进化的重复性和种子甲虫温度适应的基因组预测
Alexandre Rêgo1,2, Julian Baur3, Camille Girard-Tercieux3,4
1Department of Ecology and Genetics, Uppsala University, Uppsala, Sweden. denovorego@gmail.com.
Nature ecology & evolution
|May 16, 2025
概括
气候变暖推动了甲虫在更高温度下快速表型演变. 然而,基因组适应在不同的遗传背景下不太可预测,使未来的预测变得复杂.
科学领域:
- 进化生物学是进化的生物学.
- 气候变化生物学
- 基因组学就是基因组学.
背景情况:
- 气候变暖对生物多样性构成重大威胁,因为气温增加超过了许多外热生物的最佳范围.
- 非线性温度依赖的细胞过程表明在变暖下更强的选择,可能导致快速和可预测的适应.
研究的目的:
- 调查甲虫Callosobruchus maculatus对热量的表型和基因组适应的可重复性和可预测性.
- 测试适应更高的温度是否比适应更低的温度更快,更可重复.
主要方法:
- 在Callosobruchus maculatus的三个遗传背景上进行了进化和再序列实验.
- 甲虫在热或冷的温度条件下养,以观察进化反应.
主要成果:
- 现型进化在高温条件下明显更快,更容易重复.
- 对热量的基因组适应在不同的遗传背景中不太可能重复.
- 基因组对表型适应的预测在基因背景内是准确的,但在基因背景之间不是.
结论:
- 虽然表型适应热量是快速和可重复的,但基因组适应在不同的遗传背景中显示的重复性较小.
- 遗传冗余和表观症可能解释了在热应激下减少的基因组重复性.
- 从基因组数据中预测表型适应可能会随着全球气温的增加而变得更加具有挑战性.
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