Plasticity as a Sign of Developmental Bias in the Evolution of Gene Regulatory Networks

IF 2.6 3区 生物学 Q2 DEVELOPMENTAL BIOLOGY
Carlos Espinosa-Soto
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引用次数: 0

Abstract

Phenotypic plasticity is an organism's ability to produce a different phenotype in response to nongenetic perturbations such as environmental disturbances. Beneficial phenotypic plasticity can be important in evolution. After an environmental disturbance, it can delay extinction giving opportunity to the appearance of beneficial mutations. In addition, plasticity may also be one of the factors that define the course that evolution takes, for example, through genetic assimilation. This is a process in which a phenotype that initially appears as a plastic response becomes under genetic control. In the end, development of such a phenotype does not require the factor that originally induced it. Here, I use a model of the evolution of gene regulatory networks to study the range of conditions that allow the association between plasticity and the course of evolution. I assayed conditions like the difference between ancestral and optimum phenotypes, the difficulty to build the optimum phenotype, the complexity of the developmental system, mutation rate, strength of plasticity limitations, fitness advantage of the optima, and the similarity between the initially induced phenotype and the optimum. I found that populations that yield a beneficial phenotype through plasticity most often evolve a similar genetically determined phenotype under all the conditions that I assayed. I also identified conditions that facilitate evolution through genetic assimilation. Notwithstanding, even under less favorable circumstances, this form of evolution still confers easier access to a new genetically determined optimum.

可塑性是基因调控网络进化中发育偏差的标志
表型可塑性是生物体在非遗传扰动(如环境扰动)下产生不同表型的能力。有益的表型可塑性在进化中可能很重要。在环境扰动之后,它可以延迟灭绝,给有益突变的出现提供机会。此外,可塑性也可能是决定进化过程的因素之一,例如,通过遗传同化。在这一过程中,最初表现为塑性反应的表型变成了受遗传控制的表型。最后,这种表型的发展不需要最初诱导它的因素。在这里,我使用基因调控网络的进化模型来研究允许可塑性和进化过程之间联系的条件范围。我分析了祖先表型与最优表型之间的差异、构建最优表型的难度、发育系统的复杂性、突变率、可塑性限制的强度、最优适应度优势以及初始诱导表型与最优表型之间的相似性等条件。我发现,在我分析的所有条件下,通过可塑性产生有益表型的种群通常会进化出相似的基因决定表型。我还发现了通过基因同化促进进化的条件。尽管如此,即使在不太有利的环境下,这种进化形式仍然使人们更容易达到由基因决定的新的最佳状态。
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
Evolution & Development
Evolution & Development 生物-发育生物学
CiteScore
6.30
自引率
3.40%
发文量
26
审稿时长
>12 weeks
期刊介绍: Evolution & Development serves as a voice for the rapidly growing research community at the interface of evolutionary and developmental biology. The exciting re-integration of these two fields, after almost a century''s separation, holds much promise as the focus of a broader synthesis of biological thought. Evolution & Development publishes works that address the evolution/development interface from a diversity of angles. The journal welcomes papers from paleontologists, population biologists, developmental biologists, and molecular biologists, but also encourages submissions from professionals in other fields where relevant research is being carried out, from mathematics to the history and philosophy of science.
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