Transcriptional characterization of human megakaryocyte polyploidization and lineage commitment

Fizzah A Choudry1,2,3, Frederik O Bagger4,5,6, Iain C Macaulay5

  • 1Department of Hematology, University of Cambridge, Cambridge, UK.

Abstract

Insights

This study reveals distinct transcriptional states in human megakaryocytes (MKs) during maturation and platelet production. It identifies specific hematopoietic stem cell (HSC) subpopulations that give rise to MKs, offering insights into thrombopoiesis.

Area of Science:

  • Hematology
  • Molecular Biology
  • Stem Cell Biology

Background:

  • Megakaryocytes (MKs) are crucial for platelet production, originating from hematopoietic stem cells (HSCs).
  • Previous transcriptional studies of primary human bone marrow MKs were lacking.
  • MK maturation occurs in the bone marrow, preceding platelet release into circulation.

Purpose of the Study:

  • To characterize human bone marrow MKs and HSCs using single-cell RNA sequencing.
  • To investigate MK lineage commitment, maturation, and thrombopoiesis.
  • To identify transcriptional changes in MKs during stress thrombopoiesis.

Main Methods:

  • Single-cell RNA sequencing of primary human bone marrow MKs and HSCs.
  • Analysis of transcriptional states across different MK polyploidization levels.
  • Identification and characterization of HSC subpopulations with MK-biased differentiation potential.

Main Results:

  • Distinct transcriptional states identified in MKs correlating with polyploidization levels.
  • Gene expression shifts towards translation and posttranslational processing during MK maturation.
  • Identification of two HSC subpopulations primed for MK differentiation.
  • A specific gene expression signature found in MKs from individuals with myocardial infarction, suggesting modulation during stress thrombopoiesis.

Conclusions:

  • Single-cell sequencing provides the first comprehensive characterization of the human bone marrow MK transcriptome.
  • Human MKs originate from primed HSC subpopulations, supporting a model of early MK differentiation.
  • Transcriptional changes in MKs are associated with stress thrombopoiesis, as observed in myocardial infarction patients.