Cargando…

Small Molecule Supplements Improve Cultured Megakaryocyte Polyploidization by Modulating Multiple Cell Cycle Regulators

Platelets (PLTs) are produced by megakaryocytes (MKs) that completed differentiation and endomitosis. Endomitosis is an important process in which the cell replicates its DNA without cytokinesis and develops highly polyploid MK. In this study, to gain a better PLTs production, four small molecules (...

Descripción completa

Detalles Bibliográficos
Autores principales: Zou, Xiaojing, Qu, Mingyi, Fang, Fang, Fan, Zeng, Chen, Lin, Yue, Wen, Xie, Xiaoyan, Pei, Xuetao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5671672/
https://www.ncbi.nlm.nih.gov/pubmed/29201898
http://dx.doi.org/10.1155/2017/2320519
_version_ 1783276284475867136
author Zou, Xiaojing
Qu, Mingyi
Fang, Fang
Fan, Zeng
Chen, Lin
Yue, Wen
Xie, Xiaoyan
Pei, Xuetao
author_facet Zou, Xiaojing
Qu, Mingyi
Fang, Fang
Fan, Zeng
Chen, Lin
Yue, Wen
Xie, Xiaoyan
Pei, Xuetao
author_sort Zou, Xiaojing
collection PubMed
description Platelets (PLTs) are produced by megakaryocytes (MKs) that completed differentiation and endomitosis. Endomitosis is an important process in which the cell replicates its DNA without cytokinesis and develops highly polyploid MK. In this study, to gain a better PLTs production, four small molecules (Rho-Rock inhibitor (RRI), nicotinamide (NIC), Src inhibitor (SI), and Aurora B inhibitor (ABI)) and their combinations were surveyed as MK culture supplements for promoting polyploidization. Three leukemia cell lines as well as primary mononuclear cells were chosen in the function and mechanism studies of the small molecules. In an optimal culture method, cells were treated with different small molecules and their combinations. The impact of the small molecules on megakaryocytic surface marker expression, polyploidy, proliferation, and apoptosis was examined for the best MK polyploidization supplement. The elaborate analysis confirmed that the combination of SI and RRI together with our MK induction system might result in efficient ploidy promotion. Our experiments demonstrated that, besides direct downregulation on the expression of cytoskeleton protein actin, SI and RRI could significantly enhance the level of cyclins through the suppression of p53 and p21. The verified small molecule combination might be further used in the in vitro PLT manufacture and clinical applications.
format Online
Article
Text
id pubmed-5671672
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher Hindawi
record_format MEDLINE/PubMed
spelling pubmed-56716722017-12-03 Small Molecule Supplements Improve Cultured Megakaryocyte Polyploidization by Modulating Multiple Cell Cycle Regulators Zou, Xiaojing Qu, Mingyi Fang, Fang Fan, Zeng Chen, Lin Yue, Wen Xie, Xiaoyan Pei, Xuetao Biomed Res Int Research Article Platelets (PLTs) are produced by megakaryocytes (MKs) that completed differentiation and endomitosis. Endomitosis is an important process in which the cell replicates its DNA without cytokinesis and develops highly polyploid MK. In this study, to gain a better PLTs production, four small molecules (Rho-Rock inhibitor (RRI), nicotinamide (NIC), Src inhibitor (SI), and Aurora B inhibitor (ABI)) and their combinations were surveyed as MK culture supplements for promoting polyploidization. Three leukemia cell lines as well as primary mononuclear cells were chosen in the function and mechanism studies of the small molecules. In an optimal culture method, cells were treated with different small molecules and their combinations. The impact of the small molecules on megakaryocytic surface marker expression, polyploidy, proliferation, and apoptosis was examined for the best MK polyploidization supplement. The elaborate analysis confirmed that the combination of SI and RRI together with our MK induction system might result in efficient ploidy promotion. Our experiments demonstrated that, besides direct downregulation on the expression of cytoskeleton protein actin, SI and RRI could significantly enhance the level of cyclins through the suppression of p53 and p21. The verified small molecule combination might be further used in the in vitro PLT manufacture and clinical applications. Hindawi 2017 2017-10-19 /pmc/articles/PMC5671672/ /pubmed/29201898 http://dx.doi.org/10.1155/2017/2320519 Text en Copyright © 2017 Xiaojing Zou et al. https://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Zou, Xiaojing
Qu, Mingyi
Fang, Fang
Fan, Zeng
Chen, Lin
Yue, Wen
Xie, Xiaoyan
Pei, Xuetao
Small Molecule Supplements Improve Cultured Megakaryocyte Polyploidization by Modulating Multiple Cell Cycle Regulators
title Small Molecule Supplements Improve Cultured Megakaryocyte Polyploidization by Modulating Multiple Cell Cycle Regulators
title_full Small Molecule Supplements Improve Cultured Megakaryocyte Polyploidization by Modulating Multiple Cell Cycle Regulators
title_fullStr Small Molecule Supplements Improve Cultured Megakaryocyte Polyploidization by Modulating Multiple Cell Cycle Regulators
title_full_unstemmed Small Molecule Supplements Improve Cultured Megakaryocyte Polyploidization by Modulating Multiple Cell Cycle Regulators
title_short Small Molecule Supplements Improve Cultured Megakaryocyte Polyploidization by Modulating Multiple Cell Cycle Regulators
title_sort small molecule supplements improve cultured megakaryocyte polyploidization by modulating multiple cell cycle regulators
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5671672/
https://www.ncbi.nlm.nih.gov/pubmed/29201898
http://dx.doi.org/10.1155/2017/2320519
work_keys_str_mv AT zouxiaojing smallmoleculesupplementsimproveculturedmegakaryocytepolyploidizationbymodulatingmultiplecellcycleregulators
AT qumingyi smallmoleculesupplementsimproveculturedmegakaryocytepolyploidizationbymodulatingmultiplecellcycleregulators
AT fangfang smallmoleculesupplementsimproveculturedmegakaryocytepolyploidizationbymodulatingmultiplecellcycleregulators
AT fanzeng smallmoleculesupplementsimproveculturedmegakaryocytepolyploidizationbymodulatingmultiplecellcycleregulators
AT chenlin smallmoleculesupplementsimproveculturedmegakaryocytepolyploidizationbymodulatingmultiplecellcycleregulators
AT yuewen smallmoleculesupplementsimproveculturedmegakaryocytepolyploidizationbymodulatingmultiplecellcycleregulators
AT xiexiaoyan smallmoleculesupplementsimproveculturedmegakaryocytepolyploidizationbymodulatingmultiplecellcycleregulators
AT peixuetao smallmoleculesupplementsimproveculturedmegakaryocytepolyploidizationbymodulatingmultiplecellcycleregulators