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相关概念视频

Evolutionary Relationships through Genome Comparisons02:54

Evolutionary Relationships through Genome Comparisons

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Genome comparison is one of the excellent ways to interpret the evolutionary relationships between organisms. The basic principle of genome comparison is that if two species share a common feature, it is likely encoded by the DNA sequence conserved between both species. The advent of genome sequencing technologies in the late 20th century enabled scientists to understand the concept of conservation of domains between species and helped them to deduce evolutionary relationships across diverse...
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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...
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Gene Evolution - Fast or Slow?02:05

Gene Evolution - Fast or Slow?

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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...
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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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The Tree of Life - Bacteria, Archaea, Eukaryotes02:40

The Tree of Life - Bacteria, Archaea, Eukaryotes

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The “tree of life” describes the evolution of life and the evolutionary relationships between organisms. The root of the tree is the common ancestor to all life on Earth. All other species radiate from this point, much like the branches of a tree. The numerous tips of these branches on the tree of life represent every living, or extant, species. Extinct species, which are species that no longer exist, can be found towards the center of the tree. Currently, these organisms, both...
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Convergent Evolution01:54

Convergent Evolution

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Evolution shapes the features of organisms over time, ensuring that they are suited for the environments in which they live. Sometimes, selection pressure leads to the rise of similar but unrelated adaptations in organisms with no recent common ancestors, a process known as convergent evolution.
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Using Phylogenetic Analysis to Investigate Eukaryotic Gene Origin
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宏观进化,差异化树,以及编码系统的增长.

Abir U Igamberdiev1, Richard Gordon2

  • 1Department of Biology, Memorial University of Newfoundland, St. John's, NL, Canada.

Bio Systems
|October 2, 2023
PubMed
概括

多细胞生物的进化取决于发育计划和稳定的状态. 持续的分化,由基因表达和细胞相互作用驱动,推动了进化变化和生物体的复杂性.

科学领域:

  • 发展生物学 发展生物学
  • 进化生物学 进化生物学
  • 系统生物学 系统生物学

背景情况:

  • 多细胞生物的进化依赖于指导形态发生的分化程序.
  • 稳定的成年状态 (静止) 通过差异化事件指导进化轨迹.
  • 机电信号和分化波作为形态遗传代码.

研究的目的:

  • 阐明分化程序在进化中的作用.
  • 解释形态发生和稳定状态的机制.
  • 在差异化树的背景下定义微观进化和宏观进化.

主要方法:

  • 对差异化过程的概念建模.
  • 通过形态遗传代码对基因表达调节的分析.
  • 对差异化树进行拓分析.

主要成果:

  • 持续的分化,源于线粒体能量,区分了真核生物.
  • 面向雅努斯的控制 (上下和下下向上) 控制着形态发生和稳定状态.
  • 差异化树拓变化定义了宏观进化;保存定义了微观进化.

结论:

关键词:
不同化的差异化超级复原是一种超级复原.宏观进化是如何发生的变形的过程中发生了变形.间歇式平衡是指间歇式的平衡.稳定的非平衡状态.拓结构重建的拓结构.

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  • 进化途径是由差异化树的动态形成的.
  • 差异化树中的分支重复驱动着宏观进化.
  • 变形可能代表分化树的融合,影响进化分类.