TY - CHAP
T1 - Innovations in cell-free synthetic biology via microfluidic approaches
AU - Damiati, Samar
N1 - Publisher Copyright:
Copyright © 2026. Published by Elsevier Inc.
PY - 2026
Y1 - 2026
N2 - Cell-free synthetic biology is a powerful technology that is gaining increasing popularity due to its ability to perform complex biochemical reactions in a well-controlled environment, isolated from the intricacies of living cells. Although it has demonstrated significant success in genetic part characterization and high-throughput protein production without the constraints of cellular membranes, cell-free systems still face several challenges. These include the limited volume available for transcription-translation machinery, the difficulty in standardizing cell lysis procedures, and the variability in cell extract performance across different laboratories. Microfluidic technology has become a powerful tool to address these challenges by supporting the miniaturization and automation of complex, multi-step workflows. Integrating cell-free gene and protein synthesis with microfluidic platforms has redefined bioprocessing, making it more compact and accessible. This synergy has unlocked a wide range of applications across diverse areas of synthetic biology in recent years. This book chapter reviews microfluidic-based methods for synthetic biology in cell-free environments. It highlights the fundamental principles of both cell-free systems and microfluidic technologies, and presents various examples of their integration. The chapter proposes this convergence as a pioneering approach to developing innovative platforms for synthetic biology, with potential applications in biomedical, therapeutic, diagnostic, and environmental contexts.
AB - Cell-free synthetic biology is a powerful technology that is gaining increasing popularity due to its ability to perform complex biochemical reactions in a well-controlled environment, isolated from the intricacies of living cells. Although it has demonstrated significant success in genetic part characterization and high-throughput protein production without the constraints of cellular membranes, cell-free systems still face several challenges. These include the limited volume available for transcription-translation machinery, the difficulty in standardizing cell lysis procedures, and the variability in cell extract performance across different laboratories. Microfluidic technology has become a powerful tool to address these challenges by supporting the miniaturization and automation of complex, multi-step workflows. Integrating cell-free gene and protein synthesis with microfluidic platforms has redefined bioprocessing, making it more compact and accessible. This synergy has unlocked a wide range of applications across diverse areas of synthetic biology in recent years. This book chapter reviews microfluidic-based methods for synthetic biology in cell-free environments. It highlights the fundamental principles of both cell-free systems and microfluidic technologies, and presents various examples of their integration. The chapter proposes this convergence as a pioneering approach to developing innovative platforms for synthetic biology, with potential applications in biomedical, therapeutic, diagnostic, and environmental contexts.
KW - Biomimetics
KW - Biosensors
KW - Cell-free synthetic biology
KW - In vitro protein synthesis
KW - Microfluidics
UR - https://www.scopus.com/pages/publications/105015197080
U2 - 10.1016/bs.pmbts.2025.08.004
DO - 10.1016/bs.pmbts.2025.08.004
M3 - Chapter
AN - SCOPUS:105015197080
T3 - Progress in Molecular Biology and Translational Science
SP - 211
EP - 235
BT - Progress in Molecular Biology and Translational Science
PB - Elsevier B.V.
ER -