Publication

Understanding heterogeneity of human bone marrow plasma cell maturation and survival pathways by single-cell analyses

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Last modified
  • 06/25/2025
Type of Material
Authors
    Meixue Duan, Georgia Institute of Technology, AtlantaDoan C Nguyen, Emory UniversityChester J Joyner, Emory UniversityCelia L Saney, Emory UniversityChristopher M Tipton, Emory UniversityJoel Andrews, Emory UniversitySagar Lonial, Emory UniversityCaroline Kim, Emory UniversityIan Hentenaar, Emory UniversityAstrid Kosters, Emory UniversityEliver Ghosn, Emory UniversityAnnette Jackson, Duke UniversityStuart Knechtle, Emory UniversityStalinraja Maruthamuthu, University of California San FranciscoSindhu Chandran, University of California San FranciscoTom Martin, University of California San FranciscoRaja Rajalingam, University of California San FranciscoFlavio Vincenti, University of California San FranciscoCynthia Breeden, Emory UniversityIgnacio Sanz, Emory UniversityGreg Gibson, Georgia Institute of Technology, AtlantaF. Eun-Hyung Lee, Emory University
Language
  • English
Date
  • 2023-06-24
Publisher
  • CELL PRESS
Publication Version
Copyright Statement
  • © 2023 The Authors
License
Final Published Version (URL)
Title of Journal or Parent Work
Volume
  • 42
Issue
  • 7
Start Page
  • 112682
End Page
  • 112682
Supplemental Material (URL)
Abstract
  • Human bone marrow (BM) plasma cells are heterogeneous, ranging from newly arrived antibody-secreting cells (ASCs) to long-lived plasma cells (LLPCs). We provide single-cell transcriptional resolution of 17,347 BM ASCs from five healthy adults. Fifteen clusters are identified ranging from newly minted ASCs (cluster 1) expressing MKI67 and high major histocompatibility complex (MHC) class II that progress to late clusters 5–8 through intermediate clusters 2–4. Additional ASC clusters include the following: immunoglobulin (Ig) M predominant (likely of extra-follicular origin), interferon responsive, and high mitochondrial activity. Late ASCs are distinguished by G2M checkpoints, mammalian target of rapamycin (mTOR) signaling, distinct metabolic pathways, CD38 expression, utilization of tumor necrosis factor (TNF)-receptor superfamily members, and two distinct maturation pathways involving TNF signaling through nuclear factor κB (NF-κB). This study provides a single-cell atlas and molecular roadmap of LLPC maturation trajectories essential in the BM microniche. Altogether, understanding BM ASC heterogeneity in health and disease enables development of new strategies to enhance protective ASCs and to deplete pathogenic ones.
Author Notes
Keywords
Research Categories
  • Health Sciences, Public Health
  • Health Sciences, Immunology
  • Health Sciences, Oncology
  • Biology, Cell

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