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The genomic basis of cichlid fish adaptation within the deepwater "twilight zone" of Lake Malawi.

作者信息

Hahn Christoph, Genner Martin J, Turner George F, Joyce Domino A

机构信息

Evolutionary and Environmental Genomics Group (@EvoHull), School of Environmental Sciences University of Hull Hull HU5 7RX United Kingdom.

Institute of Zoology University of Graz A-8010 Graz Austria.

出版信息

Evol Lett. 2017 Aug 29;1(4):184-198. doi: 10.1002/evl3.20. eCollection 2017 Sep.


DOI:10.1002/evl3.20
PMID:30283648
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6124600/
Abstract

Deepwater environments are characterized by low levels of available light at narrow spectra, great hydrostatic pressure, and low levels of dissolved oxygen-conditions predicted to exert highly specific selection pressures. In Lake Malawi over 800 cichlid species have evolved, and this adaptive radiation extends into the "twilight zone" below 50 m. We use population-level RAD-seq data to investigate whether four endemic deepwater species ( spp.) have experienced divergent selection within this environment. We identify candidate genes including regulators of photoreceptor function, photopigments, lens morphology, and haemoglobin, many not previously implicated in cichlid adaptive radiations. Colocalization of functionally linked genes suggests coadapted "supergene" complexes. Comparisons of to the broader Lake Malawi radiation using genome resequencing data revealed functional substitutions and signatures of positive selection in candidate genes. Our data provide unique insights into genomic adaptation within deepwater habitats, and suggest genome-level specialization for life at depth as an important process in cichlid radiation.

摘要
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9bec/6124600/e1a1effb3ef6/EVL3-1-184-g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9bec/6124600/7af35851620f/EVL3-1-184-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9bec/6124600/53ae7bde02c3/EVL3-1-184-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9bec/6124600/e1a1effb3ef6/EVL3-1-184-g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9bec/6124600/7af35851620f/EVL3-1-184-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9bec/6124600/53ae7bde02c3/EVL3-1-184-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9bec/6124600/e1a1effb3ef6/EVL3-1-184-g003.jpg

相似文献

[1]
The genomic basis of cichlid fish adaptation within the deepwater "twilight zone" of Lake Malawi.

Evol Lett. 2017-8-29

[2]
African cichlid fish: a model system in adaptive radiation research.

Proc Biol Sci. 2006-8-22

[3]
Genomic signatures of divergent selection and speciation patterns in a 'natural experiment', the young parallel radiations of Nicaraguan crater lake cichlid fishes.

Mol Ecol. 2012-8-30

[4]
Ancient hybridization and phenotypic novelty within Lake Malawi's cichlid fish radiation.

Mol Biol Evol. 2011-11-22

[5]
High levels of interspecific gene flow in an endemic cichlid fish adaptive radiation from an extreme lake environment.

Mol Ecol. 2015-7

[6]
Population genomic signatures of divergent adaptation, gene flow and hybrid speciation in the rapid radiation of Lake Victoria cichlid fishes.

Mol Ecol. 2012-11-5

[7]
Age of cichlids: new dates for ancient lake fish radiations.

Mol Biol Evol. 2007-5

[8]
Reproductive isolation among deep-water cichlid fishes of Lake Malawi differing in monochromatic male breeding dress.

Mol Ecol. 2007-2

[9]
Divergent positive selection in rhodopsin from lake and riverine cichlid fishes.

Mol Biol Evol. 2014-2-6

[10]
Convergent evolution within an adaptive radiation of cichlid fishes.

Curr Biol. 2012-11-15

引用本文的文献

[1]
Visual pigment chromophore usage in Nicaraguan Midas cichlids: phenotypic plasticity and genetic assimilation of expression.

Hydrobiologia. 2025

[2]
Introgression dynamics of sex-linked chromosomal inversions shape the Malawi cichlid radiation.

Science. 2025-6-12

[3]
Widespread Genetic Signals of Visual System Adaptation in Deepwater Cichlid Fishes.

Mol Biol Evol. 2025-7-1

[4]
Dynamic Outlier Slicing Allows Broader Exploration of Adaptive Divergence: A Comparison of Individual Genome and Pool-Seq Data Linked to Humic Adaptation in Perch.

Mol Ecol. 2025-1-23

[5]
A whole-body micro-CT scan library that captures the skeletal diversity of Lake Malawi cichlid fishes.

Sci Data. 2024-9-10

[6]
New chromosome-scale genomes provide insights into marine adaptations of sea snakes (Hydrophis: Elapidae).

BMC Biol. 2023-12-8

[7]
Visual opsin gene expression evolution in the adaptive radiation of cichlid fishes of Lake Tanganyika.

Sci Adv. 2023-9-8

[8]
Sexual imprinting leads to speciation in locally adapted populations.

Ecol Evol. 2022-11-8

[9]
Evolution of miRNA-Binding Sites and Regulatory Networks in Cichlids.

Mol Biol Evol. 2022-7-2

[10]
Mapping epigenetic divergence in the massive radiation of Lake Malawi cichlid fishes.

Nat Commun. 2021-10-7

本文引用的文献

[1]
Predictable convergence in hemoglobin function has unpredictable molecular underpinnings.

Science. 2016-10-21

[2]
Making sense of genomic islands of differentiation in light of speciation.

Nat Rev Genet. 2016-11-14

[3]
Environmental change explains cichlid adaptive radiation at Lake Malawi over the past 1.2 million years.

Proc Natl Acad Sci U S A. 2016-10-18

[4]
Transcription factor 7-like 1 is involved in hypothalamo-pituitary axis development in mice and humans.

Proc Natl Acad Sci U S A. 2016-2-2

[5]
Genomic islands of speciation separate cichlid ecomorphs in an East African crater lake.

Science. 2015-12-18

[6]
Convergent Evolution of Hemoglobin Function in High-Altitude Andean Waterfowl Involves Limited Parallelism at the Molecular Sequence Level.

PLoS Genet. 2015-12-4

[7]
Investigating photoreceptor densities, potential visual acuity, and cone mosaics of shallow water, temperate fish species.

Vision Res. 2015-6

[8]
Sox4 regulates choroid fissure closure by limiting Hedgehog signaling during ocular morphogenesis.

Dev Biol. 2015-3-1

[9]
Ancestral duplications and highly dynamic opsin gene evolution in percomorph fishes.

Proc Natl Acad Sci U S A. 2015-2-3

[10]
Establishment of the neurogenic boundary of the mouse retina requires cooperation of SOX2 and WNT signaling.

Neural Dev. 2014-12-9

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