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Size and Structure of Viral Genomes01:26

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Viral genomes exhibit remarkable diversity in size, structure, and composition, influencing their replication strategies and interactions with host cells. These genomes consist of either DNA or RNA and may be linear or circular. Additionally, they can be single-stranded or double-stranded, with each configuration affecting how the virus propagates within a host. RNA viruses, for instance, generally have smaller genomes than DNA viruses, a factor that contributes to their high mutation rates and...
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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...
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Retroviruses and retrotransposons both insert copies of their genetic elements into the genome of the host cell. Thus, the viral genes are passed on when the host genome is replicated or translated. A typical retroviral DNA sequence contains 3-4 genes that encode the different proteins required for its structural assembly and function as a molecular parasite. This DNA is transcribed into a single mRNA, which is very similar in structure to conventional mRNAs, i.e., it is capped at the 5’...
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Retroviruses have a single-stranded RNA genome that undergoes a special form of replication. Once the retrovirus has entered the host cell, an enzyme called reverse transcriptase synthesizes double-stranded DNA from the retroviral RNA genome. This DNA copy of the genome is then integrated into the host’s genome inside the nucleus via an enzyme called integrase. Consequently, the retroviral genome is transcribed into RNA whenever the host’s genome is transcribed, allowing the...
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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.
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Amplification, Next-generation Sequencing, and Genomic DNA Mapping of Retroviral Integration Sites
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逆转录病毒集成到核体中的结构基础

Daniel P Maskell1, Ludovic Renault2, Erik Serrao3

  • 1Chromatin Structure and Mobile DNA, The Francis Crick Institute, Blanche Lane, South Mimms EN6 3LD, UK.

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|June 11, 2015
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概括

原型泡状病毒中体捕获核体,用于逆转录病毒DNA的整合. 这种相互作用涉及特定的DNA和基因组接触,使得在首选的基因组位置的整合.

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科学领域:

  • 分子生物学分子生物学
  • 病毒学 病毒学
  • 结构生物学 结构生物学

背景情况:

  • 复原病毒DNA的整合由整合酶 (IN) 介导,在病毒DNA上形成一个稳定的intasome复合体.
  • 染色体DNA被组织成核体数组,并没有理解因特酶体与核体相互作用的机制.

研究的目的:

  • 阐明原型泡状病毒 (PFV) 如何与核体DNA相互作用并向核体DNA进行逆转录病毒集成的分子机制.

主要方法:

  • 使用单粒子冷电子显微镜 (cryo-EM) 确定了内核体-核体复合体的结构.
  • 进行了生物化学测试,以评估特定氨基酸替代对内核体-核体相互作用和整合效率的影响.

主要成果:

  • PFV intasome通过涉及DNA旋转和H2A-H2B异构体的多价值相互作用稳定地捕获核体.
  • 整合发生在首选的超螺旋位置 (±3.5) 由于DNA从H2A-H2B表面上升起,而基斯顿八度体保持完整.
  • 破坏这些接触的突变会损害核酶体的参与,并改变基因组中的病毒集成位点分布.

结论:

  • 这项研究揭示了核细胞识别和捕获病毒DNA重组机制的分子基础.
  • 核酶体的可塑性,特别是从基因组表面提取DNA的能力,对于在特定的基因组部位实现逆转录病毒集成至关重要.