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Updated: Apr 21, 2026

MicroRNA-based Regulation of Picornavirus Tropism
Published on: February 6, 2017
MicroRNA miR-21 attenuates human cytomegalovirus replication in neural cells by targeting Cdc25a
Ya-Ru Fu1, Xi-Juan Liu1, Xiao-Jun Li1
1State Key Laboratory of Virology, Wuhan Institute of Virology, Chinese Academy of Sciences, Wuhan, China.
Unlabelled:
Congenital human cytomegalovirus (HCMV) infection is a leading cause of birth defects, primarily manifesting as neurological disorders. HCMV infection alters expression of cellular microRNAs (miRs) and induces cell cycle arrest, which in turn modifies the cellular environment to favor virus replication. Previous observations found that HCMV infection reduces miR-21 expression in neural progenitor/stem cells (NPCs). Here, we show that infection of NPCs and U-251MG cells represses miR-21 while increasing the levels of Cdc25a, a cell cycle regulator and known target of miR-21. These opposing responses to infection prompted an investigation of the relationship between miR-21, Cdc25a, and viral replication. Overexpression of miR-21 in NPCs and U-251MG cells inhibited viral gene expression, genome replication, and production of infectious progeny, while shRNA-knockdown of miR-21 in U-251MG cells increased viral gene expression. In contrast, overexpression of Cdc25a in U-251MG cells increased viral gene expression and production of infectious progeny and overcame the inhibitory effects of miR-21 overexpression. Three viral gene products-IE1, pp71, and UL26-were shown to inhibit miR-21 expression at the transcriptional level. These results suggest that Cdc25a promotes HCMV replication and elevation of Cdc25a levels after HCMV infection are due in part to HCMV-mediated repression of miR-21. Thus, miR-21 is an intrinsic antiviral factor that is modulated by HCMV infection. This suggests a role for miR-21 downregulation in the neuropathogenesis of HCMV infection of the developing CNS.
Importance:
Human cytomegalovirus (HCMV) is a ubiquitous pathogen and has very high prevalence among population, especially in China, and congenital HCMV infection is a major cause for birth defects. Elucidating virus-host interactions that govern HCMV replication in neuronal cells is critical to understanding the neuropathogenesis of birth defects resulting from congenital infection. In this study, we confirm that HCMV infection downregulates miR-21 but upregulates Cdc25a. Further determined the negative effects of cellular miRNA miR-21 on HCMV replication in neural progenitor/stem cells and U-251MG glioblastoma/astrocytoma cells. More importantly, our results provide the first evidence that miR-21 negatively regulates HCMV replication by targeting Cdc25a, a vital cell cycle regulator. We further found that viral gene products of IE1, pp71, and UL26 play roles in inhibiting miR-21 expression, which in turn causes increases in Cdc25a and benefits HCMV replication. Thus, miR-21 appears to be an intrinsic antiviral factor that represents a potential target for therapeutic intervention.
Insights
Human cytomegalovirus (HCMV) infection downregulates miR-21, a microRNA that normally inhibits viral replication by targeting Cdc25a. This repression benefits HCMV replication and may contribute to neurological birth defects.
Area of Science:
- Virology
- Molecular Biology
- Neuroscience
Background:
- Congenital human cytomegalovirus (HCMV) infection is a leading cause of birth defects, often resulting in neurological disorders.
- HCMV infection alters host cell microRNA (miRNA) expression and induces cell cycle arrest, creating an environment conducive to viral replication.
- Previous studies indicated that HCMV reduces miR-21 expression in neural progenitor/stem cells (NPCs).
Purpose of the Study:
- To investigate the relationship between miR-21, Cdc25a, and HCMV replication in neuronal cells.
- To determine the role of miR-21 as a potential antiviral factor against HCMV.
- To elucidate the mechanisms by which HCMV manipulates miR-21 and Cdc25a levels.
Main Methods:
- Infection of neural progenitor/stem cells (NPCs) and U-251MG cells with HCMV.
- Analysis of miR-21 and Cdc25a expression levels post-infection.
- Overexpression and knockdown experiments for miR-21 and Cdc25a.
- Assessment of viral gene expression, genome replication, and infectious progeny production.
- Identification of viral gene products (IE1, pp71, UL26) involved in miR-21 repression.
Main Results:
- HCMV infection repressed miR-21 expression and increased Cdc25a levels in NPCs and U-251MG cells.
- Overexpression of miR-21 inhibited HCMV replication, while miR-21 knockdown enhanced it.
- Overexpression of Cdc25a promoted HCMV replication and counteracted miR-21's inhibitory effects.
- Viral proteins IE1, pp71, and UL26 were identified as repressors of miR-21 transcription.
Conclusions:
- miR-21 acts as an intrinsic antiviral factor against HCMV by targeting Cdc25a.
- HCMV-induced downregulation of miR-21 contributes to increased Cdc25a levels, facilitating viral replication.
- This modulation of miR-21 and Cdc25a by HCMV suggests a role in the neuropathogenesis of congenital HCMV infection.
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