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Published on: September 19, 2017
Chikungunya virus infection in human microglial C20 cells induces mitochondria-mediated apoptosis
Narendra Kumar1, Rashmi Santhoshkumar2, Manjunatha M Venkataswamy1
1Department of Neurovirology, National Institute of Mental Health and Neurosciences (NIMHANS), Bengaluru, India.
Introduction:
Chikungunya virus (CHIKV) infection is associated with acute clinical manifestations and chronic joint inflammation. CHIKV has emerged as a significant causative agent of central nervous system (CNS) complications, including encephalitis and related sequelae. Microglial cells, crucial for immune responses and tissue repair in the CNS, play a vital role in the host response to viral infections, with their activation potentially leading to either protection or pathology. In this study, the infection biology of CHIKV in the C20 human microglial cell line was investigated.
Methods:
The permissiveness of C20 cells to CHIKV infection was assessed, and viral replication kinetics were compared to Vero E6 cells. Cytopathic effects of CHIKV infection on C20 cells were examined, along with ultrastructural changes using transmission electron microscopy. Additionally, apoptosis induction, mitochondrial membrane potential, and alterations in cell surface marker expression were evaluated by flow cytometry.
Results:
CHIKV infection demonstrated permissiveness in C20 cells, similar to Vero cells, resulting in robust viral replication and cytopathic effects. Ultrastructural analysis revealed viral replication, mature virion formation, and distinctive cytoplasmic and nuclear changes in infected C20 cells. CHIKV infection induced significant apoptosis in C20 cells, accompanied by mitochondrial membrane depolarization and altered expression of cell surface markers such as CD11c, CD14, and HLA-DR. Notably, decreased CD14 expression was observed in CHIKV-infected C20 cells.
Discussion:
The study findings suggest that CHIKV infection induces apoptosis in C20 microglial cells via the mitochondrial pathway, with significant alterations in cell surface marker expression, particularly CD14 that is linked with apoptosis induction. These observations provide valuable insights into the role of human microglial cells in the host response to CHIKV infection and contribute to the knowledge on the neuropathogenesis of this virus.
Insights
Chikungunya virus (CHIKV) infects human microglial cells, causing cell death through the mitochondrial pathway. This infection alters cell surface markers, including CD14, offering insights into CHIKV neuropathogenesis.
Area of Science:
- Neuroscience
- Immunology
- Virology
Background:
- Chikungunya virus (CHIKV) causes acute illness and chronic joint inflammation.
- CHIKV is a significant cause of central nervous system (CNS) complications like encephalitis.
- Microglial cells are key players in CNS immune responses and viral infections, influencing disease outcomes.
Purpose of the Study:
- To investigate the infection biology of CHIKV in a human microglial cell line (C20).
- To understand the role of microglial cells in the host response to CHIKV infection and its neuropathogenesis.
Main Methods:
- Assessed C20 cell permissiveness and viral replication kinetics compared to Vero E6 cells.
- Examined cytopathic effects, ultrastructural changes (transmission electron microscopy), apoptosis, mitochondrial membrane potential, and cell surface marker expression (flow cytometry).
Main Results:
- C20 cells were permissive to CHIKV, showing robust replication and cytopathic effects.
- CHIKV infection induced apoptosis in C20 cells via the mitochondrial pathway, evidenced by membrane depolarization.
- Altered expression of cell surface markers (CD11c, CD14, HLA-DR) was observed, with decreased CD14 expression.
Conclusions:
- CHIKV infection induces apoptosis in human microglial cells through the mitochondrial pathway.
- Alterations in cell surface markers, especially CD14, are linked to apoptosis induction in CHIKV-infected microglia.
- Findings contribute to understanding microglial cell roles in CHIKV infection and neuropathogenesis.
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