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Massoud Vosough

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Review Open access Aug 2026

Immune reconstitution and tolerance-inducing therapies as promising therapeutic approaches in multiple sclerosis

Multiple sclerosis (MS) is a complex, progressive neurodegenerative autoimmune disease and a major cause of neurological disability worldwide. MS affects approximately 2.8-3 million people, predominantly presenting as relapsing–remitting MS (RRMS) that frequently converts to secondary progressive disease, while effective options for progressive phenotypes remain limited. This review reframes MS immunotherapy through a tolerance-centric paradigm, distinguishing continuous maintenance disease-modifying therapies (DMTs) from immune reconstitution therapies (IRTs) and emerging antigen-specific tolerance strategies. Classical immune reconstitution therapies, including alemtuzumab, cladribine, and autologous hematopoietic stem cell transplantation (aHSCT), have demonstrated durable disease control and prolonged periods of no evidence of disease activity (NEDA) in appropriately selected patients. This is accomplished through a finite course of lymphocyte depletion followed by qualitative immune repopulation that favors tolerogenic regulatory T (Treg) and regulatory B (Breg) cells over pathogenic Th1/Th17 clones. In contrast, maintenance DMTs (interferons, sphingosine-1-phosphate modulators, anti-CD20 monoclonals, natalizumab) suppress inflammation activity during continuous administration but lack durable immune reset. Building on IRT principles, next-generation cell-based therapies (tolerogenic dendritic cells (tolDCs), autologous Tregs, and mesenchymal stromal cells/extracellular vesicles (MSCs/EVs)), aim to induce precision, antigen-specific tolerance while minimizing systemic immunosuppression. These approaches hold promise for overcoming the limitations of chronic immunosuppression, providing durable disease control, and improving long-term patient outcomes. Collectively, immune reconstitution and tolerance-inducing therapies represent an emerging shift from lifelong disease control toward durable immune resetting and the possibility of sustained drug-free remission in MS.

Alireza Beheshti Maal, M. Arki, Seyed Massood Nabavi et al. · 0 citations
Review Open access Aug 2026

Epigenetic Regulation of Liver Fibrosis: Mechanisms and Therapeutic Implications

Liver fibrosis is a common consequence of chronic liver injury and a major contributor to liver‐related mortality. Persistent hepatocellular injury promotes fibrosis initiation and progression through excessive extracellular matrix deposition. Hepatic stellate cells (HSCs), the principal source of extracellular matrix in the fibrotic liver, transition from a quiescent state to an activated myofibroblast‐like phenotype in response to profibrotic stimuli such as transforming growth factor‐beta. This transition is accompanied by transcriptional and epigenetic reprogramming involving DNA methylation, histone modifications, and regulation by non‐coding RNAs. Treating the underlying cause of liver disease, such as promoting weight loss in metabolic dysfunction‐associated steatohepatitis or eradicating viral hepatitis, remains the principal strategy for slowing or potentially reversing fibrosis. Despite substantial advances in understanding the cellular and molecular basis of liver fibrosis and HSC activation, most mechanism‐based therapeutic approaches have not yet demonstrated clinical efficacy. Further translational and clinical studies are therefore required. Recent advances in molecular biology have highlighted the potential relevance of epigenetic modifications to the diagnosis, treatment, and prognosis of chronic liver disease. In this review, we summarize the principal epigenetic changes involved in HSC activation, and initiation/progression of liver fibrosis. We also discuss recent interventions designed to modulate these epigenetic changes and evaluate their therapeutic potential in experimental models of liver fibrosis.

M. J. Tavaf, M. E. Varkiani, Saeid Abroun et al. · 0 citations