Single-cell analysis of ploidy and the transcriptome reveals functional and spatial divergency in murine megakaryopoiesis

Author:

Sun Shu123,Jin Chen123,Si Jia123,Lei Ying123,Chen Kunying123,Cui Yueli456ORCID,Liu Zhenbo12ORCID,Liu Jiang123,Zhao Meng7,Zhang Xiaohui891011ORCID,Tang Fuchou456,Rondina Matthew T.1213,Li Yueying123,Wang Qian-fei123

Affiliation:

1. Chinese Academy of Sciences (CAS) Key Laboratory of Genomic and Precision Medicine, Collaborative Innovation Center of Genetics and Development, Beijing Institute of Genomics, CAS, Beijing, China;

2. China National Center for Bioinformation, Beijing, China;

3. University of Chinese Academy of Sciences, Beijing, China;

4. Beijing Advanced Innovation Center for Genomics, College of Life Sciences, Peking University, Beijing, China;

5. Biomedical Institute for Pioneering Investigation via Convergence, Ministry of Education Key Laboratory of Cell Proliferation and Differentiation, Beijing, China;

6. Peking–Tsinghua Center for Life Sciences, Peking University, Beijing, China;

7. Key Laboratory of Stem Cells and Tissue Engineering (Sun Yat-Sen University), Ministry of Education, Guangzhou, China;

8. Peking University People’s Hospital, Peking University Institute of Hematology, Beijing, China;

9. National Clinical Research Center for Hematologic Disease, Beijing, China;

10. Beijing Key Laboratory of Hematopoietic Stem Cell Transplantation, Beijing, China;

11. Collaborative Innovation Center of Hematology, Peking University, Beijing, China;

12. Department of Internal Medicine and Pathology, and the Molecular Medicine Program, University of Utah, Salt Lake City, UT; and

13. Geriatric Research Education and Clinical Center, George E. Wahlen Veterans Affairs Medical Center, Salt Lake City, UT

Abstract

Abstract Megakaryocytes (MKs), the platelet progenitor cells, play important roles in hematopoietic stem cell (HSC) maintenance and immunity. However, it is not known whether these diverse programs are executed by a single population or by distinct subsets of cells. Here, we manually isolated primary CD41+ MKs from the bone marrow (BM) of mice and human donors based on ploidy (2N-32N) and performed single-cell RNA sequencing analysis. We found that cellular heterogeneity existed within 3 distinct subpopulations that possess gene signatures related to platelet generation, HSC niche interaction, and inflammatory responses. In situ immunostaining of mouse BM demonstrated that platelet generation and the HSC niche–related MKs were in close physical proximity to blood vessels and HSCs, respectively. Proplatelets, which could give rise to platelets under blood shear forces, were predominantly formed on a platelet generation subset. Remarkably, the inflammatory responses subpopulation, consisting generally of low-ploidy LSP1+ and CD53+ MKs (≤8N), represented ∼5% of total MKs in the BM. These MKs could specifically respond to pathogenic infections in mice. Rapid expansion of this population was accompanied by strong upregulation of a preexisting PU.1- and IRF-8–associated monocytic-like transcriptional program involved in pathogen recognition and clearance as well as antigen presentation. Consistently, isolated primary CD53+ cells were capable of engulfing and digesting bacteria and stimulating T cells in vitro. Together, our findings uncover new molecular, spatial, and functional heterogeneity within MKs in vivo and demonstrate the existence of a specialized MK subpopulation that may act as a new type of immune cell.

Publisher

American Society of Hematology

Subject

Cell Biology,Hematology,Immunology,Biochemistry

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