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Mol Ecol. 2020 Apr;29(7):1284-1299. doi: 10.1111/mec.15411. Epub 2020 Apr 20.
2
Integrating hybrid zone analyses in species delimitation: lessons from two anuran radiations of the Western Mediterranean.将杂交区分析整合到物种界定中:来自西地中海两种无尾目辐射的经验教训。
Heredity (Edinb). 2020 Mar;124(3):423-438. doi: 10.1038/s41437-020-0294-z. Epub 2020 Jan 20.
3
Genome-wide epigenetic isolation by environment in a widespread Anolis lizard.环境对广泛分布的蜥蜴进行全基因组表观遗传隔离。
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4
Comparative landscape genetics reveals the evolution of viviparity reduces genetic connectivity in fire salamanders.比较景观遗传学揭示了胎生的进化降低了火蜥蜴的遗传连通性。
Mol Ecol. 2019 Oct;28(20):4573-4591. doi: 10.1111/mec.15249. Epub 2019 Oct 15.
5
Multiscale resistant kernel surfaces derived from inferred gene flow: An application with vernal pool breeding salamanders.基于推断基因流的多尺度抗性核表面:以春季池繁殖蝾螈为例。
Mol Ecol Resour. 2020 Jan;20(1):97-113. doi: 10.1111/1755-0998.13089. Epub 2019 Sep 24.
6
North-facing slopes and elevation shape asymmetric genetic structure in the range-restricted salamander .北向山坡和海拔塑造了范围受限蝾螈的不对称遗传结构。
Ecol Evol. 2019 Apr 16;9(9):5094-5105. doi: 10.1002/ece3.5064. eCollection 2019 May.
7
Phylogeography of a widespread lizard complex reflects patterns of both geographic and ecological isolation.广泛分布蜥蜴复合体的系统地理学反映了地理和生态隔离的模式。
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Allopatric diversification and evolutionary melting pot in a North African Palearctic relict: The biogeographic history of Salamandra algira.异域分化与进化熔炉:北非古北界遗迹中的阿尔及利亚蝾螈的生物地理历史。
Mol Phylogenet Evol. 2019 Jan;130:81-91. doi: 10.1016/j.ympev.2018.10.018. Epub 2018 Oct 12.
9
Cryptic population structure reveals low dispersal in Iberian wolves.隐秘的种群结构揭示了伊比利亚狼的低扩散性。
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Hybridization and extensive mitochondrial introgression among fire salamanders in peninsular Italy. hybridization and extensive mitochondrial introgression among fire salamanders in peninsular italy.
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物理和生态隔离有助于维持火蝾螈亚种间的遗传分化。

Physical and ecological isolation contribute to maintain genetic differentiation between fire salamander subspecies.

机构信息

Institute of Environmental Sciences, Jagiellonian University, Gronostajowa 7, 30-387, Kraków, Poland.

Departamento de Biodiversidad y Biología Evolutiva, Museo Nacional de Ciencias Naturales MNCN-CSIC, c/José Gutiérrez Abascal 2, 28006, Madrid, Spain.

出版信息

Heredity (Edinb). 2021 May;126(5):776-789. doi: 10.1038/s41437-021-00405-0. Epub 2021 Feb 3.

DOI:10.1038/s41437-021-00405-0
PMID:33536637
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8102559/
Abstract

Landscape features shape patterns of gene flow among populations, ultimately determining where taxa lay along the continuum between panmixia to complete reproductive isolation. Gene flow can be restricted, leading to population differentiation in two non-exclusive ways: "physical isolation", in which geographic distance in combination with the landscape features restricts movement of individuals promoting genetic drift, and "ecological isolation", in which adaptive mechanisms constrain gene flow between different environments via divergent natural selection. In central Iberia, two fire salamander subspecies occur in parapatry across elevation gradients along the Iberian Central System mountains, while in the adjacent Montes de Toledo Region only one of them occurs. By integrating population and landscape genetic analyses, we show a ubiquitous role of physical isolation between and within mountain ranges, with unsuitable landscapes increasing differentiation between populations. However, across the Iberian Central System, we found strong support for a significant contribution of ecological isolation, with low genetic differentiation in environmentally homogeneous areas, but high differentiation across sharp transitions in precipitation seasonality. These patterns are consistent with a significant contribution of ecological isolation in restricting gene flow among subspecies. Overall, our results suggest that ecological divergence contributes to reduce genetic admixture, creating an opportunity for lineages to follow distinct evolutionary trajectories.

摘要

景观特征塑造了种群间基因流动的模式,最终决定了分类单元沿着完全生殖隔离的泛化混合连续体所处的位置。基因流动可能会受到限制,从而导致种群分化,这有两种非排他性的方式:“物理隔离”,其中地理距离与景观特征相结合限制了个体的移动,促进了遗传漂变;“生态隔离”,其中适应性机制通过不同环境之间的分歧自然选择限制基因流动。在伊比利亚中部,两种火蝾螈亚种在伊比利亚中央系统山脉的海拔梯度上发生近缘杂交,而在相邻的托莱多山脉地区,只有其中一种出现。通过整合种群和景观遗传分析,我们发现山脉之间和内部的物理隔离无处不在,不合适的景观增加了种群之间的分化。然而,在伊比利亚中央系统范围内,我们发现生态隔离的显著贡献得到了强有力的支持,在环境同质区域遗传分化较低,但在降水季节性急剧变化的区域分化较高。这些模式与生态隔离在限制亚种间基因流动方面的重要贡献是一致的。总的来说,我们的研究结果表明,生态分歧有助于减少基因混合,为谱系沿着不同的进化轨迹发展创造了机会。