Multimodal discovery of a pathogenic B cell-dependent T cell state in multiple sclerosis

B cell depleting therapies in multiple sclerosis (MS) have transformed disease management, yet the immunological mechanisms linking B cells to chronic compartmentalised CNS inflammation, the key pathological driver of disability accrual, remain poorly defined. Here, we leverage anti-CD20 therapy as an in vivo perturbational probe to disentangle MS immunobiology. We combine longitudinal, high-dimensional multimodal immune profiling in patients initiating ocrelizumab with a novel machine learning pipeline to resolve treatment-induced shifts in continuous immune cell states, revealing treatment-associated modulation of shared biological processes that act across the boundaries of discretely partitioned cell types. We identify a distinct chronically activated, proinflammatory-cytotoxic T cell state with CNS-homing properties that is selectively depleted following B cell ablation. Importantly, across independent datasets, the same T cell state is enriched in the circulation of patients with clinically aggressive relapsing disease, in CSF-enriched expanded clonotypes, including a subset with proven Epstein-Barr virus-specificity, and in chronically inflamed lesion rims in end-stage MS. Finally, we demonstrate that blockade of lymphocyte trafficking across the blood-brain barrier with the anti-integrin α4 therapy natalizumab leads to enrichment of this cell state in the circulation, demonstrating a mechanistically concordant effect across distinct high-efficacy MS therapies. Together, our findings support a B cell-dependent, pathogenic T cell state which links peripheral immune activation to CNS-compartmentalised smouldering neuroinflammation across disease stages. Direct therapeutic manipulation of this T cell state may represent a key opportunity for targeting chronic neuroinflammation and facilitate a strategic shift away from broad immune cell ablation.

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Publication Details

Journal
Brain
Published
2026-09-08
DOI
https://doi.org/10.1093/brain/awag303
Primary Topic
Multiple Sclerosis Research Studies
Type
article
Field-Weighted Citation Impact
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article

Multimodal discovery of a pathogenic B cell-dependent T cell state in multiple sclerosis

Kathrine E. Attfield, Subita Balaram Kuttikkatte, Gabriele C. DeLuca, Marco Pisa et al.
Brain
Multiple Sclerosis Research Studies
article

Multimodal discovery of a pathogenic B cell-dependent T cell state in multiple sclerosis

Kathrine E. Attfield, Subita Balaram Kuttikkatte, Gabriele C. DeLuca, Marco Pisa, Redwan Farooq, Brian Cutler, Lars Fugger, Jacqueline Palace, Ralf Gold, Fabian J Theis
article en

Abstract

B cell depleting therapies in multiple sclerosis (MS) have transformed disease management, yet the immunological mechanisms linking B cells to chronic compartmentalised CNS inflammation, the key pathological driver of disability accrual, remain poorly defined. Here, we leverage anti-CD20 therapy as an in vivo perturbational probe to disentangle MS immunobiology. We combine longitudinal, high-dimensional multimodal immune profiling in patients initiating ocrelizumab with a novel machine learning pipeline to resolve treatment-induced shifts in continuous immune cell states, revealing treatment-associated modulation of shared biological processes that act across the boundaries of discretely partitioned cell types. We identify a distinct chronically activated, proinflammatory-cytotoxic T cell state with CNS-homing properties that is selectively depleted following B cell ablation. Importantly, across independent datasets, the same T cell state is enriched in the circulation of patients with clinically aggressive relapsing disease, in CSF-enriched expanded clonotypes, including a subset with proven Epstein-Barr virus-specificity, and in chronically inflamed lesion rims in end-stage MS. Finally, we demonstrate that blockade of lymphocyte trafficking across the blood-brain barrier with the anti-integrin α4 therapy natalizumab leads to enrichment of this cell state in the circulation, demonstrating a mechanistically concordant effect across distinct high-efficacy MS therapies. Together, our findings support a B cell-dependent, pathogenic T cell state which links peripheral immune activation to CNS-compartmentalised smouldering neuroinflammation across disease stages. Direct therapeutic manipulation of this T cell state may represent a key opportunity for targeting chronic neuroinflammation and facilitate a strategic shift away from broad immune cell ablation.

Brain
John Radcliffe Hospital (GB), Helmholtz Zentrum München (DE), MRC Human Immunology Unit (GB), St. Josef-Hospital (DE), Technical University of Munich (DE)
Openalex Percentile: Top 11%
Multiple Sclerosis Research Studies
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