Literature DB >> 25682608

Immune thrombocytopenia: antiplatelet autoantibodies inhibit proplatelet formation by megakaryocytes and impair platelet production in vitro.

Muna Iraqi1, Jose Perdomo2, Feng Yan3, Philip Y-I Choi1, Beng H Chong3.   

Abstract

Primary immune thrombocytopenia is an autoimmune disease mediated by antiplatelet autoantibodies that cause platelet destruction and suppression of platelet production. In vitro effects of autoantibodies on megakaryocyte production and maturation have been reported recently. However, the impact of these autoantibodies on crucial megakaryocyte functions, proplatelet formation and subsequent platelet release, has not been evaluated. We examined the effects of serum and IgG from 19 patients with immune thrombocytopenia using day 8 or 9 megakaryocytes (66.3 ± 10.6% CD41(+)), derived from cord blood hematopoietic stem cells (CD34(+)). The number of proplatelet-bearing megakaryocytes, the number of platelets released in the culture, total megakaryocyte numbers, ploidy pattern and caspase activation were measured at various times after treatment. After 5 days of treatment the number of proplatelet-bearing megakaryocytes was significantly decreased by 13 immune thrombocytopenia autoantibodies relative to the control group (P<0.0001) and this decrease was accompanied by a corresponding reduction of platelet release. Other features, including total megakaryocyte numbers, maturation and apoptosis, were not affected by immune thrombocytopenia antibodies. Treating the megakaryocytes with the thrombopoietin receptor agonists romiplostim and eltrombopag reversed the effect of the autoantibodies on megakaryocytes by restoring their capacity to form proplatelets. We conclude that antiplatelet antibodies in immune thrombocytopenia inhibit proplatelet formation by megakaryocytes and hence the ability of the megakaryocytes to release platelets. Treatment with either romiplostim or eltrombopag regenerates proplatelet formation from the megakaryocytes. Copyright© Ferrata Storti Foundation.

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Year:  2015        PMID: 25682608      PMCID: PMC4420211          DOI: 10.3324/haematol.2014.115634

Source DB:  PubMed          Journal:  Haematologica        ISSN: 0390-6078            Impact factor:   9.941


  47 in total

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Journal:  Blood       Date:  1990-03-15       Impact factor: 22.113

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Journal:  Br J Haematol       Date:  1992-05       Impact factor: 6.998

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Journal:  Thromb Res       Date:  1990-10-15       Impact factor: 3.944

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Journal:  Blood       Date:  1986-02       Impact factor: 22.113

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Journal:  Blood       Date:  1992-02-01       Impact factor: 22.113

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Journal:  Br J Haematol       Date:  1993-12       Impact factor: 6.998

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Journal:  JAMA       Date:  1978-06-09       Impact factor: 56.272

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Journal:  Blood       Date:  1995-04-01       Impact factor: 22.113

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Journal:  Blood       Date:  1982-03       Impact factor: 22.113

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  29 in total

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Authors:  Preeti Bhoria; Neelam Varma; Pankaj Malhotra; Subhash Varma; Manni Luthra-Guptasarma
Journal:  MAbs       Date:  2015-08-24       Impact factor: 5.857

2.  Comparative study of IgG binding to megakaryocytes in immune and myelodysplastic thrombocytopenic patients.

Authors:  Doaa I Elzaeem; Esmat A El Sharkawi; Eman M Zaki; Ayman G Ghobrial; Aliaa S Abd El-Fatah; Waleed M Abd El-Hamed
Journal:  Ann Hematol       Date:  2021-05-13       Impact factor: 3.673

3.  Megakaryocyte Differentiation and Platelet Formation from Human Cord Blood-derived CD34+ Cells.

Authors:  Jose Perdomo; Feng Yan; Halina H L Leung; Beng H Chong
Journal:  J Vis Exp       Date:  2017-12-27       Impact factor: 1.355

4.  Phase 2 multiple-dose study of an FcRn inhibitor, rozanolixizumab, in patients with primary immune thrombocytopenia.

Authors:  Tadeusz Robak; Maciej Kaźmierczak; Isidro Jarque; Vasile Musteata; Jacek Treliński; Nichola Cooper; Peter Kiessling; Ute Massow; Franz Woltering; Rose Snipes; Juan Ke; Grant Langdon; James B Bussel; Stephen Jolles
Journal:  Blood Adv       Date:  2020-09-08

5.  A modern reassessment of glycoprotein-specific direct platelet autoantibody testing in immune thrombocytopenia.

Authors:  Hanny Al-Samkari; Rachel P Rosovsky; Rebecca S Karp Leaf; David B Smith; Katayoon Goodarzi; Annemarie E Fogerty; David B Sykes; David J Kuter
Journal:  Blood Adv       Date:  2020-01-14

6.  Serum Copper and Zinc Levels in Primary Immune Thrombocytopenia.

Authors:  Gülden Sincan; Fuat Erdem; İlker Bay; Suat Sincan
Journal:  Biol Trace Elem Res       Date:  2022-05-30       Impact factor: 4.081

7.  Clinical Epidemiology, Treatment Outcome and Mortality Rate of Newly Diagnosed Immune Thrombocytopenia in Adult Multicentre Study in Malaysia.

Authors:  Roszymah Hamzah; Nurasyikin Yusof; Nor Rafeah Tumian; Suria Abdul Aziz; Nur Syahida Mohammad Basri; Tze Shin Leong; Kim Wah Ho; Veena Selvaratnam; Sen Mui Tan; Siti Afiqah Muhamad Jamil
Journal:  J Blood Med       Date:  2022-06-21

8.  The European Hematology Association Roadmap for European Hematology Research: a consensus document.

Authors:  Andreas Engert; Carlo Balduini; Anneke Brand; Bertrand Coiffier; Catherine Cordonnier; Hartmut Döhner; Thom Duyvené de Wit; Sabine Eichinger; Willem Fibbe; Tony Green; Fleur de Haas; Achille Iolascon; Thierry Jaffredo; Francesco Rodeghiero; Gilles Salles; Jan Jacob Schuringa
Journal:  Haematologica       Date:  2016-01-27       Impact factor: 9.941

9.  Significant reductions in apoptosis-related proteins (HSPA6, HSPA8, ITGB3, YWHAH, and PRDX6) are involved in immune thrombocytopenia.

Authors:  Shu-Yan Liu; Dai Yuan; Rui-Jie Sun; Jing-Jing Zhu; Ning-Ning Shan
Journal:  J Thromb Thrombolysis       Date:  2020-10-12       Impact factor: 2.300

Review 10.  A Review of Romiplostim Mechanism of Action and Clinical Applicability.

Authors:  James B Bussel; Gerald Soff; Adriana Balduzzi; Nichola Cooper; Tatiana Lawrence; John W Semple
Journal:  Drug Des Devel Ther       Date:  2021-05-26       Impact factor: 4.162

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