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Eukaryotic Evolution01:24

Eukaryotic Evolution

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The endosymbiont theory is the most widely accepted theory of eukaryotic evolution; however, its progression is still somewhat debated. According to the nucleus-first hypothesis, the ancestral prokaryote first evolved a membrane to enclose DNA and form the nucleus. Conversely, the mitochondria-first hypothesis suggests that the nucleus was formed after endosymbiosis of mitochondria.
Contrary to the endosymbiont theory, the eukaryote-first hypothesis proposes that the simpler prokaryotic and...
33.9K
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.
42.7K
What is Evolutionary History?02:35

What is Evolutionary History?

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Scientists record evolutionary history by analyzing fossil, morphological, and genetic data. The fossil record documents the history of life on Earth and provides evidence for evolution. However, both fossil and living organisms offer evidence that outlines Earth’s evolutionary history.
36.5K
Gene Evolution - Fast or Slow?02:05

Gene Evolution - Fast or Slow?

7.1K
The genomes of eukaryotes are punctuated by long stretches of sequence which do not code for proteins or RNAs. Although some of these regions do contain crucial regulatory sequences, the vast majority of this DNA serves no known function. Typically, these regions of the genome are the ones in which the fastest change, in evolutionary terms, is observed, because there is typically little to no selection pressure acting on these regions to preserve their sequences.
In contrast, regions which code...
7.1K
Limits to Natural Selection01:38

Limits to Natural Selection

31.3K
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.
31.3K
Gene Duplication and Divergence02:37

Gene Duplication and Divergence

6.1K
The seminal work of Ohno in 1970 popularized the idea of gene duplication and divergence. DNA sequence comparison studies reveal that a large portion of the genes in bacteria, archaebacteria, and eukaryotes was  generated by gene duplication and divergence, indicating its critical role in evolution.
The duplicated copies of the gene are called Paralogs. Paralogs with similar sequences and functions form a gene family. Across several species, a large number of gene families are...
6.1K

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相关实验视频

Updated: Jul 4, 2025

The Power of Simplicity: Sea Urchin Embryos as in Vivo Developmental Models for Studying Complex Cell-to-cell Signaling Network Interactions
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对复杂多细胞性进化的宏观进化模式的非适应性解释.

Emma P Bingham1,2, William C Ratcliff3

  • 1School of Physics, Georgia Institute of Technology, Atlanta, GA 30332.

Proceedings of the National Academy of Sciences of the United States of America
|February 5, 2024
PubMed
概括

复杂的多细胞性在真核生物中进化,而不是 prokaryotes. 这项研究表明,对遗传漂移的反应不同,真核生物扩大基因组,而 prokaryotes 侵蚀它们,推动了这种分歧.

关键词:
适应 适应 适应 适应复杂性的复杂性 复杂性的复杂性遗传漂移是一种遗传漂移.多细胞性多细胞性人口遗传学 人口遗传学

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科学领域:

  • 进化生物学是进化的生物学.
  • 基因组学就是基因组学.

背景情况:

  • 复杂的多细胞性在真核生物中是独立进化的,而不是 prokaryotes.
  • 现有的假设集中在预先必要的真核细胞特征上.

研究的目的:

  • 提出一个非适应性假设,解释复杂多细胞的分离进化.
  • 解释为什么复杂的多细胞性缺少在原核生物.

主要方法:

  • 研究了遗传瓶对有效人口规模 (Ne) 的影响.
  • 分析了 prokaryotic 和 eukaryotic 基因组对遗传漂移的对比进化反应.

主要成果:

  • 多细胞性减少了Ne,增加了遗传漂移的作用.
  • 类真核生物倾向于在漂移下扩展基因组,为创新提供材料.
  • Prokaryotes 通常在漂移下经历基因组侵蚀.

结论:

  • 独特的突变系特异性进化动态,特别是基因组对漂移的反应,是复杂多细胞性长期分离进化的关键.
  • 这种非适应性假设为宏观进化模式提供了另一种解释.