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在真菌中基因重复的自然历史和进化原理
Ilan Wapinski1, Avi Pfeffer, Nir Friedman
1Broad Institute of MIT and Harvard, 7 Cambridge Center, Cambridge, Massachusetts 02142, USA.
Nature
|September 7, 2007
概括
基因重复和损失驱动功能性创新,但受基因功能限制. 全基因组重复扩大了这一范围,导致了监管分歧和网络模块化.
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.
- 分子生物学分子生物学
背景情况:
- 基因重复和损失是进化中的功能性创新的关键驱动力.
- 了解控制基因复制和丢失的原理对于破译进化过程至关重要.
- 基因组测序的进步使得基因家族进化的全面分析成为可能.
研究的目的:
- 开发一种方法来解决多种物种基因的进化历史.
- 创建基因树的全基因组目录和真菌中的正义学/对称关系.
- 研究基因复制和遗失事件的约束和结果.
主要方法:
- 开发了一种计算程序来重建基因进化史.
- 在17个真菌基因组中应用了该程序.
- 创建了一个全面的基因树目录,以识别正义词和对义词.
主要成果:
- 基因重复和损失受到基因功能和相互作用网络的约束.
- 与压力相关的基因显示高复制率和损失,而与生长相关的基因被保存.
- 重复的基因主要在调控控制上分歧,而不是生化功能.
- 全基因组复制绕过了约束,扩大了功能范围,导致了网络模块化.
结论:
- 基因复制和丢失不是随机的,而是由功能性和网络性质塑造的.
- 调控差异,而不是生化差异,是重复基因的主要命运.
- 基因重复通过专业化促进细胞系统的模块化.
相关概念视频
Gene Duplication and Divergence
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 characterized.
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 characterized.
Gene Families
Gene families consist of groups of genes proposed to have originated from a common ancestor. Typically these arise through events in which a gene or genes are mistakenly duplicated during cell division. Unlike their parent genes (which are subject to selection pressure to maintain function), these gene copies do not need to preserve their sequences and may evolve at a relatively faster rate.
Occasionally these regions can be adapted to take on new roles within the organism, becoming novel genes...
Occasionally these regions can be adapted to take on new roles within the organism, becoming novel genes...
Genome Size and the Evolution of New Genes
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.
Genome Size and the Evolution of New Genes
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.
Overview of Fungi
Fungi are a diverse group of eukaryotes more closely related to animals than other eukaryotes. Fungal cell walls comprise chitin, a polysaccharide that provides structural strength, and glucans, which contribute to flexibility and integrity. Other polysaccharides, such as mannans and galactosans, may supplement or replace chitin in some fungi. These adaptations, along with their preference for acidic environments and tolerance for high osmotic pressure, enable fungi to thrive in various...
Exon Recombination
The evolution of new genes is critical for speciation. Exon recombination, also known as exon shuffling or domain shuffling, is an important means of new gene formation. It is observed across vertebrates, invertebrates, and in some plants such as potatoes and sunflowers. During exon recombination, exons from the same or different genes recombine and produce new exon-intron combinations, which might evolve into new genes.
Exon shuffling follows “splice frame rules.” Each exon has three reading...
Exon shuffling follows “splice frame rules.” Each exon has three reading...

