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Updated: Dec 21, 2025

Determining Immune System Suppression versus CNS Protection for Pharmacological Interventions in Autoimmune Demyelination
Published on: September 12, 2016
CD4 Deficiency Causes Poliomyelitis and Axonal Blebbing in Murine Coronavirus-Induced Neuroinflammation
Debanjana Chakravarty1, Fareeha Saadi1, Soumya Kundu1
1Department of Biological Sciences, Indian Institute of Science Education and Research Kolkata, Mohanpur, India.
Abstract:
Mouse hepatitis virus (MHV) is a murine betacoronavirus (m-CoV) that causes a wide range of diseases in mice and rats, including hepatitis, enteritis, respiratory diseases, and encephalomyelitis in the central nervous system (CNS). MHV infection in mice provides an efficient cause-effect experimental model to understand the mechanisms of direct virus-induced neural-cell damage leading to demyelination and axonal loss, which are pathological features of multiple sclerosis (MS), the most common disabling neurological disease in young adults. Infiltration of T lymphocytes, activation of microglia, and their interplay are the primary pathophysiological events leading to disruption of the myelin sheath in MS. However, there is emerging evidence supporting gray matter involvement and degeneration in MS. The investigation of T cell function in the pathogenesis of deep gray matter damage is necessary. Here, we employed RSA59 (an isogenic recombinant strain of MHV-A59)-induced experimental neuroinflammation model to compare the disease in CD4-/- mice with that in CD4+/+ mice at days 5, 10, 15, and 30 postinfection (p.i.). Viral titer estimation, nucleocapsid gene amplification, and viral antinucleocapsid staining confirmed enhanced replication of the virions in the absence of functional CD4+ T cells in the brain. Histopathological analyses showed elevated susceptibility of CD4-/- mice to axonal degeneration in the CNS, with augmented progression of acute poliomyelitis and dorsal root ganglionic inflammation rarely observed in CD4+/+ mice. Depletion of CD4+ T cells showed unique pathological bulbar vacuolation in the brain parenchyma of infected mice with persistent CD11b+ microglia/macrophages in the inflamed regions on day 30 p.i. In summary, the current study suggests that CD4+ T cells are critical for controlling acute-stage poliomyelitis (gray matter inflammation), chronic axonal degeneration, and inflammatory demyelination due to loss of protective antiviral host immunity.IMPORTANCE The current trend in CNS disease biology is to attempt to understand the neural-cell-immune interaction to investigate the underlying mechanism of neuroinflammation, rather than focusing on peripheral immune activation. Most studies in MS are targeted toward understanding the involvement of CNS white matter. However, the importance of gray matter damage has become critical in understanding the long-term progressive neurological disorder. Our study highlights the importance of CD4+ T cells in safeguarding neurons against axonal blebbing and poliomyelitis from murine betacoronavirus-induced neuroinflammation. Current knowledge of the mechanisms that lead to gray matter damage in MS is limited, because the most widely used animal model, experimental autoimmune encephalomyelitis (EAE), does not present this aspect of the disease. Our results, therefore, add to the existing limited knowledge in the field. We also show that the microglia, though important for the initiation of neuroinflammation, cannot establish a protective host immune response without the help of CD4+ T cells.
Insights
CD4+ T cells are crucial for controlling neuroinflammation and preventing axonal damage in mouse hepatitis virus infections. Their absence leads to increased viral replication and severe gray matter damage, highlighting their protective role in central nervous system diseases.
Area of Science:
- Neuroimmunology
- Virology
- Pathology
Background:
- Mouse hepatitis virus (MHV) infection in mice models central nervous system (CNS) diseases like multiple sclerosis (MS).
- MS pathology involves T cell infiltration, microglial activation, and white matter damage, with emerging evidence of gray matter involvement.
- Understanding CD4+ T cell function in gray matter damage is crucial for MS pathogenesis research.
Purpose of the Study:
- To investigate the role of CD4+ T cells in MHV-induced neuroinflammation and gray matter damage.
- To compare disease progression in CD4-deficient (CD4-/-) and wild-type (CD4+/+) mice post-infection.
Main Methods:
- Utilized an MHV-A59 experimental neuroinflammation model in CD4-/- and CD4+/+ mice.
- Assessed viral replication via viral titer, gene amplification, and immunostaining.
- Conducted histopathological analyses of CNS tissues at multiple time points post-infection.
Main Results:
- Absence of CD4+ T cells led to enhanced MHV replication in the brain.
- CD4-/- mice exhibited increased susceptibility to axonal degeneration, acute poliomyelitis, and dorsal root ganglion inflammation.
- Depletion of CD4+ T cells resulted in brain vacuolation and persistent microglia/macrophage activation.
Conclusions:
- CD4+ T cells are critical for controlling acute poliomyelitis, chronic axonal degeneration, and inflammatory demyelination in MHV-induced neuroinflammation.
- The study underscores the importance of CD4+ T cells in protecting neurons and highlights their role in combating gray matter damage in CNS disorders.
- Microglia require CD4+ T cell assistance to mount a protective antiviral immune response.

