Natural Variation and Genetics of Photoperiodism in Wyeomyia smithii.

4区 生物学 Q2 Biochemistry, Genetics and Molecular Biology
Advances in Genetics Pub Date : 2017-01-01 Epub Date: 2017-10-12 DOI:10.1016/bs.adgen.2017.09.002
William E Bradshaw, Christina M Holzapfel
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引用次数: 9

Abstract

Seasonal change in the temperate and polar regions of Earth determines how the world looks around us and, in fact, how we live our day-to-day lives. For biological organisms, seasonal change typically involves complex physiological and metabolic reorganization, the majority of which is regulated by photoperiodism. Photoperiodism is the ability of animals and plants to use day length or night length, resulting in life-historical transformations, including seasonal development, migration, reproduction, and dormancy. Seasonal timing determines not only survival and reproductive success but also the structure and organization of complex communities and, ultimately, the biomes of Earth. Herein, a small mosquito, Wyeomyia smithii, that lives only in the water-filled leaves of a carnivorous plant over a wide geographic range, is used to explore the genetic and evolutionary basis of photoperiodism. Photoperiodism in W. smithii is considered in the context of its historical biogeography in nature to examine the startling finding that recent rapid climate change can drive genetic change in plants and animals at break-neck speed, and to challenge the ponderous 80+ year search for connections between daily and seasonal time-keeping mechanisms. Finally, a model is proposed that reconciles the seemingly disparate 24-h daily clock driven by the invariant rotation of Earth about its axis with the evolutionarily flexible seasonal timer orchestrated by variable seasonality driven by the rotation of Earth about the Sun.

史密斯威米亚光周期的自然变异与遗传。
地球温带和极地地区的季节变化决定了我们周围世界的样子,事实上,也决定了我们的日常生活方式。对于生物有机体来说,季节变化通常涉及复杂的生理和代谢重组,其中大部分是由光周期调节的。光周期是动物和植物利用昼夜长度的能力,导致生命史上的变化,包括季节性发育、迁徙、繁殖和休眠。季节时间不仅决定了生存和繁殖的成功,也决定了复杂群落的结构和组织,并最终决定了地球的生物群系。在这里,一种小型蚊子,Wyeomyia smithii,只生活在一种肉食性植物的充满水的叶子中,在广泛的地理范围内,被用来探索光周期的遗传和进化基础。W. smithii的光周期现象是在其自然历史生物地理学的背景下考虑的,以检验最近快速的气候变化可以以惊人的速度驱动植物和动物的遗传变化的惊人发现,并挑战80多年来对日常和季节计时机制之间联系的繁重研究。最后,提出了一种模型,将地球围绕其轴的不变旋转驱动的看似不同的24小时每日时钟与地球围绕太阳旋转驱动的可变季节性所协调的进化灵活的季节性计时器相协调。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Advances in Genetics
Advances in Genetics 生物-遗传学
CiteScore
5.70
自引率
0.00%
发文量
1
审稿时长
1 months
期刊介绍: Advances in Genetics presents an eclectic mix of articles of use to all human and molecular geneticists. They are written and edited by recognized leaders in the field and make this an essential series of books for anyone in the genetics field.
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