Geminiviruses: Models for Plant DNA Replication, Transcription, and Cell Cycle Regulation

生物 DNA复制 细胞周期 染色体复制控制 抄写(语言学) DNA再复制 双子病毒科 DNA 原点识别复合体 细胞生物学 遗传学 病毒复制 真核细胞DNA复制 基因组 细胞 基因 病毒 胚状病毒 语言学 哲学
作者
Linda Hanley‐Bowdoin,Sharon B. Settlage,Beverly M. Orozco,Steven Nagar,Dominique Robertson
出处
期刊:Critical Reviews in Plant Sciences [Taylor & Francis]
卷期号:18 (1): 71-106 被引量:539
标识
DOI:10.1080/07352689991309162
摘要

Geminiviruses have small, single-stranded DNA genomes that replicate through double-stranded intermediates in the nuclei of infected plant cells. Viral double-stranded DNA also assembles into minichromosomes and is transcribed in infected cells. Geminiviruses encode only a few proteins for their replication and transcription and rely on host enzymes for these processes. However, most plant cells, which have exited the cell cycle and undergone differentiation, do not contain the replicative enzymes necessary for viral DNA synthesis. To overcome this barrier, geminiviruses induce the accumulation of DNA replication machinery in mature plant cells, most likely by modifying cell cycle and transcriptional controls. In animals, several DNA viruses depend on host replication and transcription machinery and can alter their hosts to create an environment that facilitates efficient viral replication. Analysis of these viruses and their proteins has contributed significantly to our understanding of DNA replication, transcription, and cell cycle regulation in mammalian cells. Geminiviruses have the same potential for plant systems. Plants offer many advantages for these types of studies, including ease of transformation, well-defined cell populations and developmental programs, and greater tolerance of cell cycle perturbation and polyploidy. Our knowledge of the molecular and cellular events that mediate geminivirus infection has increased significantly during recent years. The goal of this review is to summarize recent research addressing geminivirus DNA replication and its integration with transcriptional and cell cycle regulatory processes.

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