在瘤性疹病毒感染期间表观遗传和表谱学调节
Rajnish Kumar Singh1, Ramakrishna Vangala1, Atharva S Torne1
1Departments of Otorhinolaryngology-Head and Neck Surgery and Microbiology, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA, United States.
Frontiers in microbiology
|January 22, 2025
概括
瘤性玛疹病毒,如爱斯坦-巴尔病毒 (EBV) 和卡波西肉瘤相关疹病毒 (KSHV),在表观遗传上重编程宿主细胞,导致癌症. 针对这些表观遗传变化为病毒诱导的癌症提供了新的治疗策略.
科学领域:
- 病毒学 病毒学
- 表观遗传学 在表观遗传学中,表观遗传学是指表观遗传学.
- 在瘤学瘤学.
背景情况:
- 瘤性马疹病毒,包括爱斯坦-巴尔病毒 (EBV) 和卡波西肉瘤相关疹病毒 (KSHV),与癌症的发展有关.
- 这些病毒操纵宿主细胞生理学和表观遗传/表观转录学情景,以促进瘤发生.
研究的目的:
- 审查玛疹病毒与表观遗传机制相互作用的复杂机制.
- 探索病毒蛋白在表观遗传修饰中的作用及其对癌症的贡献.
- 讨论针对这些表观遗传变化的当前和未来的治疗策略.
主要方法:
- 关于玛疹病毒瘤发生的研究的文献综述.
- 对病毒蛋白与宿主表观遗传因素相互作用的分析.
- 检查DNA甲基化,基因素修饰和非编码RNA的参与.
主要成果:
- 马疹病毒诱导表观遗传重编程,改变DNA甲基化和基因素修饰.
- 关键的病毒蛋白 (EBNA1,LMP1,LANA,vGPCR) 破坏了宿主信号通路的调节.
- 重编程导致瘤基因激活,瘤抑制基因沉默和免疫逃避.
结论:
- 表观遗传和表观转录的重编程对于马疹病毒诱导的瘤发生至关重要.
- 针对这些病毒诱导的表观遗传改变提供了有希望的治疗途径.
- 对这些机制的进一步研究可能会导致新的癌症治疗方法.
相关概念视频
Epigenetic Regulation
3.0K
Epigenetic changes alter the physical structure of the DNA without changing the genetic sequence and often regulate whether genes are turned on or off. This regulation ensures that each cell produces only proteins necessary for its function. For example, proteins that promote bone growth are not produced in muscle cells. Epigenetic mechanisms play an essential role in healthy development. Conversely, precisely regulated epigenetic mechanisms are disrupted in diseases like cancer.
X-chromosome...
X-chromosome...
3.0K
Mechanisms of Retrovirus-induced Cancers
5.0K
Retroviruses are RNA viruses that have been shown to cause cancers in diverse species, including chickens, mice, cats, and monkeys. The RNA genomes of these viruses are first reverse-transcribed into single and then double-stranded DNA (dsDNA) copies. This dsDNA called proviral DNA then integrates into the host genome. Subsequently, the host cell transcribes the proviral DNA in concert with the chromosomal DNA. This leads to the production of viral RNA and proteins that assemble at the host...
5.0K
Regulation of Expression at Multiple Steps
867
The gene expression in cells is regulated at different stages: (i) transcription, (ii) RNA processing, (iii) RNA localization, and (iv) translation. Transcriptional regulation is mediated by regulatory proteins such as transcription factors, activators, or repressors—these control gene expression by initiating or inhibiting the transcription of genes. Once a precursor or pre-mRNA is produced, it undergoes post-transcriptional modification, including 5' capping, splicing, and the...
867
Regulation of Expression Occurs at Multiple Steps
22.4K
Gene expression can be regulated at almost every step from gene to protein. Transcription is the step that is most commonly regulated. This involves the binding of proteins to short regulatory sequences on the DNA. This association can either promote or inhibit the transcription of a gene associated with the respective sequence.
Transcription results in the generation of precursor (pre-mRNA) that consists of both exons and introns, which needs further processing before being translated to a...
Transcription results in the generation of precursor (pre-mRNA) that consists of both exons and introns, which needs further processing before being translated to a...
22.4K
Leaky Scanning
5.1K
During most eukaryotic translation processes, the small 40S ribosome subunit scans an mRNA from its 5' end until it encounters the first start AUG codon. The large 60S ribosomal subunit then joins the smaller one to initiate protein synthesis. The location of the translation initiation is largely determined by the nucleotides near the start codon as there may be multiple translation initiation sites present on the mRNA. Marilyn Kozak discovered that the sequence RCCAUGG (where R...
5.1K
Structure of a Gene
12.4K
A gene is the fundamental unit of heredity. Every individual has two copies of each gene, one inherited from each parent. Although most people contain the same genes, there is a small fraction that is slightly different amongst people. A gene with a small difference in its sequence of DNA bases forms different alleles, contributing to different phenotypes.
However, only 1% of the DNA is composed of genes that encode proteins; the rest, 99% is non-coding DNA. This non-coding DNA performs...
However, only 1% of the DNA is composed of genes that encode proteins; the rest, 99% is non-coding DNA. This non-coding DNA performs...
12.4K


