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Biology subjects

Küppers, R.

Publications and source records attributed to Küppers, R..

3 recordsLinked to original sources

An Atlas of Cells in the Human Tonsil

Palatine tonsils are secondary lymphoid organs representing the first line of immunological defense against inhaled or ingested pathogens. Here, we present a comprehensive census of cell types forming the human tonsil by applying single-cell transcriptome, epigenome, proteome and adaptive immune repertoire sequencing as well as spatial transcriptomics, resulting in an atlas of >357,000 cells. We provide a glossary of 121 annotated cell types and states, and disentangle gene regulatory mechanisms that drive cells through specialized lineage trajectories. Exemplarily, we stratify multiple tonsil-resident myeloid slancyte subtypes, establish a distant BCL6 superenhancer as locally active in both follicle-associated T and B cells, and describe SIX5 as a potentially novel transcriptional regulator of plasma cell maturation. Further, our atlas is a reference map to understand alterations observed in disease. Here, we discover immune-phenotype plasticity in tumoral cells and microenvironment shifts of mantle cell lymphomas (MCL). To facilitate such reference-based analysis, we develop HCATonsilData and SLOcatoR, a computational framework that provides programmatic and modular access to our dataset; and allows the straightforward annotation of future single-cell profiles from secondary lymphoid organs.

immunology↗

Chronic lymphocytic leukemia includes a tumor subset resembling memory B cells that develop early and persist

Intratumor heterogeneity (ITH) refers to the coexistence of distinct cancer cell subpopulations within a single tumor, each with unique molecular and functional properties. Understanding the dynamics and evolution of ITH is crucial for predicting tumor progression and the development of therapy resistance. Here, we conducted a comprehensive investigation of ITH in Chronic Lymphocytic Leukemia (CLL) and identified a subpopulation that carried the CLL B-cell receptor rearrangement but contrasted from the CLL main population by low CD5 and high CD20 expression and highly mutated Ig-genes. This CLL-related memory B-cell population shared somatic driver mutations with the main CLL population but also exhibited exclusive somatic mutations. Phylogenetic analysis suggested a pathogenically early generation of these CLL-related B cells before monoclonal B lymphocytosis or CLL manifestation. Our data indicated that CLL-related B cells have self-replenishing potential, as they diminish upon treatment but recover indistinguishably on relapse. This contrasts with the main CLL population, which mostly represents a selective and novel expansion of the CLL-related B cells. This differentiation capacity into conventional CLL cells, and the expression of leukemic stem cell signatures further supported their tumorigenic capacity. We propose that these CLL-related B cells represent a pool of highly diversified, early-stage CLL precursor cells, which persist in the shape of "malignant memory B cells". Longitudinal analyses of these CLL precursor cells suggested that they form a reservoir of malignant, leukemia-originating cells which contribute during disease progression to CLL outgrowth and clonal evolution.

immunology↗

Inhibition of PLK1-dependent EBNA2 phosphorylation promotes lymphomagenesis in EBV-infected mice.

While Epstein-Barr virus (EBV) establishes a life-long latent infection in apparently healthy human immunocompetent hosts, immunodeficient individuals are at particular risk to develop lymphoproliferative B cell malignancies caused by EBV. A key EBV protein is the transcription factor EBV nuclear antigen 2 (EBNA2), which initiates B cell proliferation. Here, we combine biochemical, cellular and in vivo experiments demonstrating that the mitotic polo-like kinase 1 (PLK1) binds to EBNA2, phosphorylates its transactivation domain and thereby inhibits its biological activity. EBNA2 mutants that impair PLK1 binding or prevent EBNA2 phosphorylation are gain-of-function mutants. They have enhanced transactivation capacities, accelerate the proliferation of infected B cells and promote the development of monoclonal B cell lymphomas in infected mice. Thus, PLK1 coordinates the activity of EBNA2 to attenuate the risk of tumor incidences in favor of the establishment of latency in the infected but healthy host.

cancer biology↗