Literature DB >> 29101237

Human NOTCH4 is a key target of RUNX1 in megakaryocytic differentiation.

Yueying Li1, Chen Jin1,2, Hao Bai3,4, Yongxing Gao3,4, Shu Sun1,2, Lei Chen1,2, Lei Qin1,2, Paul P Liu5, Linzhao Cheng3,4, Qian-Fei Wang1,2.   

Abstract

Megakaryocytes (MKs) in adult marrow produce platelets that play important roles in blood coagulation and hemostasis. Monoallelic mutations of the master transcription factor gene RUNX1 lead to familial platelet disorder (FPD) characterized by defective MK and platelet development. However, the molecular mechanisms of FPD remain unclear. Previously, we generated human induced pluripotent stem cells (iPSCs) from patients with FPD containing a RUNX1 nonsense mutation. Production of MKs from the FPD-iPSCs was reduced, and targeted correction of the RUNX1 mutation restored MK production. In this study, we used isogenic pairs of FPD-iPSCs and the MK differentiation system to identify RUNX1 target genes. Using integrative genomic analysis of hematopoietic progenitor cells generated from FPD-iPSCs, and mutation-corrected isogenic controls, we identified 2 gene sets the transcription of which is either up- or downregulated by RUNX1 in mutation-corrected iPSCs. Notably, NOTCH4 expression was negatively controlled by RUNX1 via a novel regulatory DNA element within the locus, and we examined its involvement in MK generation. Specific inactivation of NOTCH4 by an improved CRISPR-Cas9 system in human iPSCs enhanced megakaryopoiesis. Moreover, small molecules known to inhibit Notch signaling promoted MK generation from both normal human iPSCs and postnatal CD34+ hematopoietic stem and progenitor cells. Our study newly identified NOTCH4 as a RUNX1 target gene and revealed a previously unappreciated role of NOTCH4 signaling in promoting human megakaryopoiesis. Our work suggests that human iPSCs with monogenic mutations have the potential to serve as an invaluable resource for discovery of novel druggable targets.

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Year:  2017        PMID: 29101237      PMCID: PMC5757696          DOI: 10.1182/blood-2017-04-780379

Source DB:  PubMed          Journal:  Blood        ISSN: 0006-4971            Impact factor:   22.113


  57 in total

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Journal:  Nat Genet       Date:  1999-10       Impact factor: 38.330

2.  Cytokine-induced expansion of human CD34+ stem/progenitor and CD34+CD41+ early megakaryocytic marrow cells cultured on normal osteoblasts.

Authors:  N Ahmed; M A Khokher; H T Hassan
Journal:  Stem Cells       Date:  1999       Impact factor: 6.277

3.  An image-based screen identifies a small molecule regulator of megakaryopoiesis.

Authors:  Anthony E Boitano; Lorenzo de Lichtervelde; Jennifer L Snead; Michael P Cooke; Peter G Schultz
Journal:  Proc Natl Acad Sci U S A       Date:  2012-08-13       Impact factor: 11.205

4.  Targeted gene correction of RUNX1 in induced pluripotent stem cells derived from familial platelet disorder with propensity to myeloid malignancy restores normal megakaryopoiesis.

Authors:  Hiromitsu Iizuka; Yuki Kagoya; Keisuke Kataoka; Akihide Yoshimi; Masashi Miyauchi; Kazuki Taoka; Keiki Kumano; Takashi Yamamoto; Akitsu Hotta; Shunya Arai; Mineo Kurokawa
Journal:  Exp Hematol       Date:  2015-06-11       Impact factor: 3.084

Review 5.  Hematopoietic stem cell emergence in the conceptus and the role of Runx1.

Authors:  Gemma Swiers; Marella de Bruijn; Nancy A Speck
Journal:  Int J Dev Biol       Date:  2010       Impact factor: 2.203

Review 6.  Development of thrombopoietin receptor agonists for clinical use.

Authors:  Y Ikeda; Y Miyakawa
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7.  Depletion of RUNX1/ETO in t(8;21) AML cells leads to genome-wide changes in chromatin structure and transcription factor binding.

Authors:  A Ptasinska; S A Assi; D Mannari; S R James; D Williamson; J Dunne; M Hoogenkamp; M Wu; M Care; H McNeill; P Cauchy; M Cullen; R M Tooze; D G Tenen; B D Young; P N Cockerill; D R Westhead; O Heidenreich; C Bonifer
Journal:  Leukemia       Date:  2012-02-20       Impact factor: 11.528

8.  Large-scale production of megakaryocytes from human pluripotent stem cells by chemically defined forward programming.

Authors:  Thomas Moreau; Amanda L Evans; Louella Vasquez; Marloes R Tijssen; Ying Yan; Matthew W Trotter; Daniel Howard; Maria Colzani; Meera Arumugam; Wing Han Wu; Amanda Dalby; Riina Lampela; Guenaelle Bouet; Catherine M Hobbs; Dean C Pask; Holly Payne; Tatyana Ponomaryov; Alexander Brill; Nicole Soranzo; Willem H Ouwehand; Roger A Pedersen; Cedric Ghevaert
Journal:  Nat Commun       Date:  2016-04-07       Impact factor: 14.919

9.  Infusion of megakaryocytic progenitor products generated from cord blood hematopoietic stem/progenitor cells: results of the phase 1 study.

Authors:  Jiafei Xi; Honghu Zhu; Daqing Liu; Xue Nan; Wen Zheng; Kaiyan Liu; Wei Shi; Lin Chen; Yang Lv; Fang Yan; Yanhua Li; Xiaoyan Xie; Yunfang Wang; Wen Yue; Xin Xu; Xiaofei Wei; Jun Zhu; Xiaojun Huang; Xuetao Pei
Journal:  PLoS One       Date:  2013-02-04       Impact factor: 3.240

10.  An expansive human regulatory lexicon encoded in transcription factor footprints.

Authors:  Shane Neph; Jeff Vierstra; Andrew B Stergachis; Alex P Reynolds; Eric Haugen; Benjamin Vernot; Robert E Thurman; Sam John; Richard Sandstrom; Audra K Johnson; Matthew T Maurano; Richard Humbert; Eric Rynes; Hao Wang; Shinny Vong; Kristen Lee; Daniel Bates; Morgan Diegel; Vaughn Roach; Douglas Dunn; Jun Neri; Anthony Schafer; R Scott Hansen; Tanya Kutyavin; Erika Giste; Molly Weaver; Theresa Canfield; Peter Sabo; Miaohua Zhang; Gayathri Balasundaram; Rachel Byron; Michael J MacCoss; Joshua M Akey; M A Bender; Mark Groudine; Rajinder Kaul; John A Stamatoyannopoulos
Journal:  Nature       Date:  2012-09-06       Impact factor: 49.962

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  10 in total

1.  NOTCHing down a win for megakaryocytes.

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Journal:  Blood       Date:  2018-01-11       Impact factor: 22.113

Review 2.  New Insights Into the Differentiation of Megakaryocytes From Hematopoietic Progenitors.

Authors:  Leila J Noetzli; Shauna L French; Kellie R Machlus
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Review 3.  Megakaryocytes as the Regulator of the Hematopoietic Vascular Niche.

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Journal:  Haematologica       Date:  2020-03-12       Impact factor: 9.941

5.  Activation of Steroidogenesis, Anti-Apoptotic Activity, and Proliferation in Porcine Granulosa Cells by RUNX1 Is Negatively Regulated by H3K27me3 Transcriptional Repression.

Authors:  Yuyi Zhong; Liying Li; Yingting He; Bo He; Zhonghui Li; Zhe Zhang; Hao Zhang; Xiaolong Yuan; Jiaqi Li
Journal:  Genes (Basel)       Date:  2020-04-30       Impact factor: 4.096

6.  Vaccination Accelerates Liver-Intrinsic Expression of Megakaryocyte-Related Genes in Response to Blood-Stage Malaria.

Authors:  Frank Wunderlich; Denis Delic; Daniela Gerovska; Marcos J Araúzo-Bravo
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7.  Revealing the intratumoral heterogeneity of non-DS acute megakaryoblastic leukemia in single-cell resolution.

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Journal:  Front Oncol       Date:  2022-08-08       Impact factor: 5.738

8.  RUNX-1 haploinsufficiency causes a marked deficiency of megakaryocyte-biased hematopoietic progenitor cells.

Authors:  Brian Estevez; Sara Borst; Danuta Jarocha; Varun Sudunagunta; Michael Gonzalez; James Garifallou; Hakon Hakonarson; Peng Gao; Kai Tan; Paul Liu; Sumedha Bagga; Nicholas Holdreith; Wei Tong; Nancy Speck; Deborah L French; Paul Gadue; Mortimer Poncz
Journal:  Blood       Date:  2021-05-13       Impact factor: 22.113

Review 9.  Notch signaling pathway: architecture, disease, and therapeutics.

Authors:  Binghan Zhou; Wanling Lin; Yaling Long; Yunkai Yang; Huan Zhang; Kongming Wu; Qian Chu
Journal:  Signal Transduct Target Ther       Date:  2022-03-24

10.  Mapping Human Pluripotent Stem Cell-derived Erythroid Differentiation by Single-cell Transcriptome Analysis.

Authors:  Zijuan Xin; Wei Zhang; Shangjin Gong; Junwei Zhu; Yanming Li; Zhaojun Zhang; Xiangdong Fang
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  10 in total

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