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Updated: Jul 2, 2026

Modelling Zika Virus Infection of the Developing Human Brain In Vitro Using Stem Cell Derived Cerebral Organoids
Published on: September 19, 2017
Interplay Between Zika Virus-Induced Autophagy and Neural Stem Cell Fate Determination
Bindu1, Hriday Shanker Pandey1, Pankaj Seth2
1Department of Cellular and Molecular Neuroscience, Neurovirology Section, National Brain Research Centre, Manesar, Gurgaon, Haryana, 122052, India.
Abstract:
The Zika virus (ZIKV) outbreaks and its co-relation with microcephaly have become a global health concern. It is primarily transmitted by a mosquito, but can also be transmitted from an infected mother to her fetus causing impairment in brain development, leading to microcephaly. However, the underlying molecular mechanism of ZIKV-induced microcephaly is poorly understood. In this study, we explored the role of ZIKV non-structural protein NS4A and NS4B in ZIKV pathogenesis in a well-characterized primary culture of human fetal neural stem cells (fNSCs). We observed that the co-transfection of NS4A and NS4B altered the neural stem cell fate by arresting proliferation and inducing premature neurogenesis. NS4A + NS4B transfection in fNSCs increased autophagy and dysregulated notch signaling. Further, it also altered the regulation of downstream genes controlling cell proliferation. Additionally, we reported that 3 methyl-adenine (3-MA), a potent autophagy inhibitor, attenuated the deleterious effects of NS4A and NS4B as evidenced by the rescue in Notch1 expression, enhanced proliferation, and reduced premature neurogenesis. Our attempts to understand the mechanism of autophagy induction indicate the involvement of mitochondrial fission and ROS. Collectively, our findings highlight the novel role of NS4A and NS4B in mediating NSC fate alteration through autophagy-mediated notch degradation. The study also helps to advance our understanding of ZIKV-induced neuropathogenesis and suggests autophagy as a potential target for anti-ZIKV therapeutic intervention.
Insights
Zika virus proteins NS4A and NS4B disrupt fetal neural stem cell development by increasing autophagy and altering cell signaling. Inhibiting autophagy with 3-MA reversed these harmful effects, suggesting a therapeutic target for Zika-related brain damage.
Area of Science:
- Neuroscience
- Virology
- Cell Biology
Background:
- Zika virus (ZIKV) outbreaks are a global health concern due to their link with microcephaly.
- ZIKV transmission from mother to fetus can cause severe brain development impairment.
- The molecular mechanisms underlying ZIKV-induced microcephaly remain poorly understood.
Purpose of the Study:
- To investigate the role of ZIKV non-structural proteins NS4A and NS4B in ZIKV pathogenesis.
- To explore the impact of NS4A and NS4B on human fetal neural stem cells (fNSCs).
- To elucidate the molecular pathways involved in ZIKV-induced neuropathogenesis.
Main Methods:
- Primary culture of human fetal neural stem cells (fNSCs).
- Co-transfection of ZIKV NS4A and NS4B proteins into fNSCs.
- Treatment with 3-methyladenine (3-MA), an autophagy inhibitor.
- Analysis of cell proliferation, neurogenesis, autophagy markers, Notch signaling, and reactive oxygen species (ROS).
Main Results:
- Co-transfection of NS4A and NS4B arrested fNSC proliferation and induced premature neurogenesis.
- NS4A+NS4B expression increased autophagy and dysregulated Notch signaling in fNSCs.
- 3-MA treatment attenuated the detrimental effects of NS4A and NS4B, restoring Notch1 expression and proliferation.
- Autophagy induction involved mitochondrial fission and ROS generation.
Conclusions:
- ZIKV NS4A and NS4B proteins alter neural stem cell fate via autophagy-mediated Notch degradation.
- Autophagy plays a critical role in ZIKV-induced neuropathogenesis.
- Targeting autophagy presents a potential therapeutic strategy for ZIKV infections and associated neurological complications.
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