4.7 Article

Congenital anemia reveals distinct targeting mechanisms for master transcription factor GATA1

期刊

BLOOD
卷 139, 期 16, 页码 2534-2546

出版社

AMER SOC HEMATOLOGY
DOI: 10.1182/blood.2021013753

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资金

  1. Emmy Noether fellowship by the German Research Foundation [LU 2336/2-1]
  2. Hector Fellow Academy Research Career Development Award
  3. National Cancer Institute, National Institutes of Health (NIH) [F31 CA232670]
  4. Stanford Science Fellowship
  5. Parker Institute of Cancer Immunotherapy Scholarship
  6. Howard Hughes Medical Institute Medical Research Fellows program
  7. National Institute of Diabetes and Digestive and Kidney Diseases, NIH [R01 DK103794]
  8. National Heart, Lung, and Blood Institute (NHLBI), NIH [R33 HL120791, R01 HL146500]
  9. National Cancer Institute [U24 CA210986, U01 CA214125]
  10. Japan Society for the Promotion of Science [KAKENHI JP16K10041]
  11. Howard Hughes Medical Institute
  12. Klarman Cell Observatory
  13. New York Stem Cell Foundation (NYSCF)
  14. Broad Institute of Massachusetts Institute of Technology
  15. Harvard Center for Mendelian Genomics
  16. National Human Genome Research Institute
  17. National Eye Institute
  18. National Heart, Lung, and Blood Institute [UM1 HG008900]
  19. National Human Genome Research Institute [R01 HG009141]

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By studying missense mutations in an intrinsically disordered region of GATA1, this study reveals the important role of this region in transcriptional regulation and demonstrates how these mutations can affect GATA1's transcriptional activity, leading to imbalanced gene expression and abnormal red cell production.
Master regulators, such as the hematopoietic transcription factor (TF) GATA1, play an essential role in orchestrating lineage commitment and differentiation. However, the precise mechanisms by which such TFs regulate transcription through interactions with specific cis-regulatory elements remain incompletely understood. Here, we describe a form of congenital hemolytic anemia caused by missense mutations in an intrinsically disordered region of GATA1, with a poorly understood role in transcriptional regulation. Through integrative functional approaches, we demonstrate that these mutations perturb GATA1 transcriptional activity by partially impairing nuclear localization and selectively altering precise chromatin occupancy by GATA1. These alterations in chromatin occupancy and concordant chromatin accessibility changes alter faithful gene expression, with failure to both effectively silence and activate select genes necessary for effective terminal red cell production. We demonstrate how disease-causing mutations can reveal regulatory mechanisms that enable the faithful genomic targeting of master TFs during cellular differentiation.

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