Related Experiment Video
Updated: Jul 15, 2026

Use of In vivo Imaging to Monitor the Progression of Experimental Mouse Cytomegalovirus Infection in Neonates
Published on: July 6, 2013
Human Cytomegalovirus IE1 Impairs Neuronal Migration by Downregulating Connexin 43
Sheng-Nan Huang1,2, Yu-Ting Pan1,2, Yue-Peng Zhou3
1State Key Laboratory of Virology, Wuhan Institute of Virology, Chinese Academy of Sciences, Wuhan, China.
Abstract:
Human cytomegalovirus (HCMV) is a leading cause of congenital birth defects. Though the underlying mechanisms remain poorly characterized, mouse models of congenital CMV infection have demonstrated that the neuronal migration process is damaged. In this study, we evaluated the effects of HCMV infection on connexin 43 (Cx43), a crucial adhesion molecule mediating neuronal migration. We show in multiple cellular models that HCMV infection downregulated Cx43 posttranslationally. Further analysis identified the immediate early protein IE1 as the viral protein responsible for the reduction of Cx43. IE1 was found to bind the Cx43 C terminus and promote Cx43 degradation through the ubiquitin-proteasome pathway. Deletion of the Cx43-binding site in IE1 rendered it incapable of inducing Cx43 degradation. We validated the IE1-induced loss of Cx43 in vivo by introducing IE1 into the fetal mouse brain. Noteworthily, ectopic IE1 expression induced cortical atrophy and neuronal migration defects. Several lines of evidence suggest that these damages result from decreased Cx43, and restoration of Cx43 levels partially rescued IE1-induced interruption of neuronal migration. Taken together, the results of our investigation reveal a novel mechanism of HCMV-induced neural maldevelopment and identify a potential intervention target. IMPORTANCE Congenital CMV (cCMV) infection causes neurological sequelae in newborns. Recent studies of cCMV pathogenesis in animal models reveal ventriculomegaly and cortical atrophy associated with impaired neural progenitor cell (NPC) proliferation and migration. In this study, we investigated the mechanisms underlying these NPC abnormalities. We show that Cx43, a critical adhesion molecule mediating NPC migration, is downregulated by HCMV infection in vitro and HCMV-IE1 in vivo. We provide evidence that IE1 interacts with the C terminus of Cx43 to promote its ubiquitination and consequent degradation through the proteasome. Moreover, we demonstrate that introducing IE1 into mouse fetal brains led to neuronal migration defects, which was associated with Cx43 reduction. Deletion of the Cx43-binding region in IE1 or ectopic expression of Cx43 rescued the IE1-induced migration defects in vivo. Our study provides insight into how cCMV infection impairs neuronal migration and reveals a target for therapeutic interventions.
Insights
Human cytomegalovirus (HCMV) infection impairs neuronal migration by downregulating connexin 43 (Cx43). The viral protein IE1 targets Cx43 for degradation, leading to congenital birth defects and potential therapeutic targets.
Area of Science:
- Neuroscience
- Virology
- Developmental Biology
Background:
- Congenital human cytomegalovirus (cCMV) infection is a primary cause of birth defects, often resulting in neurological damage.
- Existing mouse models indicate that CMV infection disrupts neuronal migration, a critical process for brain development.
- The precise molecular mechanisms underlying these developmental defects remain largely unknown.
Purpose of the Study:
- To investigate the role of connexin 43 (Cx43), an adhesion molecule vital for neuronal migration, in HCMV-induced neural maldevelopment.
- To identify the specific viral factors responsible for Cx43 downregulation during HCMV infection.
- To elucidate the mechanism by which HCMV impacts neuronal migration and to explore potential therapeutic strategies.
Main Methods:
- Utilized multiple cellular models to assess the effects of HCMV infection on Cx43 expression.
- Employed molecular biology techniques to identify the viral protein (IE1) responsible for Cx43 reduction and its binding site.
- Validated findings in vivo by introducing IE1 into fetal mouse brains and assessing neuronal migration and Cx43 levels.
Main Results:
- HCMV infection was shown to downregulate Cx43 post-translationally in cellular models.
- The viral immediate-early protein IE1 was identified as the key factor, binding to Cx43 and promoting its degradation via the ubiquitin-proteasome pathway.
- Ectopic IE1 expression in fetal mouse brains induced cortical atrophy and neuronal migration defects, which were partially rescued by restoring Cx43 levels.
Conclusions:
- HCMV infection impairs neuronal migration through IE1-mediated degradation of the crucial adhesion molecule Cx43.
- This mechanism provides a novel insight into HCMV-induced neural maldevelopment and congenital CMV pathogenesis.
- The IE1-Cx43 interaction represents a potential target for therapeutic interventions against cCMV-related neurological sequelae.
More Related Videos
13:33Time-lapse Confocal Imaging of Migrating Neurons in Organotypic Slice Culture of Embryonic Mouse Brain Using In Utero Electroporation
Published on: July 25, 2017
09:50Ex Utero Electroporation and Organotypic Slice Cultures of Embryonic Mouse Brains for Live-Imaging of Migrating GABAergic Interneurons
Published on: April 20, 2018