Runx1 and Runx3 drive progenitor to T-lineage transcriptome conversion in mouse T cell commitment via dynamic genomic

Boyoung Shin1, Hiroyuki Hosokawa1,2, Maile Romero-Wolf1

  • 1Division of Biology and Biological Engineering, California Institute of Technology, Pasadena, CA 91125.

Insights

Runt domain-related (Runx) transcription factors Runx1 and Runx3 collaborate redundantly during T cell development. They dynamically regulate gene expression and binding sites, ensuring irreversible lineage commitment.

Area of Science:

  • Immunology
  • Developmental Biology
  • Molecular Genetics

Background:

  • Runt domain-related (Runx) transcription factors are crucial for T cell development.
  • Runx1 has been considered the dominant factor, but its precise role alongside Runx3 is less understood.

Purpose of the Study:

  • To investigate the collaborative and redundant functions of Runx1 and Runx3 in T cell development.
  • To elucidate how Runx factors regulate gene expression dynamically during T cell lineage commitment.

Main Methods:

  • Utilized Cas9 gene editing for single and double Runx knockouts in mice.
  • Analyzed gene expression and transcription factor binding site occupancy during T cell development stages.

Main Results:

  • Runx1 and Runx3 are coexpressed, share overlapping genomic binding sites, and exhibit redundant functions.
  • These factors dynamically activate T-lineage genes and repress progenitor genes during commitment.
  • Runx binding sites and partner factor cobinding patterns shift stage-dependently, contributing to irreversible commitment.

Conclusions:

  • Runx1 and Runx3 act collaboratively and redundantly, with stage-specific functions, to drive T cell development.
  • Dynamic regulation of gene expression and binding site occupancy by Runx factors ensures irreversible lineage commitment.