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相关概念视频

Speciation Rates01:07

Speciation Rates

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Overview
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Limits to Natural Selection01:38

Limits to Natural Selection

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Organisms that are well-adapted to their environment are more likely to survive and reproduce. However, natural selection does not lead to perfectly adapted organisms. Several factors constrain natural selection.
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The Evidence for Evolution02:55

The Evidence for Evolution

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Genetic variations accumulating within populations over generations give rise to biological evolution. Evolutionary changes can result in the formation of novel varieties and entire new species. These changes are responsible for the diverse forms of life inhabiting the planet. The evidence for evolution suggests that all living organisms descended from common ancestors.
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Genome Size and the Evolution of New Genes03:21

Genome Size and the Evolution of New Genes

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While every living organism has a genome of some kind (be it RNA, or DNA), there is considerable variation in the sizes of these blueprints. One major factor that impacts genome size is whether the organism is prokaryotic or eukaryotic. In prokaryotes, the genome contains little to no non-coding sequence, such that genes are tightly clustered in groups or operons sequentially along the chromosome. Conversely, the genes in eukaryotes are punctuated by long stretches of non-coding sequence.
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Genetics of Speciation02:16

Genetics of Speciation

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Speciation is the evolutionary process resulting in the formation of new, distinct species—groups of reproductively isolated populations.
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Mutation, Gene Flow, and Genetic Drift

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In a population that is not at Hardy-Weinberg equilibrium, the frequency of alleles changes over time. Therefore, any deviations from the five conditions of Hardy-Weinberg equilibrium can alter the genetic variation of a given population. Conditions that change the genetic variability of a population include mutations, natural selection, non-random mating, gene flow, and genetic drift (small population size).
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相关实验视频

Updated: May 15, 2025

Following the Dynamics of Structural Variants in Experimentally Evolved Populations
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形态新奇性的扩散的进化动态.

Ignacio Quintero1

  • 1Institut de Biologie de l'ENS, Département de biologie, École normale supérieure, CNRS, INSERM, Université Paris Science and Lettres, Paris 75005, France.

Proceedings of the National Academy of Sciences of the United States of America
|May 1, 2025
PubMed
概括

身体大小的进化速率稳定,不像适应性景观理论预测的那样放缓. 种类分类和持续的血统进化推动了长期趋势,创造了持续的新奇性.

科学领域:

  • 进化生物学是进化的生物学.
  • 古生物学的古生物学
  • 人类遗传学 是一个学科.

背景情况:

  • 了解进化速率是解读生命历史的关键.
  • 适应性景观理论表明,在达到适应性峰值后,进化速率会放缓,但证据仍在争论中.

研究的目的:

  • 开发和应用一种新的家族遗传模型来评估身体大小的演变和速度.
  • 测试适应性景观理论的预测与跨越4.5亿年的经验数据.

主要方法:

  • 为微妙的速率变化开发了一种基因学"扩散布朗运动"模型.
  • 分析了2950种灭绝物种和792种现存物种的体型演变.
  • 检查了超过4.5亿年的数据的进化速率.

主要成果:

  • 发现进化速率稳定,不受表型差异的影响.
  • 这些发现与适应性景观理论对速度放缓的预测相矛盾.
  • 长期的体型增加是由于持续的血统进化和分类级别的分类造成的.

结论:

  • 进化速率比以前假设的更为恒定.
  • 物种积极塑造它们的环境,推动不断的进化新.
关键词:
适应性的景观.进化速率是指进化的速度.宏观演变的发生.遗传学模型 遗传学模型种类分类分类 种类分类

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  • 适应性景观理论可能无法完全解释身体大小的宏观进化趋势.