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表型可塑性而非适应性追踪是导致[具体物种]冷驯化后抗冻能力季节性变化的基础。 (注:原文中“of”后面缺少具体物种信息)

Phenotypic plasticity, but not adaptive tracking, underlies seasonal variation in post-cold hardening freeze tolerance of .

作者信息

Stone Helen M, Erickson Priscilla A, Bergland Alan O

机构信息

University of Virginia Charlottesville Virginia.

出版信息

Ecol Evol. 2019 Dec 6;10(1):217-231. doi: 10.1002/ece3.5887. eCollection 2020 Jan.

Abstract

In temperate regions, an organism's ability to rapidly adapt to seasonally varying environments is essential for its survival. In response to seasonal changes in selection pressure caused by variation in temperature, humidity, and food availability, some organisms exhibit plastic changes in phenotype. In other cases, seasonal variation in selection pressure can rapidly increase the frequency of genotypes that offer survival or reproductive advantages under the current conditions. Little is known about the relative influences of plastic and genetic changes in short-lived organisms experiencing seasonal environmental fluctuations. Cold hardening is a seasonally relevant plastic response in which exposure to cool, but nonlethal, temperatures significantly increases the organism's ability to later survive at freezing temperatures. In the present study, we demonstrate seasonal variation in cold hardening in and test the extent to which plasticity and adaptive tracking underlie that seasonal variation. We measured the post-cold hardening freeze tolerance of flies from outdoor mesocosms over the summer, fall, and winter. We bred outdoor mesocosm-caught flies for two generations in the laboratory and matched each outdoor cohort to an indoor control cohort of similar genetic background. We cold hardened all flies under controlled laboratory conditions and then measured their post-cold hardening freeze tolerance. Comparing indoor and field-caught flies and their laboratory-reared G1 and G2 progeny allowed us to determine the roles of seasonal environmental plasticity, parental effects, and genetic changes on cold hardening. We also tested the relationship between cold hardening and other factors, including age, developmental density, food substrate, presence of antimicrobials, and supplementation with live yeast. We found strong plastic responses to a variety of field- and laboratory-based environmental effects, but no evidence of seasonally varying parental or genetic effects on cold hardening. We therefore conclude that seasonal variation in post-cold hardening freeze tolerance results from environmental influences and not genetic changes.

摘要

在温带地区,生物体迅速适应季节性变化环境的能力对其生存至关重要。为应对由温度、湿度和食物可获得性变化引起的选择压力的季节性变化,一些生物体表现出表型的可塑性变化。在其他情况下,选择压力的季节性变化可迅速增加在当前条件下具有生存或繁殖优势的基因型的频率。对于经历季节性环境波动的短命生物体中可塑性和遗传变化的相对影响,人们了解甚少。冷驯化是一种与季节相关的可塑性反应,其中暴露于凉爽但非致死的温度会显著提高生物体随后在冷冻温度下存活的能力。在本研究中,我们展示了[具体物种]冷驯化的季节性变化,并测试了可塑性和适应性跟踪在该季节性变化中所起作用的程度。我们测量了夏季、秋季和冬季室外中型生态箱中果蝇冷驯化后的耐寒性。我们在实验室中让室外中型生态箱捕获的果蝇繁殖两代,并将每个室外群体与具有相似遗传背景的室内对照群体进行匹配。我们在受控的实验室条件下对所有果蝇进行冷驯化,然后测量它们冷驯化后的耐寒性。比较室内和野外捕获的果蝇及其在实验室饲养的G1和G2后代,使我们能够确定季节性环境可塑性、亲本效应和遗传变化对冷驯化的作用。我们还测试了冷驯化与其他因素之间的关系,包括年龄、发育密度、食物底物、抗菌剂的存在以及添加活酵母。我们发现对各种基于野外和实验室的环境影响有强烈的可塑性反应,但没有证据表明冷驯化存在季节性变化的亲本或遗传效应。因此,我们得出结论,冷驯化后耐寒性的季节性变化是由环境影响而非遗传变化导致的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d1c6/6972814/92f055e2199f/ECE3-10-217-g001.jpg

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