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Genetic control of mammalian T-cell proliferation with synthetic RNA regulatory systems

机译:利用合成RNA调控系统对哺乳动物T细胞增殖进行遗传控制

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摘要

RNA molecules perform diverse regulatory functions in natural biological systems, and numerous synthetic RNA-based control devices that integrate sensing and gene-regulatory functions have been demonstrated, predominantly in bacteria and yeast. Despite potential advantages of RNA-based genetic control strategies in clinical applications, there has been limited success in extending engineered RNA devices to mammalian gene-expression control and no example of their application to functional response regulation in mammalian systems. Here we describe a synthetic RNA-based regulatory system and its application in advancing cellular therapies by linking rationally designed, drug-responsive, ribozyme-based regulatory devices to growth cytokine targets to control mouse and primary human T-cell proliferation. We further demonstrate the ability of our synthetic controllers to effectively modulate T-cell growth rate in response to drug input in vivo. Our RNA-based regulatory system exhibits unique properties critical for translation to therapeutic applications, including adaptability to diverse ligand inputs and regulatory targets, tunable regulatory stringency, and rapid response to input availability. By providing tight gene-expression control with customizable ligand inputs, RNA-based regulatory systems can greatly improve cellular therapies and advance broad applications in health and medicine.
机译:RNA分子在天然生物系统中执行多种调节功能,并且已经证明了许多整合了传感和基因调节功能的基于RNA的合成控制设备,主要存在于细菌和酵母菌中。尽管基于RNA的遗传控制策略在临床应用中具有潜在优势,但在将工程RNA设备扩展到哺乳动物基因表达控制方面取得的成功有限,并且没有将其应用于哺乳动物系统中功能应答调节的例子。在这里,我们通过将合理设计的,基于药物反应的,基于核酶的调节装置与生长细胞因子靶标联系起来,以控制小鼠和原代人T细胞的增殖,来描述基于合成RNA的调节系统及其在推进细胞疗法中的应用。我们进一步证明了我们的合成控制器有效调节T细胞生长速率以响应体内药物输入的能力。我们基于RNA的调控系统具有独特的特性,对翻译到治疗应用至关重要,包括对各种配体输入和调控目标的适应性,可调的调控严格性以及对输入可用性的快速响应。通过使用可定制的配体输入提供严格的基因表达控制,基于RNA的调控系统可以大大改善细胞疗法,并推动其在健康和医学领域的广泛应用。

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