Re Angela
Centre for Sustainable Future Technologies, Istituto Italiano di TecnologiaTorino, Italy.
Front Cell Dev Biol. 2017 Aug 28;5:77. doi: 10.3389/fcell.2017.00077. eCollection 2017.
Precision medicine in oncology needs to enhance its capabilities to match diagnostic and therapeutic technologies to individual patients. Synthetic biology streamlines the design and construction of functionalized devices through standardization and rational engineering of basic biological elements decoupled from their natural context. Remarkable improvements have opened the prospects for the availability of synthetic devices of enhanced mechanism clarity, robustness, sensitivity, as well as scalability and portability, which might bring new capabilities in precision cancer medicine implementations. In this review, we begin by presenting a brief overview of some of the major advances in the engineering of synthetic genetic circuits aimed to the control of gene expression and operating at the transcriptional, post-transcriptional/translational, and post-translational levels. We then focus on engineering synthetic circuits as an enabling methodology for the successful establishment of precision technologies in oncology. We describe significant advancements in our capabilities to tailor synthetic genetic circuits to specific applications in tumor diagnosis, tumor cell- and gene-based therapy, and drug delivery.
肿瘤学中的精准医学需要提升其能力,以便将诊断和治疗技术与个体患者相匹配。合成生物学通过对脱离自然环境的基本生物元件进行标准化和合理工程设计,简化了功能化装置的设计与构建。显著的改进为机制清晰度、稳健性、灵敏度以及可扩展性和便携性得到增强的合成装置的可用性开辟了前景,这可能会为精准癌症医学的实施带来新能力。在本综述中,我们首先简要概述合成基因回路工程的一些主要进展,这些回路旨在控制基因表达,并在转录、转录后/翻译以及翻译后水平上发挥作用。然后,我们将重点关注工程化合成回路,将其作为在肿瘤学中成功建立精准技术的一种赋能方法。我们描述了在使合成基因回路适应肿瘤诊断、基于肿瘤细胞和基因的治疗以及药物递送等特定应用方面所取得的重大进展。