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Directed Differentiation of Embryonic Stem Cells Into Cardiomyocytes by Bacterial Injection of Defined Transcription Factors

机译:通过细菌注射确定的转录因子将胚胎干细胞定向分化为心肌细胞

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摘要

Forced expression of defined transcriptional factors has been well documented as an effective method for cellular reprogramming or directed differentiation. However, transgene expression is not amenable for therapeutic application due to potential insertional mutagenesis. Here, we have developed a bacterial type III secretion system (T3SS)-based protein delivery tool and shown its application in directing pluripotent stem cell differentiation by a controlled delivery of transcription factors relevant to early heart development. By fusing to an N-terminal secretion sequence for T3SS-dependent injection, three transcriptional factors, namely Gata4, Mef2c, and Tbx5 (abbreviated as GMT), were translocated into murine embryonic stem cells (ESCs), where the proteins are effectively targeted to the nucleus with an average intracellular half-life of 5.5 hours. Exogenous GMT protein injection activated the cardiac program, and multiple rounds of GMT protein delivery significantly improved the efficiency of ESC differentiation into cardiomyocytes. Combination of T3SS-mediated GMT delivery and Activin A treatment showed an additive effect, resulting in on average 60% of the ESCs differentiated into cardiomyocytes. ESC derived cardiomyocytes displayed spontaneous rhythmic contractile movement as well as normal hormonal responses. This work serves as a foundation for the bacterial delivery of multiple transcription factors to direct cell fate without jeopardizing genomic integrity.
机译:明确表达转录因子的强制表达已被证明是一种有效的细胞重编程或定向分化方法。然而,由于潜在的插入诱变,转基因表达不适用于治疗应用。在这里,我们已经开发了一种基于细菌III型分泌系统(T3SS)的蛋白质递送工具,并显示了其在通过控制递送与早期心脏发育有关的转录因子来指导多能干细胞分化中的应用。通过融合至N端分泌序列以进行T3SS依赖性注射,将三种转录因子Gata4,Mef2c和Tbx5(缩写为GMT)转​​移到鼠胚胎干细胞(ESCs)中,在该处蛋白被有效地靶向细胞核平均细胞内半衰期为5.5小时。外源性GMT蛋白注射激活了心脏程序,多轮GMT蛋白传递显着提高了ESC分化为心肌细胞的效率。 T3SS介导的GMT传递和激活素A处理的组合显示出累加效应,导致平均60%的ESC分化为心肌细胞。 ESC衍生的心肌细胞显示出自发的节律性收缩运动以及正常的激素反应。这项工作为细菌传递多种转录因子以指导细胞命运而不损害基因组完整性奠定了基础。

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