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Développement d'une méthode innovante pour la génération sécurisée de cellules souches pluripotentes induites par transfert de protéines

机译:开发一种通过蛋白质转移安全产生多能干细胞的创新方法

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摘要

Like embryonic stem cells, induced pluripotent stem cells (iPS) are characterized by their ability to differentiate into any cell type in an organism. However their use doesn't raise the ethical issue linked to the use of embryos. iPS are generated from somatic cells by overexpression of embryonic transcription factors. iPS are thereby very promising in fundamental and applied biology as well as for regenerative medicine.Most of the protocols used to generate iPS are based on the delivery of nucleic acid sequences encoding embryonic transcription factors responsible for the activation of the pluripotency gene network. In spite of their efficiency, these methods are associated with major safety concerns incompatible with clinical applications. The more rational path to safely produce iPS is to deliver the exogenic transcription factors under their protein form. Recently some protocols using protein delivery have been developed to produce iPS. However associated efficiencies are very low and protocols are quite fastidious.The aim of this Ph.D. project was to develop a new efficient and simplified protein delivery method for the safe generation of iPS compatible with clinical applications. Cell sources were selected depending of the final applications of iPS: (i) fibroblasts, extensively used and described in bibliography and allowing autologous therapies with many applications in the field of hematology; (ii) cord blood hematopoietic stem cells, one of the safest biomaterials, with the aim to generate red blood cells in vitro in order to respond to increasing needs for transfusion products, particularly for rare blood types.First, different protein vectors developed by the TheREx team of the TIMC-IMAG laboratory were compared for their efficiency of production and delivery as well as for the activity of associated factors. The selected vector is a natural micro-syringe expressed by Pseudomonas aeruginosa, able to inject the transcription factors Oct4, Sox2, Nanog and Lin28a (Thomson combination) with c-Myc directly into the cytoplasm of target cells, without the need for any purification step. Once injected, transcription factors are addressed to the nucleus in less than 2 hours where they efficiently activate transcription of pluripotency genes, with significant responses observed as early as 24h after injection. We also highlighted the secured and controllable nature of this vector by completely eliminating the bacteria from the cultures in a few hours after injection with an antibiotic treatment. Optimizations of the reprogramming conditions were also made by adjusting many parameters such as the combination of transcription factors, the injection frequency and the bacteria : cell ratio.
机译:像胚胎干细胞一样,诱导多能干细胞(iPS)的特征在于它们能够分化为生物体中任何细胞类型的能力。但是,它们的使用不会引起与使用胚胎有关的伦理问题。 iPS是通过过度表达胚胎转录因子从体细胞产生的。因此,iPS在基础生物学和应用生物学以及再生医学中非常有前途。用于产生iPS的大多数方案都是基于编码负责多能性基因网络激活的编码胚胎转录因子的核酸序列的传递。尽管它们的效率高,但这些方法仍存在与临床应用不兼容的主要安全问题。安全生产iPS的更合理途径是以蛋白质形式递送外源转录因子。最近,已经开发了一些使用蛋白质递送的方案来产生iPS。然而,相关的效率非常低,并且协议也相当苛刻。该项目旨在开发一种新的高效且简化的蛋白质递送方法,以安全生成与临床应用兼容的iPS。根据iPS的最终应用选择细胞来源:(i)成纤维细胞,在参考书目中得到广泛使用和描述,并允许自体疗法在血液学领域有许多应用; (ii)脐带血造血干细胞,一种最安全的生物材料,目的是在体外产生红细胞,以应对输血产品特别是稀有血液类型不断增长的需求。比较了TIMC-IMAG实验室的REx团队的生产和交付效率以及相关因子的活性。所选载体是由铜绿假单胞菌表达的天然微注射器,能够将转录因子Oct4,Sox2,Nanog和Lin28a(汤姆森组合)与c-Myc直接注射到靶细胞的细胞质中,而无需任何纯化步骤。注射后,转录因子将在不到2小时的时间内到达细胞核,在那里它们可以有效激活多能性基因的转录,早在注射后24小时即可观察到明显的反应。我们还通过在注射抗生素治疗后数小时内从培养物中完全消除了细菌,突出了该载体的安全性和可控性。还通过调节许多参数来优化重编程条件,例如转录因子,注射频率和细菌:细胞比例的组合。

著录项

  • 作者

    Berthoin Lionel;

  • 作者单位
  • 年度 2015
  • 总页数
  • 原文格式 PDF
  • 正文语种 fr
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