizing the Eriocheir sinensis
    Zhao, Shiwei
    Hu, Qingbiao
    Jiang, Hongbo
    Zhao, Yingying
    Wang, Yanping
    Feng, Chengcheng
    Li, Xiaodong
    FISH & SHELLFISH IMMUNOLOGY, 2023, 143
  • [2] Multi-Omics Analysis Provides Insights into Green Soybean in Response to Cold Stress
    Lin, Yanhui
    Cao, Guangping
    Xu, Jing
    Zhu, Honglin
    Tang, Liqiong
    METABOLITES, 2024, 14 (12)
  • [3] Multi-omics analysis provides insights into the mechanism underlying fruit color formation in Capsicum
    Song, Zhao
    Xu, Xiaowan
    Chen, Xiao
    Chang, Jingjing
    Li, Jing
    Cheng, Jiaowen
    Zhang, Baige
    FRONTIERS IN PLANT SCIENCE, 2024, 15
  • [4] Transcriptome analysis of eyestalk ganglion provides new insights into the immune response of Eriocheir sinensis
    Zhang, Xiaoli
    Shao, Shucheng
    Xu, Jiaxin
    Zhang, Yi
    Zheng, Jinbin
    Cui, Zhaoxia
    COMPARATIVE BIOCHEMISTRY AND PHYSIOLOGY D-GENOMICS & PROTEOMICS, 2025, 55
  • [5] Transcriptome Analysis of Hepatopancreas Provides Insights into Differential Metabolic Mechanisms of Eriocheir sinensis Feeding on Trash Fish and Formulated Feed
    Wang, Meiyao
    Liang, Meng
    Ge, Jiachun
    Ma, Xingkong
    Su, Shengyan
    Li, Jianlin
    Yu, Fan
    Li, Hongxia
    Song, Changyou
    Wu, Ningyuan
    Xu, Pao
    Tang, Yongkai
    Xu, Gangchun
    FRONTIERS IN BIOSCIENCE-LANDMARK, 2022, 27 (08):
  • [6] Multi-omics analysis provides insights into genetic architecture of flavonoid metabolites in Populus
    Lu, Wenjie
    Du, Qingzhang
    Xiao, Liang
    Lv, Chenfei
    Quan, Mingyang
    Li, Peng
    Yao, Liangchen
    Song, Fangyuan
    Zhang, Deqiang
    INDUSTRIAL CROPS AND PRODUCTS, 2021, 168
  • [7] Multi-omics analysis reveals the molecular response to heat stress in a "red tide" dinoflagellate
    Dougan, Katherine E.
    Deng, Zhi-Luo
    Woehlbrand, Lars
    Reuse, Carsten
    Bunk, Boyke
    Chen, Yibi
    Hartlich, Juliane
    Hiller, Karsten
    John, Uwe
    Kalvelage, Jana
    Mansky, Johannes
    Neumann-Schaal, Meina
    Overmann, Joerg
    Petersen, Joern
    Sanchez-Garcia, Selene
    Schmidt-Hohagen, Kerstin
    Shah, Sarah
    Sproeer, Cathrin
    Sztajer, Helena
    Wang, Hui
    Bhattacharya, Debashish
    Rabus, Ralf
    Jahn, Dieter
    Chan, Cheong Xin
    Wagner-Doebler, Irene
    GENOME BIOLOGY, 2023, 24 (01)
  • [8] Multi-omics analysis reveals the molecular response to heat stress in a “red tide” dinoflagellate
    Katherine E. Dougan
    Zhi-Luo Deng
    Lars Wöhlbrand
    Carsten Reuse
    Boyke Bunk
    Yibi Chen
    Juliane Hartlich
    Karsten Hiller
    Uwe John
    Jana Kalvelage
    Johannes Mansky
    Meina Neumann-Schaal
    Jörg Overmann
    Jörn Petersen
    Selene Sanchez-Garcia
    Kerstin Schmidt-Hohagen
    Sarah Shah
    Cathrin Spröer
    Helena Sztajer
    Hui Wang
    Debashish Bhattacharya
    Ralf Rabus
    Dieter Jahn
    Cheong Xin Chan
    Irene Wagner-Döbler
    Genome Biology, 24
  • [9] Transcriptome analysis of the gills of Eriocheir sinensis provide novel insights into the molecular mechanisms of the pH stress response
    Zhu, Shang
    Yan, Xinyao
    Shen, Chenchen
    Wu, Lv
    Tang, Dan
    Wang, Yue
    Wang, Zhengfei
    GENE, 2022, 833
  • [10] Comprehensive multi-omics analysis of nutrient dynamics in colored wheat provides novel insights into the development of functional foods
    Shi, Taotao
    Hu, Xin
    Wang, Xinyi
    Ao, Min
    Zhang, Yueqi
    Li, Fangdi
    Yan, Wenhao
    Chen, Wei
    SEED BIOLOGY, 2025, 4