Speciation with gene flow via cycles of isolation and migration: insights from multiple mangrove taxa

Author:

He Ziwen1,Li Xinnian1,Yang Ming1,Wang Xinfeng1,Zhong Cairong2,Duke Norman C3,Wu Chung-I145,Shi Suhua1

Affiliation:

1. State Key Laboratory of Biocontrol, Guangdong Key Lab of Plant Resources, Key Laboratory of Biodiversity Dynamics and Conservation of Guangdong Higher Education Institutes, School of Life Sciences, Sun Yat-Sen University, Guangzhou 510275, China

2. Hainan Dongzhai Harbor National Nature Reserve Administration, Haikou 571129, China

3. Centre for Tropical Water and Aquatic Ecosystem Research, James Cook University, Townsville 4811, Australia

4. CAS Key Laboratory of Genome Sciences and Information, Beijing Institute of Genomics, Chinese Academy of Sciences, Beijing 100101, China

5. Department of Ecology and Evolution, University of Chicago, Chicago IL 60637, USA

Abstract

Abstract Allopatric speciation requiring an unbroken period of geographical isolation has been the standard model of neo-Darwinism. While doubts have been repeatedly raised, strict allopatry without any gene flow remains a plausible mechanism in most cases. To rigorously reject strict allopatry, genomic sequences superimposed on the geological records of a well-delineated geographical barrier are necessary. The Strait of Malacca, narrowly connecting the Pacific and Indian Ocean coasts, serves at different times either as a geographical barrier or a conduit of gene flow for coastal/marine species. We surveyed 1700 plants from 29 populations of 5 common mangrove species by large-scale DNA sequencing and added several whole-genome assemblies. Speciation between the two oceans is driven by cycles of isolation and gene flow due to the fluctuations in sea level leading to the opening/closing of the Strait to ocean currents. Because the time required for speciation in mangroves is longer than the isolation phases, speciation in these mangroves has proceeded through many cycles of mixing-isolation-mixing, or MIM, cycles. The MIM mechanism, by relaxing the condition of no gene flow, can promote speciation in many more geographical features than strict allopatry can. Finally, the MIM mechanism of speciation is also efficient, potentially yielding mn (m > 1) species after n cycles.

Publisher

Oxford University Press (OUP)

Subject

Multidisciplinary

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