The immune receptor SLAMF5 regulates myeloid-cell mediated neuroinflammation in multiple sclerosis
Laura Bellassen1, Keren David1, Bar Lampert1
1Department of Systems Immunology, Weizmann Institute of Science, Rehovot, Israel.
Abstract:
Multiple sclerosis (MS) is a chronic neurological disorder characterized by demyelination of the central nervous system (CNS), leading to a broad spectrum of physical and cognitive impairments. Myeloid cells within the CNS, including microglia and border-associated macrophages, play a central role in the neuroinflammatory processes associated with MS. Activation of these cells contributes to the local inflammatory response and promotes the recruitment of additional immune cells into the CNS. SLAMF5 is a cell surface receptor that functions as a homophilic adhesion molecule, capable of modulating immune cell activity through both activating and inhibitory signals. In this study, we investigated the expression and function of SLAMF5 in CNS-resident and peripheral myeloid cells using the murine model of MS, experimental autoimmune encephalomyelitis (EAE). Our findings demonstrate that both total and brain-specific SLAMF5 deficiency in myeloid cells leads to decreased expression of activation and costimulatory molecules, including MHC class II (MHCII) and CD80. This downregulation is mediated, at least in part, through the transcription factor BHLHE40 and its regulation of CD52, resulting in delayed onset and reduced progression of the disease. Furthermore, pharmacological blockade of SLAMF5 in the brain halted disease progression and reduced the expression of myeloid activation markers. In human studies, SLAMF5 blockade in peripheral monocytes from MS patients and in induced pluripotent stem cell (iPSC)-derived microglia reduced the expression of HLA-DR, CD80, and CD52. Together, these results identify SLAMF5 as a key regulator of myeloid cell activation in neuroinflammation and suggest that it may represent a promising therapeutic target for autoimmune disorders such as MS.
Insights
SLAMF5 blockade reduces myeloid cell activation in multiple sclerosis (MS). This targets neuroinflammation and offers a potential therapeutic strategy for MS and other autoimmune disorders.
Area of Science:
- Neuroimmunology
- Cellular and Molecular Immunology
- Autoimmune Diseases
Background:
- Multiple sclerosis (MS) involves central nervous system (CNS) demyelination and neuroinflammation driven by myeloid cells.
- Microglia and macrophages are key players in MS pathogenesis, regulating inflammatory responses.
- SLAMF5, a cell surface receptor, modulates immune cell activity via adhesion and signaling.
Purpose of the Study:
- To investigate the role of SLAMF5 in myeloid cell activation within the CNS during experimental autoimmune encephalomyelitis (EAE), a murine model of MS.
- To explore SLAMF5 as a potential therapeutic target for MS.
Main Methods:
- Utilized a murine model of MS (EAE) to study SLAMF5 function in myeloid cells.
- Investigated the effects of SLAMF5 deficiency and pharmacological blockade on immune cell activation markers (MHCII, CD80, CD52).
- Analyzed SLAMF5 blockade in human peripheral monocytes and iPSC-derived microglia.
Main Results:
- SLAMF5 deficiency in myeloid cells reduced MHCII and CD80 expression, mediated by BHLHE40 and CD52.
- This deficiency delayed EAE onset and reduced disease progression.
- Pharmacological SLAMF5 blockade halted EAE progression and decreased myeloid activation markers.
- Blockade reduced HLA-DR, CD80, and CD52 expression in human MS monocytes and microglia.
Conclusions:
- SLAMF5 is a critical regulator of myeloid cell activation in neuroinflammation.
- Targeting SLAMF5 presents a promising therapeutic avenue for MS and other autoimmune conditions.
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