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Zika Virus Infection Induces DNA Damage Response in Human Neural Progenitors That Enhances Viral Replication
Author(s) -
Christy Hammack,
Sarah C. Ogden,
Joseph C. Madden,
Angelica Medina,
Chongchong Xu,
Ernest O. N. Phillips,
Yuna Son,
Allaura S. Cone,
Serena Giovinazzi,
Ruth Didier,
David M. Gilbert,
Hongjun Song,
Guoli Ming,
Zhexing Wen,
Margo A. Brinton,
Akash Gunjan,
Hengli Tang
Publication year - 2019
Publication title -
journal of virology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.617
H-Index - 292
eISSN - 1070-6321
pISSN - 0022-538X
DOI - 10.1128/jvi.00638-19
Subject(s) - biology , viral replication , virology , zika virus , dna damage , virus , neural stem cell , cell cycle checkpoint , flavivirus , dna replication , progenitor cell , microbiology and biotechnology , dengue virus , dna , cell cycle , cell , genetics , stem cell
Clinically, Zika virus (ZIKV) infection can lead to developmental defects in the cortex of the fetal brain. How ZIKV triggers this event in developing neural cells is not well understood at a molecular level and likely requires many contributing factors. ZIKV efficiently infects human neural progenitor cells (hNPCs) and leads to growth arrest of these cells, which are critical for brain development. Here, we demonstrate that infection with ZIKV, but not dengue virus, disrupts the cell cycle of hNPCs by halting DNA replication during S phase and inducing DNA damage. We further show that ZIKV infection activates the ATM/Chk2 checkpoint but prevents the activation of another checkpoint, the ATR/Chk1 pathway. These results unravel an intriguing mechanism by which an RNA virus interrupts host DNA replication. Finally, by mimicking virus-induced S-phase arrest, we show that ZIKV manipulates the cell cycle to benefit viral replication.

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