RNA-Binding Proteins PCBP1 and PCBP2 Are Critical Determinants of Murine Erythropoiesis

Xinjun Ji1, Anupama Jha2, Jesse Humenik1

  • 1Department of Genetics, Perelman School of Medicine at the University of Pennsylvania, Philadelphia, Pennsylvania, USA.

Insights

The RNA-binding proteins PCBP1 and PCBP2 are crucial for red blood cell development. Their combined absence in mice leads to severe developmental issues and fetal demise, highlighting their essential roles.

Area of Science:

  • Molecular Biology
  • Developmental Biology
  • Hematopoiesis

Background:

  • PCBP1 and PCBP2 are paralogous RNA-binding proteins essential for mouse development.
  • Previous studies showed individual gene inactivation causes developmental lethality at different stages.
  • The specific roles of PCBP1 and PCBP2 in erythropoiesis remained unclear.

Purpose of the Study:

  • To investigate the role of PCBP1 and PCBP2 in erythroid lineage differentiation.
  • To determine if these proteins are essential for blood formation during mouse development.

Main Methods:

  • Selective gene inactivation of PCBP1 and PCBP2 in the erythroid lineage of developing mouse embryos.
  • Analysis of embryo viability, blood formation, and gene expression.
  • Ex vivo studies on primary erythroid progenitors depleted of PCBP1 and PCBP2.

Main Results:

  • Individual inactivation of PCBP1 or PCBP2 did not affect viability or blood formation.
  • Combined inactivation led to mid-gestational repression of erythroid/hematopoietic genes, loss of blood formation, and fetal demise.
  • PCBP1 and PCBP2 impact the hematopoietic transcriptome through overlapping and isoform-specific effects on mRNA and splicing.

Conclusions:

  • PCBP1 and PCBP2 are collectively essential for erythroid lineage differentiation.
  • These RNA-binding proteins play critical, non-redundant roles in blood formation.

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