Literature DB >> 33941818

Pleckstrin-2 is essential for erythropoiesis in β-thalassemic mice, reducing apoptosis and enhancing enucleation.

Maria Feola1,2, Andrea Zamperone3, Daniel Moskop1, Huiyong Chen4,5, Carla Casu6, Dechen Lama1, Julie Di Martino1, Mansour Djedaini1, Luena Papa1, Marc Ruiz Martinez1, Tenzin Choesang4, Jose Javier Bravo-Cordero1, Matthew MacKay7, Paul Zumbo7, Nathan Brinkman8, Charles S Abrams9, Stefano Rivella6, Shilpa Hattangadi10, Christopher E Mason7, Ronald Hoffman1, Peng Ji11, Antonia Follenzi2, Yelena Z Ginzburg12.   

Abstract

Erythropoiesis involves complex interrelated molecular signals influencing cell survival, differentiation, and enucleation. Diseases associated with ineffective erythropoiesis, such as β-thalassemias, exhibit erythroid expansion and defective enucleation. Clear mechanistic determinants of what make erythropoiesis effective are lacking. We previously demonstrated that exogenous transferrin ameliorates ineffective erythropoiesis in β-thalassemic mice. In the current work, we utilize transferrin treatment to elucidate a molecular signature of ineffective erythropoiesis in β-thalassemia. We hypothesize that compensatory mechanisms are required in β-thalassemic erythropoiesis to prevent apoptosis and enhance enucleation. We identify pleckstrin-2-a STAT5-dependent lipid binding protein downstream of erythropoietin-as an important regulatory node. We demonstrate that partial loss of pleckstrin-2 leads to worsening ineffective erythropoiesis and pleckstrin-2 knockout leads to embryonic lethality in β-thalassemic mice. In addition, the membrane-associated active form of pleckstrin-2 occurs at an earlier stage during β-thalassemic erythropoiesis. Furthermore, membrane-associated activated pleckstrin-2 decreases cofilin mitochondrial localization in β-thalassemic erythroblasts and pleckstrin-2 knockdown in vitro induces cofilin-mediated apoptosis in β-thalassemic erythroblasts. Lastly, pleckstrin-2 enhances enucleation by interacting with and activating RacGTPases in β-thalassemic erythroblasts. This data elucidates the important compensatory role of pleckstrin-2 in β-thalassemia and provides support for the development of targeted therapeutics in diseases of ineffective erythropoiesis.

Entities:  

Year:  2021        PMID: 33941818     DOI: 10.1038/s42003-021-02046-9

Source DB:  PubMed          Journal:  Commun Biol        ISSN: 2399-3642


  61 in total

1.  Defining an EPOR- regulated transcriptome for primary progenitors, including Tnfr-sf13c as a novel mediator of EPO- dependent erythroblast formation.

Authors:  Seema Singh; Arvind Dev; Rakesh Verma; Anamika Pradeep; Pradeep Sathyanarayana; Jennifer M Green; Aishwarya Narayanan; Don M Wojchowski
Journal:  PLoS One       Date:  2012-07-13       Impact factor: 3.240

2.  Pathophysiology of the thalassemias. The Albion Walter Hewlett Award presentation.

Authors:  S L Schrier
Journal:  West J Med       Date:  1997-08

Review 3.  Formation of mammalian erythrocytes: chromatin condensation and enucleation.

Authors:  Peng Ji; Maki Murata-Hori; Harvey F Lodish
Journal:  Trends Cell Biol       Date:  2011-05-17       Impact factor: 20.808

4.  Histone deacetylase 2 is required for chromatin condensation and subsequent enucleation of cultured mouse fetal erythroblasts.

Authors:  Peng Ji; Victor Yeh; Tzutzuy Ramirez; Maki Murata-Hori; Harvey F Lodish
Journal:  Haematologica       Date:  2010-09-07       Impact factor: 9.941

5.  Chromatin condensation in terminally differentiating mouse erythroblasts does not involve special architectural proteins but depends on histone deacetylation.

Authors:  Evgenya Y Popova; Sharon Wald Krauss; Sarah A Short; Gloria Lee; Jonathan Villalobos; Joan Etzell; Mark J Koury; Paul A Ney; Joel Anne Chasis; Sergei A Grigoryev
Journal:  Chromosome Res       Date:  2009-01-27       Impact factor: 5.239

6.  Quantitative analysis of murine terminal erythroid differentiation in vivo: novel method to study normal and disordered erythropoiesis.

Authors:  Jing Liu; Jianhua Zhang; Yelena Ginzburg; Huihui Li; Fumin Xue; Lucia De Franceschi; Joel Anne Chasis; Narla Mohandas; Xiuli An
Journal:  Blood       Date:  2013-01-03       Impact factor: 22.113

7.  Enucleation of cultured mouse fetal erythroblasts requires Rac GTPases and mDia2.

Authors:  Peng Ji; Senthil Raja Jayapal; Harvey F Lodish
Journal:  Nat Cell Biol       Date:  2008-02-10       Impact factor: 28.824

8.  Erythroblast enucleation.

Authors:  Ganesan Keerthivasan; Amittha Wickrema; John D Crispino
Journal:  Stem Cells Int       Date:  2011-10-05       Impact factor: 5.443

Review 9.  Oxidative stress in β-thalassaemia and sickle cell disease.

Authors:  S Voskou; M Aslan; P Fanis; M Phylactides; M Kleanthous
Journal:  Redox Biol       Date:  2015-08-01       Impact factor: 11.799

10.  XPO1 regulates erythroid differentiation and is a new target for the treatment of β-thalassemia.

Authors:  Flavia Guillem; Michaël Dussiot; Elia Colin; Thunwarat Suriyun; Jean Benoit Arlet; Nicolas Goudin; Guillaume Marcion; Renaud Seigneuric; Sebastien Causse; Patrick Gonin; Marc Gastou; Marc Deloger; Julien Rossignol; Mathilde Lamarque; Zakia Belaid Choucair; Emilie Fleur Gautier; Sarah Ducamp; Julie Vandekerckhove; Ivan C Moura; Thiago Trovati Maciel; Carmen Garrido; Xiuli An; Patrick Mayeux; Narla Mohandas; Geneviève Courtois; Olivier Hermine
Journal:  Haematologica       Date:  2020-09-01       Impact factor: 9.941

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  1 in total

1.  PLEK2 promotes cancer stemness and tumorigenesis of head and neck squamous cell carcinoma via the c-Myc-mediated positive feedback loop.

Authors:  Xinyuan Zhao; Dalong Shu; Wenjuan Sun; Shanshan Si; Wei Ran; Bing Guo; Li Cui
Journal:  Cancer Commun (Lond)       Date:  2022-08-24
  1 in total

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