Literature DB >> 31300405

Shared roles for Scl and Lyl1 in murine platelet production and function.

Sung K Chiu1,2, Stephanie L Orive1, Mitchell J Moon1, Jesslyn Saw1, Sarah Ellis3, Benjamin T Kile4,5, Yizhou Huang6,7,8, Diego Chacon6,7,8, John E Pimanda6,7,8,9,10, Dominik Beck6,7,8, Justin R Hamilton1, Cedric S Tremblay1, David J Curtis1,2.   

Abstract

The stem cell leukemia (Scl or Tal1) protein forms part of a multimeric transcription factor complex required for normal megakaryopoiesis. However, unlike other members of this complex such as Gata1, Fli1, and Runx1, mutations of Scl have not been observed as a cause of inherited thrombocytopenia. We postulated that functional redundancy with its closely related family member, lymphoblastic leukemia 1 (Lyl1) might explain this observation. To determine whether Lyl1 can substitute for Scl in megakaryopoiesis, we examined the platelet phenotype of mice lacking 1 or both factors in megakaryocytes. Conditional Scl knockout (KO) mice crossed with transgenic mice expressing Cre recombinase under the control of the mouse platelet factor 4 (Pf4) promoter generated megakaryocytes with markedly reduced but not absent Scl These Pf4Sclc-KO mice had mild thrombocytopenia and subtle defects in platelet aggregation. However, Pf4Sclc-KO mice generated on an Lyl1-null background (double knockout [DKO] mice) had severe macrothrombocytopenia, abnormal megakaryocyte morphology, defective pro-platelet formation, and markedly impaired platelet aggregation. DKO megakaryocytes, but not single-knockout megakaryocytes, had reduced expression of Gata1, Fli1, Nfe2, and many other genes that cause inherited thrombocytopenia. These gene expression changes were significantly associated with shared Scl and Lyl1 E-box binding sites that were also enriched for Gata1, Ets, and Runx1 motifs. Thus, Scl and Lyl1 share functional roles in platelet production by regulating expression of partner proteins including Gata1. We propose that this functional redundancy provides one explanation for the absence of Scl and Lyl1 mutations in inherited thrombocytopenia.
© 2019 by The American Society of Hematology.

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Year:  2019        PMID: 31300405     DOI: 10.1182/blood.2019896175

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


  5 in total

1.  Super-enhancer profiling identifies novel critical and targetable cancer survival gene LYL1 in pediatric acute myeloid leukemia.

Authors:  Fang Fang; Jun Lu; Xu Sang; Yan-Fang Tao; Jian-Wei Wang; Zi-Mu Zhang; Yong-Ping Zhang; Xiao-Lu Li; Yi Xie; Shui-Yan Wu; Xin-Ran Chu; Gen Li; Di Wu; Yan-Ling Chen; Juan-Juan Yu; Si-Qi Jia; Chen-Xi Feng; Yuan-Yuan Tian; Zhi-Heng Li; Jing Ling; Shao-Yan Hu; Jian Pan
Journal:  J Exp Clin Cancer Res       Date:  2022-07-16

2.  Ablation of collagen VI leads to the release of platelets with altered function.

Authors:  Vittorio Abbonante; Cristian Gruppi; Monica Battiston; Alessandra Zulian; Christian Andrea Di Buduo; Martina Chrisam; Lucia Sereni; Pierre-Alexandre Laurent; Claudio Semplicini; Elisabetta Lombardi; Mario Mazzucato; Francesco Moccia; Valeria Petronilli; Anna Villa; Luca Bello; Elena Pegoraro; Paolo Bernardi; Paola Braghetta; Luigi De Marco; Paolo Bonaldo; Alessandra Balduini
Journal:  Blood Adv       Date:  2021-12-14

3.  Lyl-1 regulates primitive macrophages and microglia development.

Authors:  Shoutang Wang; Deshan Ren; Brahim Arkoun; Anna-Lila Kaushik; Gabriel Matherat; Yann Lécluse; Dominik Filipp; William Vainchenker; Hana Raslova; Isabelle Plo; Isabelle Godin
Journal:  Commun Biol       Date:  2021-12-09

4.  Lyl1-deficiency promotes inflammatory responses and increases mycobacterial burden in response to Mycobacterium tuberculosis infection in mice.

Authors:  Shelby-Sara Jones; Mumin Ozturk; Nathan Scott Kieswetter; Sibongiseni K L Poswayo; Rudranil Hazra; Ousman Tamgue; Suraj P Parihar; Harukazu Suzuki; Frank Brombacher; Reto Guler
Journal:  Front Immunol       Date:  2022-09-02       Impact factor: 8.786

5.  In Lyl1-/- mice, adipose stem cell vascular niche impairment leads to premature development of fat tissues.

Authors:  Abid Hussain; Virginie Deleuze; Leila El Kebriti; Hulya Turali; Nelly Pirot; Yaël Glasson; Danièle Mathieu; Valérie Pinet
Journal:  Stem Cells       Date:  2020-10-13       Impact factor: 6.277

  5 in total

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