Cargando…
Genome Sequencing of the Perciform Fish Larimichthys crocea Provides Insights into Molecular and Genetic Mechanisms of Stress Adaptation
The large yellow croaker Larimichthys crocea (L. crocea) is one of the most economically important marine fish in China and East Asian countries. It also exhibits peculiar behavioral and physiological characteristics, especially sensitive to various environmental stresses, such as hypoxia and air ex...
Autores principales: | , , , , , , , , , , , , , , , , , , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Public Library of Science
2015
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4383535/ https://www.ncbi.nlm.nih.gov/pubmed/25835551 http://dx.doi.org/10.1371/journal.pgen.1005118 |
_version_ | 1782364755551322112 |
---|---|
author | Ao, Jingqun Mu, Yinnan Xiang, Li-Xin Fan, DingDing Feng, MingJi Zhang, Shicui Shi, Qiong Zhu, Lv-Yun Li, Ting Ding, Yang Nie, Li Li, Qiuhua Dong, Wei-ren Jiang, Liang Sun, Bing Zhang, XinHui Li, Mingyu Zhang, Hai-Qi Xie, ShangBo Zhu, YaBing Jiang, XuanTing Wang, Xianhui Mu, Pengfei Chen, Wei Yue, Zhen Wang, Zhuo Wang, Jun Shao, Jian-Zhong Chen, Xinhua |
author_facet | Ao, Jingqun Mu, Yinnan Xiang, Li-Xin Fan, DingDing Feng, MingJi Zhang, Shicui Shi, Qiong Zhu, Lv-Yun Li, Ting Ding, Yang Nie, Li Li, Qiuhua Dong, Wei-ren Jiang, Liang Sun, Bing Zhang, XinHui Li, Mingyu Zhang, Hai-Qi Xie, ShangBo Zhu, YaBing Jiang, XuanTing Wang, Xianhui Mu, Pengfei Chen, Wei Yue, Zhen Wang, Zhuo Wang, Jun Shao, Jian-Zhong Chen, Xinhua |
author_sort | Ao, Jingqun |
collection | PubMed |
description | The large yellow croaker Larimichthys crocea (L. crocea) is one of the most economically important marine fish in China and East Asian countries. It also exhibits peculiar behavioral and physiological characteristics, especially sensitive to various environmental stresses, such as hypoxia and air exposure. These traits may render L. crocea a good model for investigating the response mechanisms to environmental stress. To understand the molecular and genetic mechanisms underlying the adaptation and response of L. crocea to environmental stress, we sequenced and assembled the genome of L. crocea using a bacterial artificial chromosome and whole-genome shotgun hierarchical strategy. The final genome assembly was 679 Mb, with a contig N50 of 63.11 kb and a scaffold N50 of 1.03 Mb, containing 25,401 protein-coding genes. Gene families underlying adaptive behaviours, such as vision-related crystallins, olfactory receptors, and auditory sense-related genes, were significantly expanded in the genome of L. crocea relative to those of other vertebrates. Transcriptome analyses of the hypoxia-exposed L. crocea brain revealed new aspects of neuro-endocrine-immune/metabolism regulatory networks that may help the fish to avoid cerebral inflammatory injury and maintain energy balance under hypoxia. Proteomics data demonstrate that skin mucus of the air-exposed L. crocea had a complex composition, with an unexpectedly high number of proteins (3,209), suggesting its multiple protective mechanisms involved in antioxidant functions, oxygen transport, immune defence, and osmotic and ionic regulation. Our results reveal the molecular and genetic basis of fish adaptation and response to hypoxia and air exposure. The data generated by this study will provide valuable resources for the genetic improvement of stress resistance and yield potential in L. crocea. |
format | Online Article Text |
id | pubmed-4383535 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2015 |
publisher | Public Library of Science |
record_format | MEDLINE/PubMed |
spelling | pubmed-43835352015-04-09 Genome Sequencing of the Perciform Fish Larimichthys crocea Provides Insights into Molecular and Genetic Mechanisms of Stress Adaptation Ao, Jingqun Mu, Yinnan Xiang, Li-Xin Fan, DingDing Feng, MingJi Zhang, Shicui Shi, Qiong Zhu, Lv-Yun Li, Ting Ding, Yang Nie, Li Li, Qiuhua Dong, Wei-ren Jiang, Liang Sun, Bing Zhang, XinHui Li, Mingyu Zhang, Hai-Qi Xie, ShangBo Zhu, YaBing Jiang, XuanTing Wang, Xianhui Mu, Pengfei Chen, Wei Yue, Zhen Wang, Zhuo Wang, Jun Shao, Jian-Zhong Chen, Xinhua PLoS Genet Research Article The large yellow croaker Larimichthys crocea (L. crocea) is one of the most economically important marine fish in China and East Asian countries. It also exhibits peculiar behavioral and physiological characteristics, especially sensitive to various environmental stresses, such as hypoxia and air exposure. These traits may render L. crocea a good model for investigating the response mechanisms to environmental stress. To understand the molecular and genetic mechanisms underlying the adaptation and response of L. crocea to environmental stress, we sequenced and assembled the genome of L. crocea using a bacterial artificial chromosome and whole-genome shotgun hierarchical strategy. The final genome assembly was 679 Mb, with a contig N50 of 63.11 kb and a scaffold N50 of 1.03 Mb, containing 25,401 protein-coding genes. Gene families underlying adaptive behaviours, such as vision-related crystallins, olfactory receptors, and auditory sense-related genes, were significantly expanded in the genome of L. crocea relative to those of other vertebrates. Transcriptome analyses of the hypoxia-exposed L. crocea brain revealed new aspects of neuro-endocrine-immune/metabolism regulatory networks that may help the fish to avoid cerebral inflammatory injury and maintain energy balance under hypoxia. Proteomics data demonstrate that skin mucus of the air-exposed L. crocea had a complex composition, with an unexpectedly high number of proteins (3,209), suggesting its multiple protective mechanisms involved in antioxidant functions, oxygen transport, immune defence, and osmotic and ionic regulation. Our results reveal the molecular and genetic basis of fish adaptation and response to hypoxia and air exposure. The data generated by this study will provide valuable resources for the genetic improvement of stress resistance and yield potential in L. crocea. Public Library of Science 2015-04-02 /pmc/articles/PMC4383535/ /pubmed/25835551 http://dx.doi.org/10.1371/journal.pgen.1005118 Text en © 2015 Ao et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited. |
spellingShingle | Research Article Ao, Jingqun Mu, Yinnan Xiang, Li-Xin Fan, DingDing Feng, MingJi Zhang, Shicui Shi, Qiong Zhu, Lv-Yun Li, Ting Ding, Yang Nie, Li Li, Qiuhua Dong, Wei-ren Jiang, Liang Sun, Bing Zhang, XinHui Li, Mingyu Zhang, Hai-Qi Xie, ShangBo Zhu, YaBing Jiang, XuanTing Wang, Xianhui Mu, Pengfei Chen, Wei Yue, Zhen Wang, Zhuo Wang, Jun Shao, Jian-Zhong Chen, Xinhua Genome Sequencing of the Perciform Fish Larimichthys crocea Provides Insights into Molecular and Genetic Mechanisms of Stress Adaptation |
title | Genome Sequencing of the Perciform Fish Larimichthys crocea Provides Insights into Molecular and Genetic Mechanisms of Stress Adaptation |
title_full | Genome Sequencing of the Perciform Fish Larimichthys crocea Provides Insights into Molecular and Genetic Mechanisms of Stress Adaptation |
title_fullStr | Genome Sequencing of the Perciform Fish Larimichthys crocea Provides Insights into Molecular and Genetic Mechanisms of Stress Adaptation |
title_full_unstemmed | Genome Sequencing of the Perciform Fish Larimichthys crocea Provides Insights into Molecular and Genetic Mechanisms of Stress Adaptation |
title_short | Genome Sequencing of the Perciform Fish Larimichthys crocea Provides Insights into Molecular and Genetic Mechanisms of Stress Adaptation |
title_sort | genome sequencing of the perciform fish larimichthys crocea provides insights into molecular and genetic mechanisms of stress adaptation |
topic | Research Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4383535/ https://www.ncbi.nlm.nih.gov/pubmed/25835551 http://dx.doi.org/10.1371/journal.pgen.1005118 |
work_keys_str_mv | AT aojingqun genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT muyinnan genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT xianglixin genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT fandingding genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT fengmingji genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT zhangshicui genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT shiqiong genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT zhulvyun genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT liting genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT dingyang genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT nieli genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT liqiuhua genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT dongweiren genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT jiangliang genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT sunbing genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT zhangxinhui genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT limingyu genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT zhanghaiqi genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT xieshangbo genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT zhuyabing genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT jiangxuanting genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT wangxianhui genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT mupengfei genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT chenwei genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT yuezhen genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT wangzhuo genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT wangjun genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT shaojianzhong genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation AT chenxinhua genomesequencingoftheperciformfishlarimichthyscroceaprovidesinsightsintomolecularandgeneticmechanismsofstressadaptation |