Department of Chemical and Pharmaceutical Sciences, University of Trieste, Via L. Giorgieri 1, 34127, Trieste, Italy.
Fondazione Istituto di Ricerca Pediatrica Città della Speranza, Corso Stati Uniti 4, 35127, Padova, Italy.
Chembiochem. 2024 Sep 16;25(18):e202400378. doi: 10.1002/cbic.202400378. Epub 2024 Aug 7.
Scientific advancements in bottom-up synthetic biology have led to the development of numerous models of synthetic cells, or protocells. To date, research has mainly focused on increasing the (bio)chemical complexity of these bioinspired micro-compartmentalized systems, yet the successful integration of protocells with living cells remains one of the major challenges in bottom-up synthetic biology. In this review, we aim to summarize the current state of the art in hybrid protocell/living cell and prototissue/living cell systems. Inspired by recent breakthroughs in tissue engineering, we review the chemical, bio-chemical, and mechano-chemical aspects that hold promise for achieving an effective integration of non-living and living matter. The future production of fully integrated protocell/living cell systems and increasingly complex prototissue/living tissue systems not only has the potential to revolutionize the field of tissue engineering, but also paves the way for new technologies in (bio)sensing, personalized therapy, and drug delivery.
自下而上的合成生物学的科学进步已经导致了许多合成细胞或原细胞模型的发展。迄今为止,研究主要集中在提高这些受生物启发的微分隔系统的(生物)化学复杂性上,但将原细胞与活细胞成功整合仍然是自下而上的合成生物学的主要挑战之一。在这篇综述中,我们旨在总结混合原细胞/活细胞和原组织/活细胞系统的最新进展。受组织工程最近突破的启发,我们回顾了有望实现非生命和生命物质有效整合的化学、生物化学和机械化学方面。完全集成的原细胞/活细胞系统和越来越复杂的原组织/活组织系统的未来生产不仅有可能彻底改变组织工程领域,而且为(生物)传感、个性化治疗和药物输送等新技术铺平了道路。