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Amblyopinae Mitogenomes Provide Novel Insights into the Paraphyletic Origin of Their Adaptation to Mudflat Habitats

The water-to-land transition is one of the most important events in evolutionary history of vertebrates. However, the genetic basis underlying many of the adaptations during this transition remains unclear. Mud-dwelling gobies in the subfamily Amblyopinae are one of the teleosts lineages that show t...

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Autores principales: Lü, Zhenming, Liu, Yantao, Zhao, Shijie, Fang, Jiaqi, Zhu, Kehua, Liu, Jing, Gong, Li, Liu, Liqin, Liu, Bingjian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10001788/
https://www.ncbi.nlm.nih.gov/pubmed/36901796
http://dx.doi.org/10.3390/ijms24054362
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author Lü, Zhenming
Liu, Yantao
Zhao, Shijie
Fang, Jiaqi
Zhu, Kehua
Liu, Jing
Gong, Li
Liu, Liqin
Liu, Bingjian
author_facet Lü, Zhenming
Liu, Yantao
Zhao, Shijie
Fang, Jiaqi
Zhu, Kehua
Liu, Jing
Gong, Li
Liu, Liqin
Liu, Bingjian
author_sort Lü, Zhenming
collection PubMed
description The water-to-land transition is one of the most important events in evolutionary history of vertebrates. However, the genetic basis underlying many of the adaptations during this transition remains unclear. Mud-dwelling gobies in the subfamily Amblyopinae are one of the teleosts lineages that show terrestriality and provide a useful system for clarifying the genetic changes underlying adaptations to terrestrial life. Here, we sequenced the mitogenome of six species in the subfamily Amblyopinae. Our results revealed a paraphyletic origin of Amblyopinae with respect to Oxudercinae, which are the most terrestrial fishes and lead an amphibious life in mudflats. This partly explains the terrestriality of Amblyopinae. We also detected unique tandemly repeated sequences in the mitochondrial control region in Amblyopinae, as well as in Oxudercinae, which mitigate oxidative DNA damage stemming from terrestrial environmental stress. Several genes, such as ND2, ND4, ND6 and COIII, have experienced positive selection, suggesting their important roles in enhancing the efficiency of ATP production to cope with the increased energy requirements for life in terrestrial environments. These results strongly suggest that the adaptive evolution of mitochondrial genes has played a key role in terrestrial adaptions in Amblyopinae, as well as in Oxudercinae, and provide new insights into the molecular mechanisms underlying the water-to-land transition in vertebrates.
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spelling pubmed-100017882023-03-11 Amblyopinae Mitogenomes Provide Novel Insights into the Paraphyletic Origin of Their Adaptation to Mudflat Habitats Lü, Zhenming Liu, Yantao Zhao, Shijie Fang, Jiaqi Zhu, Kehua Liu, Jing Gong, Li Liu, Liqin Liu, Bingjian Int J Mol Sci Article The water-to-land transition is one of the most important events in evolutionary history of vertebrates. However, the genetic basis underlying many of the adaptations during this transition remains unclear. Mud-dwelling gobies in the subfamily Amblyopinae are one of the teleosts lineages that show terrestriality and provide a useful system for clarifying the genetic changes underlying adaptations to terrestrial life. Here, we sequenced the mitogenome of six species in the subfamily Amblyopinae. Our results revealed a paraphyletic origin of Amblyopinae with respect to Oxudercinae, which are the most terrestrial fishes and lead an amphibious life in mudflats. This partly explains the terrestriality of Amblyopinae. We also detected unique tandemly repeated sequences in the mitochondrial control region in Amblyopinae, as well as in Oxudercinae, which mitigate oxidative DNA damage stemming from terrestrial environmental stress. Several genes, such as ND2, ND4, ND6 and COIII, have experienced positive selection, suggesting their important roles in enhancing the efficiency of ATP production to cope with the increased energy requirements for life in terrestrial environments. These results strongly suggest that the adaptive evolution of mitochondrial genes has played a key role in terrestrial adaptions in Amblyopinae, as well as in Oxudercinae, and provide new insights into the molecular mechanisms underlying the water-to-land transition in vertebrates. MDPI 2023-02-22 /pmc/articles/PMC10001788/ /pubmed/36901796 http://dx.doi.org/10.3390/ijms24054362 Text en © 2023 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
Lü, Zhenming
Liu, Yantao
Zhao, Shijie
Fang, Jiaqi
Zhu, Kehua
Liu, Jing
Gong, Li
Liu, Liqin
Liu, Bingjian
Amblyopinae Mitogenomes Provide Novel Insights into the Paraphyletic Origin of Their Adaptation to Mudflat Habitats
title Amblyopinae Mitogenomes Provide Novel Insights into the Paraphyletic Origin of Their Adaptation to Mudflat Habitats
title_full Amblyopinae Mitogenomes Provide Novel Insights into the Paraphyletic Origin of Their Adaptation to Mudflat Habitats
title_fullStr Amblyopinae Mitogenomes Provide Novel Insights into the Paraphyletic Origin of Their Adaptation to Mudflat Habitats
title_full_unstemmed Amblyopinae Mitogenomes Provide Novel Insights into the Paraphyletic Origin of Their Adaptation to Mudflat Habitats
title_short Amblyopinae Mitogenomes Provide Novel Insights into the Paraphyletic Origin of Their Adaptation to Mudflat Habitats
title_sort amblyopinae mitogenomes provide novel insights into the paraphyletic origin of their adaptation to mudflat habitats
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10001788/
https://www.ncbi.nlm.nih.gov/pubmed/36901796
http://dx.doi.org/10.3390/ijms24054362
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