Cargando…

Metabolomic Analysis of the Takifugu Obscurus Gill under Acute Hypoxic Stress

SIMPLE SUMMARY: Takifugu obscurus is an economically important aquaculture species in China. In recent years, the development of the domestic breeding industry of the globefish has been very rapid. However, oxygen fluctuations and nourishing substances in the aquaculture water have caused oxygen dep...

Descripción completa

Detalles Bibliográficos
Autores principales: Zhang, Huakun, Hu, Ziwen, Li, Run, Wang, Yaohui, Zhou, Jinxu, Xu, Hao, Wang, Guan, Qiu, Xuemei, Wang, Xiuli
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9559691/
https://www.ncbi.nlm.nih.gov/pubmed/36230352
http://dx.doi.org/10.3390/ani12192611
_version_ 1784807689846521856
author Zhang, Huakun
Hu, Ziwen
Li, Run
Wang, Yaohui
Zhou, Jinxu
Xu, Hao
Wang, Guan
Qiu, Xuemei
Wang, Xiuli
author_facet Zhang, Huakun
Hu, Ziwen
Li, Run
Wang, Yaohui
Zhou, Jinxu
Xu, Hao
Wang, Guan
Qiu, Xuemei
Wang, Xiuli
author_sort Zhang, Huakun
collection PubMed
description SIMPLE SUMMARY: Takifugu obscurus is an economically important aquaculture species in China. In recent years, the development of the domestic breeding industry of the globefish has been very rapid. However, oxygen fluctuations and nourishing substances in the aquaculture water have caused oxygen deprivation, which makes great economic losses in high-density farming. As the main respiratory organ of fish, gills are greatly affected by changes in dissolved oxygen. Therefore, in this study, we explored the molecular mechanism of hypoxia tolerance of pufferfish by analyzing the changes of metabolites in gill tissue under acute hypoxia. These data provide a scientific basis for the control of dissolved oxygen in the aquatic environment of T. obscurus, and also provide a reference for the breeding of the new varieties with low oxygen tolerance. ABSTRACT: Takifugu obscurus has relatively small gills and gill pores. Consequently, a relatively low respiratory capacity. This fish is thus easily negatively affected by the low levels of dissolved oxygen (DO) that are common in high-intensity aquaculture. In order to clarify the mechanisms underlying the hypoxia response of T. obscurus, we used liquid mass spectrometry (LC–MS) to identify and quantify the metabolites present in the T. obscurus gill under the following conditions: normoxia (DO, 7.0 ± 0.2 mg/L), hypoxia (DO, 0.9 ± 0.2 mg/L), and reoxygenation (4, 12, and 24 h after return to normoxia conditions). We identified a total of 821 and 383 metabolites in the gill in positive and negative ion modes, respectively. Of the metabolites identified in positive ion mode, 136 were differentially abundant between hypoxia and all other conditions; of the metabolites identified in negative ion mode, 34 were differentially abundant between hypoxia and all other conditions. The metabolites which were differentially abundant under hypoxia primarily included glycerol phospholipids, fatty acids, hormones, and amino acids as well as related compounds. The pathways which were significantly enriched in the differentially abundant metabolites included the lipid metabolism, amino acid metabolism, purine metabolism, FoxO signaling pathway, and mTOR signaling pathway. Our results help to clarify the mechanisms underlying hypoxia tolerance and to identify hypoxia-related metabolites, as well as to highlight potential research targets for the development of hypoxic-tolerant strains in the future.
format Online
Article
Text
id pubmed-9559691
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-95596912022-10-14 Metabolomic Analysis of the Takifugu Obscurus Gill under Acute Hypoxic Stress Zhang, Huakun Hu, Ziwen Li, Run Wang, Yaohui Zhou, Jinxu Xu, Hao Wang, Guan Qiu, Xuemei Wang, Xiuli Animals (Basel) Article SIMPLE SUMMARY: Takifugu obscurus is an economically important aquaculture species in China. In recent years, the development of the domestic breeding industry of the globefish has been very rapid. However, oxygen fluctuations and nourishing substances in the aquaculture water have caused oxygen deprivation, which makes great economic losses in high-density farming. As the main respiratory organ of fish, gills are greatly affected by changes in dissolved oxygen. Therefore, in this study, we explored the molecular mechanism of hypoxia tolerance of pufferfish by analyzing the changes of metabolites in gill tissue under acute hypoxia. These data provide a scientific basis for the control of dissolved oxygen in the aquatic environment of T. obscurus, and also provide a reference for the breeding of the new varieties with low oxygen tolerance. ABSTRACT: Takifugu obscurus has relatively small gills and gill pores. Consequently, a relatively low respiratory capacity. This fish is thus easily negatively affected by the low levels of dissolved oxygen (DO) that are common in high-intensity aquaculture. In order to clarify the mechanisms underlying the hypoxia response of T. obscurus, we used liquid mass spectrometry (LC–MS) to identify and quantify the metabolites present in the T. obscurus gill under the following conditions: normoxia (DO, 7.0 ± 0.2 mg/L), hypoxia (DO, 0.9 ± 0.2 mg/L), and reoxygenation (4, 12, and 24 h after return to normoxia conditions). We identified a total of 821 and 383 metabolites in the gill in positive and negative ion modes, respectively. Of the metabolites identified in positive ion mode, 136 were differentially abundant between hypoxia and all other conditions; of the metabolites identified in negative ion mode, 34 were differentially abundant between hypoxia and all other conditions. The metabolites which were differentially abundant under hypoxia primarily included glycerol phospholipids, fatty acids, hormones, and amino acids as well as related compounds. The pathways which were significantly enriched in the differentially abundant metabolites included the lipid metabolism, amino acid metabolism, purine metabolism, FoxO signaling pathway, and mTOR signaling pathway. Our results help to clarify the mechanisms underlying hypoxia tolerance and to identify hypoxia-related metabolites, as well as to highlight potential research targets for the development of hypoxic-tolerant strains in the future. MDPI 2022-09-29 /pmc/articles/PMC9559691/ /pubmed/36230352 http://dx.doi.org/10.3390/ani12192611 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zhang, Huakun
Hu, Ziwen
Li, Run
Wang, Yaohui
Zhou, Jinxu
Xu, Hao
Wang, Guan
Qiu, Xuemei
Wang, Xiuli
Metabolomic Analysis of the Takifugu Obscurus Gill under Acute Hypoxic Stress
title Metabolomic Analysis of the Takifugu Obscurus Gill under Acute Hypoxic Stress
title_full Metabolomic Analysis of the Takifugu Obscurus Gill under Acute Hypoxic Stress
title_fullStr Metabolomic Analysis of the Takifugu Obscurus Gill under Acute Hypoxic Stress
title_full_unstemmed Metabolomic Analysis of the Takifugu Obscurus Gill under Acute Hypoxic Stress
title_short Metabolomic Analysis of the Takifugu Obscurus Gill under Acute Hypoxic Stress
title_sort metabolomic analysis of the takifugu obscurus gill under acute hypoxic stress
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9559691/
https://www.ncbi.nlm.nih.gov/pubmed/36230352
http://dx.doi.org/10.3390/ani12192611
work_keys_str_mv AT zhanghuakun metabolomicanalysisofthetakifuguobscurusgillunderacutehypoxicstress
AT huziwen metabolomicanalysisofthetakifuguobscurusgillunderacutehypoxicstress
AT lirun metabolomicanalysisofthetakifuguobscurusgillunderacutehypoxicstress
AT wangyaohui metabolomicanalysisofthetakifuguobscurusgillunderacutehypoxicstress
AT zhoujinxu metabolomicanalysisofthetakifuguobscurusgillunderacutehypoxicstress
AT xuhao metabolomicanalysisofthetakifuguobscurusgillunderacutehypoxicstress
AT wangguan metabolomicanalysisofthetakifuguobscurusgillunderacutehypoxicstress
AT qiuxuemei metabolomicanalysisofthetakifuguobscurusgillunderacutehypoxicstress
AT wangxiuli metabolomicanalysisofthetakifuguobscurusgillunderacutehypoxicstress