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Author Spotlight: Advancing Hematopoietic Research Using Stromal Cell Isolation for Single Cell Sequencing
Published on: January 26, 2024
Spatial and Single Cell Mapping of Castleman Disease Reveals Key Stromal Cell Types and Cytokine Pathways
David Smith1, Anna Eichinger2,3, Andrew Rech4
1Center for Single Cell Biology, Children's Hospital of Philadelphia Research Institute, Philadelphia, PA.
Insights
Castleman disease (CD) involves abnormal stromal cell activation, leading to B-cell responses, neovascularization, and tissue changes. Understanding these cellular interactions offers new therapeutic targets for this inflammatory lymphoproliferative disorder.
Area of Science:
- Immunology
- Oncology
- Cell Biology
Background:
- Castleman disease (CD) is an inflammatory lymphoproliferative disorder with an unknown cause.
- The cellular and molecular mechanisms driving CD pathogenesis remain incompletely understood.
Purpose of the Study:
- To elucidate the cellular and molecular underpinnings of Castleman disease (CD).
- To identify the specific cell types and molecular pathways involved in CD pathogenesis.
- To explore potential therapeutic targets based on the identified mechanisms.
Main Methods:
- Spatial proteomic analysis of over 4.4 million single cells.
- Transcriptomic analysis of over 50,000 single nuclei.
- Immune repertoire profiling of over 8,000 single nuclei.
- Analysis of pathogenic mutations in various CD subtypes and reactive lymph nodes.
Main Results:
- CD is characterized by an increase in non-lymphoid and stromal cells forming unique microenvironments.
- Activated follicular dendritic cells (FDCs) interact with B cells, promoting B cell activation and differentiation.
- Elevated VEGF, IL-6, MAPK, and extracellular matrix pathways were observed in CD stromal cells.
- Specific stromal cell populations (FDCs, TRCs, PRCs) were identified as key sources of VEGF and IL-6.
- Stromal cells activate JAK-STAT, TGFβ, and MAPK pathways through ligand-receptor interactions.
- Polyclonal B cells exhibit class-switched and somatically hypermutated IgG1+ plasma cells, indicating stromal cell-driven germinal center activation.
Conclusions:
- Stromal cell activation is a central mechanism in Castleman disease (CD).
- Associated B-cell activation, differentiation, neovascularization, and stromal remodeling contribute to CD.
- These findings suggest novel therapeutic targets for Castleman disease.
Abstract:
Castleman disease (CD) is inflammatory lymphoproliferative disorder of unclear etiology. To determine the cellular and molecular basis of CD, we analyzed the spatial proteome of 4,485,009 single cells, transcriptome of 50,117 single nuclei, immune repertoire of 8187 single nuclei, and pathogenic mutations in Unicentric CD, idiopathic Multicentric CD, HHV8-associated MCD, and reactive lymph nodes. CD was characterized by increased non-lymphoid and stromal cells that formed unique microenvironments where they interacted with lymphoid cells. Interaction of activated follicular dendritic cell (FDC) cytoplasmic meshworks with mantle zone B cells was associated with B cell activation and differentiation. VEGF, IL-6, MAPK, and extracellular matrix pathways were elevated in stromal cells of CD. CXCL13+ FDCs, PDGFRA+ T-zone reticular cells (TRC), and ACTA2-positive perivascular reticular cells (PRC) were identified as the predominant source of increased VEGF expression and IL-6 signaling in CD. VEGF expression by FDCs was associated with peri-follicular neovascularization. FDC, TRC and PRC of CD activated JAK-STAT, TGFβ, and MAPK pathways via ligand-receptor interactions involving collagen, integrins, complement components, and VEGF receptors. T, B and plasma cells were polyclonal but showed class-switched and somatically hypermutated IgG1+ plasma cells consistent with stromal cell-driven germinal center activation. In conclusion, our findings show that stromal cell activation and associated B-cell activation and differentiation, neovascularization and stromal remodeling underlie CD and suggest new targets for treatment.
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