人类基因组的自然突变由内源性逆转移子引起
Rebecca C Iskow1, Michael T McCabe, Ryan E Mills
1Genetics and Molecular Biology Graduate Program, Emory University, Atlanta, GA 30322, USA.
Cell
|July 7, 2010
概括
像Alu和L1这样的移动元素在人类DNA中创造了新的插入. 新技术显示,这些逆转移子插入在人群和癌症中很常见,影响人类健康.
科学领域:
- 基因组学就是基因组学.
- 分子生物学分子生物学
- 人类遗传学 人类遗传学
背景情况:
- 移动遗传元素,特别是Alu和L1逆转移体,在人类基因组中是活跃的.
- 以前的技术限制了最近的逆转移子插入的检测,从而掩盖了它们的全部影响.
- 由内源性逆转移体引起的生殖线突变性一直是难以量化的挑战.
研究的目的:
- 开发和应用新的技术来检测年轻的逆转移子插入.
- 评估这些插入在人类群体中的丰富程度.
- 研究癌症基因组中体质L1插入的频率和原因.
主要方法:
- 开发用于识别新的逆转移子插入的先进技术.
- 对人类种群的全基因组分析以量化插入频率.
- 对肺癌基因组的分析,以确定体质L1插入和相关的基因组变化.
主要成果:
- 新技术成功地检测到了人类基因组中丰富的年轻逆转移子插入.
- 人体L1插入在人类肺癌基因组中高频率被发现.
- 改变的DNA甲基化模式与瘤中L1调动增加有关.
结论:
- 转子子介导的突变发生是一种在人类基因组中显著且广泛的现象.
- 这些移动元素对遗传变异和疾病有着广泛的贡献.
- 对转子子子活动的进一步研究对于理解人类生物学和疾病发病过程至关重要.
相关概念视频
Non-LTR Retrotransposons
As the name suggests, non-LTR retrotransposons lack the long terminal repeats characteristic of the LTR retrotransposons. Additionally, both LTR and non-LTR retrotransposons use distinct mechanisms of mobilization. Non-LTR retrotransposons are further divided into two classes - Long interspersed nuclear elements (LINEs) and short interspersed nuclear elements (SINEs), both of which occur abundantly in most mammals, including humans. Some of the active non-LTR retrotransposons in humans are L1...
LTR Retrotransposons
LTR retrotransposons are class I transposable elements with long terminal repeats flanking an internal coding region. These elements are less abundant in mammals compared to other class I transposable elements. About 8 percent of human genomic DNA comprises LTR retrotransposons. Some of the common examples of LTR retrotransposons are Ty elements in yeast and Copia elements in Drosophila.
The internal coding region of LTR retrotransposons and their mechanism of transposition closely resembles a...
The internal coding region of LTR retrotransposons and their mechanism of transposition closely resembles a...
DNA-only Transposons
DNA-only transposons are called autonomous transposons since they code for the enzyme transposase that is required for the transposition mechanism. Insertion of transposons can alter gene functions in multiple ways. They can mutate the gene, alter gene expression by introducing a novel promoter or insulator sequence, introduce new splice sites, and change the mRNA transcripts produced, or remodel chromatin structure.
The donor site from where the transposon is excised is either degraded or...
The donor site from where the transposon is excised is either degraded or...
In-vitro Mutagenesis
To learn more about the function of a gene, researchers can observe what happens when the gene is inactivated or “knocked out,” by creating genetically engineered knockout animals. Knockout mice have been particularly useful as models for human diseases such as cancer, Parkinson’s disease, and diabetes.
Spontaneous and Induced Mutations
Spontaneous mutations arise infrequently during DNA replication due to errors in the process. A key factor behind these errors is tautomeric shifts in nitrogenous bases, where bases transition from keto to enol forms or amino to imino forms. This shift can alter base-pairing rules, leading to mutations. Additionally, reactive oxygen species (ROS) arising from aerobic metabolism can damage DNA, resulting in depurination (loss of a purine base) or depyrimidination (loss of a pyrimidine base).
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...

