Thermal Selection Shifts Genetic Diversity and Performance in Blue Mussel Juveniles

IF 3.5 2区 生物学 Q1 EVOLUTIONARY BIOLOGY
Jennifer C. Nascimento-Schulze, Jahangir Vajedsamiei, Tim P. Bean, Lisa Frankholz, Reid S. Brennan, Frank Melzner, Robert P. Ellis
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Abstract

Exploring evolutionary and physiological responses to environmental stress is crucial for assessing the effects of climate change on wild populations. Mussels, key inhabitants of the benthos with high ecological and economic value, are a particularly vulnerable species that may be pushed to their ecological limits as warming threatens their survival and population stability. Species within the Mytilus edulis complex are commonly found in temperate regions globally; in the Baltic Sea, populations are formed by M. edulis and M. trossulus hybrids with low levels of M. galloprovincialis introgression. This study investigates the mechanisms through which resilience towards global warming may be fast-tracked in Baltic mussels (Kiel, Germany). For this, we studied two cohorts of juvenile mussels (recently settled animals), one exposed to an extreme heat event early in life and one naïve to this stressor. Both cohorts were later exposed to experimental temperatures ranging from 21°C to 26°C, with animal performance measured after 25 days. Impacts of thermal stress on the genetic composition of each cohort was then assessed by genotyping 50 individuals using a blue mussel 60 K SNP-array. We observed a significant increase in M. edulis genotypes together with a decrease in M. trossulus in the challenged cohort, compared to naive juveniles. We also found exposure to high temperature affected performance of mussel cohorts, reducing dry tissue weight of selected individuals. Results from this study provide insights on how selection through thermal stress impacts performance and genetic composition of key globally distributed intertidal species, with important implications for understanding and managing mussel populations under future warming scenarios.

Abstract Image

热选择改变蓝贻贝幼鱼的遗传多样性和性能
探索对环境胁迫的进化和生理反应对于评估气候变化对野生种群的影响至关重要。贻贝是底栖动物的重要居民,具有很高的生态和经济价值,是一个特别脆弱的物种,随着气候变暖威胁到贻贝的生存和种群稳定,贻贝可能会被推向生态极限。Mytilus edulis复合体内的物种通常在全球温带地区发现;在波罗的海,种群是由毛利m.s edulis和trossulus杂交形成的,加洛省m.s galloprovincialis的渗入程度很低。这项研究调查了波罗的海贻贝对全球变暖的适应能力可能被快速追踪的机制(基尔,德国)。为此,我们研究了两组幼年贻贝(最近定居的动物),一组在生命早期暴露于极端高温事件,另一组naïve暴露于这种压力源。随后,两组动物暴露在21°C至26°C的实验温度下,并在25天后测量动物的生产性能。然后利用蓝贻贝60k SNP-array对50个个体进行基因分型,评估热应激对每个队列遗传组成的影响。我们观察到,与幼稚的幼崽相比,在挑战队列中,M. edulis基因型显著增加,而M. trossulus基因型显著减少。我们还发现,暴露在高温下会影响贻贝群的表现,减少选定个体的干组织重量。本研究结果揭示了热胁迫对全球分布的潮间带主要物种的生长性能和遗传组成的影响,对了解和管理未来变暖情景下的贻贝种群具有重要意义。
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来源期刊
Evolutionary Applications
Evolutionary Applications 生物-进化生物学
CiteScore
8.50
自引率
7.30%
发文量
175
审稿时长
6 months
期刊介绍: Evolutionary Applications is a fully peer reviewed open access journal. It publishes papers that utilize concepts from evolutionary biology to address biological questions of health, social and economic relevance. Papers are expected to employ evolutionary concepts or methods to make contributions to areas such as (but not limited to): medicine, agriculture, forestry, exploitation and management (fisheries and wildlife), aquaculture, conservation biology, environmental sciences (including climate change and invasion biology), microbiology, and toxicology. All taxonomic groups are covered from microbes, fungi, plants and animals. In order to better serve the community, we also now strongly encourage submissions of papers making use of modern molecular and genetic methods (population and functional genomics, transcriptomics, proteomics, epigenetics, quantitative genetics, association and linkage mapping) to address important questions in any of these disciplines and in an applied evolutionary framework. Theoretical, empirical, synthesis or perspective papers are welcome.
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