Connectivity enhances resilience of marine forests after an extreme event.

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Main Authors: Vranken, Sofie, Wernberg, Thomas, Scheben, Armin, Pessarrodona, Albert, Batley, Jacqueline, Coleman, Melinda Ann
Format: Artículo científico
Language:en
Published: Scientific reports 2025
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author Vranken, Sofie
Wernberg, Thomas
Scheben, Armin
Pessarrodona, Albert
Batley, Jacqueline
Coleman, Melinda Ann
author_facet Vranken, Sofie
Wernberg, Thomas
Scheben, Armin
Pessarrodona, Albert
Batley, Jacqueline
Coleman, Melinda Ann
Vranken, Sofie
Wernberg, Thomas
Scheben, Armin
Pessarrodona, Albert
Batley, Jacqueline
Coleman, Melinda Ann
collection PubMed - marine biology
contents Connectivity enhances resilience of marine forests after an extreme event. Vranken, Sofie Wernberg, Thomas Scheben, Armin Pessarrodona, Albert Batley, Jacqueline Coleman, Melinda Ann Kelp Genetic Variation Forests Western Australia Ecosystem Climate Change The resilience of populations to extreme climatic events comprises the resistance to withstand and the ability to recover, which depends on factors such as remaining genetic diversity and population connectivity. In 2011, a MHW caused a 100 km range contraction of kelp (Ecklonia radiata) off Western Australia, but recently recovering kelp forests were discovered. To understand mechanisms of recovery and determine if recovering populations are survivors or immigrants, we used genotyping-by-sequencing to assess patterns of genetic diversity and connectivity. We found that two of the three recovering kelp forests (PG1 and 2) were likely survivors whereas a third smaller population (PGCr 1) was likely produced through re-colonisation from nearby surviving forests. Connectivity was high among populations and migration analysis identified one population (Horrocks) as the most important source for the recovering kelps. All recovering populations had higher neutral genetic diversity, and similar putative adaptive diversity to surrounding surviving populations, suggesting local adaptation. Our results elucidate how mixed processes can contribute to kelp forest resilience following MHWs but cryptic survival and maintenance of population connectivity is key to recovery.
format Artículo científico
id pubmed_39934205
institution PubMed
language en
publishDate 2025
publisher Scientific reports
record_format pubmed
spellingShingle Connectivity enhances resilience of marine forests after an extreme event.
Vranken, Sofie
Wernberg, Thomas
Scheben, Armin
Pessarrodona, Albert
Batley, Jacqueline
Coleman, Melinda Ann
Kelp
Genetic Variation
Forests
Western Australia
Ecosystem
Climate Change
Connectivity enhances resilience of marine forests after an extreme event. Vranken, Sofie Wernberg, Thomas Scheben, Armin Pessarrodona, Albert Batley, Jacqueline Coleman, Melinda Ann Kelp Genetic Variation Forests Western Australia Ecosystem Climate Change The resilience of populations to extreme climatic events comprises the resistance to withstand and the ability to recover, which depends on factors such as remaining genetic diversity and population connectivity. In 2011, a MHW caused a 100 km range contraction of kelp (Ecklonia radiata) off Western Australia, but recently recovering kelp forests were discovered. To understand mechanisms of recovery and determine if recovering populations are survivors or immigrants, we used genotyping-by-sequencing to assess patterns of genetic diversity and connectivity. We found that two of the three recovering kelp forests (PG1 and 2) were likely survivors whereas a third smaller population (PGCr 1) was likely produced through re-colonisation from nearby surviving forests. Connectivity was high among populations and migration analysis identified one population (Horrocks) as the most important source for the recovering kelps. All recovering populations had higher neutral genetic diversity, and similar putative adaptive diversity to surrounding surviving populations, suggesting local adaptation. Our results elucidate how mixed processes can contribute to kelp forest resilience following MHWs but cryptic survival and maintenance of population connectivity is key to recovery.
title Connectivity enhances resilience of marine forests after an extreme event.
topic Kelp
Genetic Variation
Forests
Western Australia
Ecosystem
Climate Change
url https://pubmed.ncbi.nlm.nih.gov/39934205/