DNA损伤和修复:导致小头症的潜在机制
Jessica Honorato Ribeiro1,2, Nazlican Altinisik3, Nicholas Rajan1
1Radiobiology Unit, Belgian Nuclear Research Centre (SCK CEN), Mol, Belgium.
Frontiers in cell and developmental biology
|October 26, 2023
概括
对于基因组完整性和大脑发育来说,DNA损伤反应途径至关重要. 缺陷的DNA修复机制可能导致小头症,这是大脑大小减少的情况.
科学领域:
- 神经科学是一个神经科学.
- 分子生物学分子生物学
- 遗传学 是一个遗传学.
背景情况:
- 基因组完整性不断受到DNA损伤剂和内源因素的挑战.
- DNA损伤反应 (DDR) 机制对于修复DNA损伤和预防突变至关重要.
- DDR通路的缺陷与神经系统疾病和小头症有关,特别是在产前发育期间.
研究的目的:
- 审查哺乳动物皮层发育和关键的DNA修复途径.
- 探索受损的DNA修复如何导致小头症.
- 讨论DNA损伤的机制,p53过度激活,以及它们在小头症中的作用.
主要方法:
- 对DNA损伤反应途径的文献综述.
- 对将DNA修复缺陷与小头症联系起来的机制的分析.
- 讨论病因因素,包括遗传突变和环境暴露.
主要成果:
- 大脑在产前发育期间对DNA损伤非常敏感.
- 损坏的DNA修复途径 (例如,非同源DNA末端连接,同源重组) 可以导致小头症.
- 积累的DNA损伤会导致神经干细胞/原生细胞死亡,减少增殖和过早分化.
结论:
- 正确的DNA修复途径的正常运作对于正常的大脑发育至关重要.
- DDR中断可以通过各种细胞机制导致小头症.
- 了解这些途径对于解决与DNA损伤相关的神经疾病至关重要.
关键词:
造成的DNA损伤是DNA损伤.缺少DNA修复的缺陷通过DNA修复途径进行修复.寨卡病毒 寨卡病毒电离辐射辐射的电离辐射.微头症是一个微头症.神经发育的神经发育在 p53 里,p53 是一个 p53 号码.更多相关视频
08:22A Novel Strategy Combining Array-CGH, Whole-exome Sequencing and In Utero Electroporation in Rodents to Identify Causative Genes for Brain Malformations
Published on: December 1, 2017
8.7K
09:39Establishing Mouse Models for Zika Virus-induced Neurological Disorders Using Intracerebral Injection Strategies: Embryonic, Neonatal, and Adult
Published on: April 26, 2018
8.7K
相关概念视频
Nucleotide Excision Repair
3.5K
DNA Distortion and Damage
Cells are regularly exposed to mutagens—factors in the environment that can damage DNA and generate mutations. UV radiation is one of the most common mutagens and is estimated to introduce a significant number of changes in DNA. These include bends or kinks in the structure, which can block DNA replication or transcription. If these errors are not fixed, the damage can cause mutations, which in turn can result in cancer or disease depending on which sequences are...
Cells are regularly exposed to mutagens—factors in the environment that can damage DNA and generate mutations. UV radiation is one of the most common mutagens and is estimated to introduce a significant number of changes in DNA. These include bends or kinks in the structure, which can block DNA replication or transcription. If these errors are not fixed, the damage can cause mutations, which in turn can result in cancer or disease depending on which sequences are...
3.5K
Overview of DNA Repair
31.1K
In order to be passed through generations, genomic DNA must be undamaged and error-free. However, every day, DNA in a cell undergoes several thousand to a million damaging events by natural causes and external factors. Ionizing radiation such as UV rays, free radicals produced during cellular respiration, and hydrolytic damage from metabolic reactions can alter the structure of DNA. Damages caused include single-base alteration, base dimerization, chain breaks, and cross-linkage.
Chemically...
Chemically...
31.1K
DNA Damage can Stall the Cell Cycle
9.2K
In response to DNA damage, cells can pause the cell cycle to assess and repair the breaks. However, the cell must check the DNA at certain critical stages during the cell cycle. If the cell cycle pauses before DNA replication, the cells will contain twice the amount of DNA. On the other hand, if cells arrest after DNA replication but before mitosis, they will contain four times the normal amount of DNA. With a host of specialized proteins at their disposal,cells must use the right protein at...
9.2K
Mutations
83.3K
Overview
83.3K
Fixing Double-strand Breaks
12.6K
The double-stranded structure of DNA has two major advantages. First, it serves as a safe repository of genetic information where one strand serves as the back-up in case the other strand is damaged. Second, the double-helical structure can be wrapped around proteins called histones to form nucleosomes, which can then be tightly wound to form chromosomes. This way, DNA chains up to 2 inches long can be contained within microscopic structures in a cell. A double-stranded break not only damages...
12.6K
Spontaneous and Induced Mutations
23
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).
23
