Slight thermal stress exerts genetic diversity selection at coral (Acropora digitifera) larval stages.

IF 3.7 2区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY BMC Genomics Pub Date : 2025-01-14 DOI:10.1186/s12864-024-11194-1
Cristiana Manullang, Nozomi Hanahara, Ariyo Imanuel Tarigan, Yuko Abe, Mao Furukawa, Masaya Morita
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Abstract

Background: Rising seawater temperatures increasingly threaten coral reefs. The ability of coral larvae to withstand heat is crucial for maintaining reef ecosystems. Although several studies have investigated coral larvae's genetic responses to thermal stress, most relied on pooled sample sequencing, which provides population-level insights but may mask individual genotype variability. This study uses individual larval sequencing to investigate genotype-specific responses to heat stress and the selective pressures shaping their genomes, offering finer resolution and deeper insights.

Results: This study investigates the larval response to heat stress before acquiring symbiotic algae, aiming to elucidate the relationship between coral genetic diversity and heat stress. Larvae sourced from eight Acropora digitifera colonies were subjected to ambient temperature (28 °C) and heat conditions (31 °C). The impact of heat stress on larval genetic diversity was assessed through sequencing. While overall genetic diversity, represented by π, did not significantly differ between the control and heat-exposed groups, Tajima's D differed, indicating different selective pressures in each group. The genomic regions under higher and lower Tajima's D were not broadly shared among control and head conditions, implying that selective pressures operated in distinctive manners. Many larval protein-coding sequences were identified in this genomic region, and the codon evolution of many of these genes showed signs of positive selection. These results highlight the complex selective pressures on coral larvae under different temperatures. The genes showing signs of positive selection in response to heat stress may have also been influenced by historical temperature fluctuations, as suggested by their association with loci identified during Acroporid speciation. These loci under codon-level positive selection during speciation highlight the potential role of genetic diversity in shaping adaptation to environmental changes over evolutionary timescales.

Conclusion: These findings underscore the significance of genetic diversity in coral reproduction for maintaining reef ecosystems. They also indicate that even minor heat stress can exert significant selective pressure, potentially leading to profound implications for coral reef ecosystems. This research is crucial for understanding the impact of rising seawater temperatures on coral reefs.

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轻微的热胁迫对珊瑚(Acropora digitalfera)幼虫期的遗传多样性选择有影响。
背景:海水温度上升对珊瑚礁的威胁越来越大。珊瑚幼虫抵御高温的能力对维持珊瑚礁生态系统至关重要。虽然有几项研究调查了珊瑚幼虫对热应激的遗传反应,但大多数研究都依赖于汇总样本测序,这提供了种群水平的见解,但可能掩盖了个体基因型的可变性。本研究使用个体幼虫测序来研究对热应激的基因型特异性反应和形成其基因组的选择压力,提供更精细的分辨率和更深入的见解。结果:本研究考察了珊瑚幼虫在获取共生藻类前对热胁迫的反应,旨在阐明珊瑚遗传多样性与热胁迫的关系。从8个Acropora digitalfera菌落中提取的幼虫分别置于环境温度(28°C)和高温条件(31°C)下。通过测序评估热应激对幼虫遗传多样性的影响。以π为代表的总体遗传多样性在对照组和热暴露组之间没有显著差异,但Tajima’s D存在差异,表明各组的选择压力不同。高、低田岛D的基因组区域在对照和头部条件下并没有广泛共享,这意味着选择压力以不同的方式起作用。在这一基因组区域中发现了许多幼虫的蛋白质编码序列,其中许多基因的密码子进化显示出正选择的迹象。这些结果突出了珊瑚幼虫在不同温度下的复杂选择压力。在热应激反应中表现出积极选择迹象的基因也可能受到历史温度波动的影响,正如它们与在Acroporid物种形成期间鉴定的位点的关联所表明的那样。这些基因座在物种形成过程中处于密码子水平的正选择,突出了遗传多样性在进化时间尺度上塑造对环境变化的适应方面的潜在作用。结论:这些发现强调了遗传多样性在珊瑚繁殖中对维持珊瑚礁生态系统的重要性。他们还指出,即使是轻微的热应激也会产生重大的选择压力,可能会对珊瑚礁生态系统产生深远的影响。这项研究对于了解海水温度上升对珊瑚礁的影响至关重要。
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来源期刊
BMC Genomics
BMC Genomics 生物-生物工程与应用微生物
CiteScore
7.40
自引率
4.50%
发文量
769
审稿时长
6.4 months
期刊介绍: BMC Genomics is an open access, peer-reviewed journal that considers articles on all aspects of genome-scale analysis, functional genomics, and proteomics. BMC Genomics is part of the BMC series which publishes subject-specific journals focused on the needs of individual research communities across all areas of biology and medicine. We offer an efficient, fair and friendly peer review service, and are committed to publishing all sound science, provided that there is some advance in knowledge presented by the work.
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