TY - JOUR
T1 - Programmable living therapeutics for cancer immunotherapy
AU - Deng, Zhenqiang
AU - Niu, Lingxue
AU - Wang, Zhihao
AU - Jin, Yiyu
AU - Yao, Zhiyuan
AU - Wan, Hang
AU - Guan, Ningzi
AU - Ye, Haifeng
N1 - Publisher Copyright:
© 2026 Elsevier Ltd
PY - 2026/5/21
Y1 - 2026/5/21
N2 - Synthetic biology is reshaping cancer immunotherapy by enabling living therapeutics that sense, compute, and act within tumors. This review categorizes recent advances across three modalities: engineered CAR-T cells, oncolytic bacteria, and oncolytic viruses. For CAR-T cells, small-molecule-, physical-cue-, and tumor-marker-responsive switches enable reversible, dose-dependent, and spatiotemporally confined activation. Engineered bacteria integrate quorum sensing and tumor-microenvironment-responsive logic to control intratumoral colonization, lysis timing, and payload release while limiting systemic exposure. Oncolytic viruses are reprogrammed with tumor-selective promoters, miRNA target modules, and retargeted capsids/ligands to restrict replication, enhance immune stimulation, and improve infection specificity. We further discuss key challenges and future directions toward clinical realization, including circuit complexity, targeting precision, chassis optimization, and cross-platform synergy. Collectively, living therapeutics engineered with synthetic circuits represent a rapidly advancing strategy for precise and safe cancer immunotherapy, with growing potential for clinical translation.
AB - Synthetic biology is reshaping cancer immunotherapy by enabling living therapeutics that sense, compute, and act within tumors. This review categorizes recent advances across three modalities: engineered CAR-T cells, oncolytic bacteria, and oncolytic viruses. For CAR-T cells, small-molecule-, physical-cue-, and tumor-marker-responsive switches enable reversible, dose-dependent, and spatiotemporally confined activation. Engineered bacteria integrate quorum sensing and tumor-microenvironment-responsive logic to control intratumoral colonization, lysis timing, and payload release while limiting systemic exposure. Oncolytic viruses are reprogrammed with tumor-selective promoters, miRNA target modules, and retargeted capsids/ligands to restrict replication, enhance immune stimulation, and improve infection specificity. We further discuss key challenges and future directions toward clinical realization, including circuit complexity, targeting precision, chassis optimization, and cross-platform synergy. Collectively, living therapeutics engineered with synthetic circuits represent a rapidly advancing strategy for precise and safe cancer immunotherapy, with growing potential for clinical translation.
KW - CAR-T
KW - cancer immunotherapy
KW - oncolytic bacterial
KW - oncolytic viruses
KW - synthetic genetic switches
KW - synthetic immunology
UR - https://www.scopus.com/pages/publications/105038675220
U2 - 10.1016/j.chembiol.2026.04.007
DO - 10.1016/j.chembiol.2026.04.007
M3 - 文献综述
C2 - 42119557
AN - SCOPUS:105038675220
SN - 2451-9456
VL - 33
SP - 597
EP - 622
JO - Cell Chemical Biology
JF - Cell Chemical Biology
IS - 5
ER -