TY - JOUR
T1 - Mitochondria-Targeting Type-I Photodrug
T2 - Harnessing Caspase-3 Activity for Pyroptotic Oncotherapy
AU - Yi, Zhigao
AU - Qin, Xujuan
AU - Zhang, Li
AU - Chen, Huan
AU - Song, Tianlin
AU - Luo, Zichao
AU - Wang, Tao
AU - Lau, Junwei
AU - Wu, Yelin
AU - Toh, Tan Boon
AU - Lee, Chun Sing
AU - Bu, Wenbo
AU - Liu, Xiaogang
N1 - Publisher Copyright:
© 2024 American Chemical Society.
PY - 2024/4/3
Y1 - 2024/4/3
N2 - Precise control of cellular signaling events during programmed cell death is crucial yet challenging for cancer therapy. The modulation of signal transduction in cancer cells holds promise but is limited by the lack of efficient, biocompatible, and spatiotemporally controllable approaches. Here we report a photodynamic strategy that modulates both apoptotic and pyroptotic cell death by altering caspase-3 protein activity and the associated signaling crosstalk. This strategy employs a mitochondria-targeting, near-infrared activatable probe (termed M-TOP) that functions via a type-I photochemical mechanism. M-TOP is less dependent on oxygen and more effective in treating drug-resistant cancer cells, even under hypoxic conditions. Our study shows that higher doses of M-TOP induce pyroptotic cell death via the caspase-3/gasdermin-E pathway, whereas lower doses lead to apoptosis. This photodynamic method is effective across diverse gasdermin-E-expressing cancer cells. Moreover, the M-TOP mediated shift from apoptotic to pyroptotic modulation can evoke a controlled inflammatory response, leading to a robust yet balanced immune reaction. This effectively inhibits both distal tumor growth and postsurgical tumor recurrence. This work demonstrates the feasibility of modulating intracellular signaling through the rational design of photodynamic anticancer drugs.
AB - Precise control of cellular signaling events during programmed cell death is crucial yet challenging for cancer therapy. The modulation of signal transduction in cancer cells holds promise but is limited by the lack of efficient, biocompatible, and spatiotemporally controllable approaches. Here we report a photodynamic strategy that modulates both apoptotic and pyroptotic cell death by altering caspase-3 protein activity and the associated signaling crosstalk. This strategy employs a mitochondria-targeting, near-infrared activatable probe (termed M-TOP) that functions via a type-I photochemical mechanism. M-TOP is less dependent on oxygen and more effective in treating drug-resistant cancer cells, even under hypoxic conditions. Our study shows that higher doses of M-TOP induce pyroptotic cell death via the caspase-3/gasdermin-E pathway, whereas lower doses lead to apoptosis. This photodynamic method is effective across diverse gasdermin-E-expressing cancer cells. Moreover, the M-TOP mediated shift from apoptotic to pyroptotic modulation can evoke a controlled inflammatory response, leading to a robust yet balanced immune reaction. This effectively inhibits both distal tumor growth and postsurgical tumor recurrence. This work demonstrates the feasibility of modulating intracellular signaling through the rational design of photodynamic anticancer drugs.
UR - https://www.scopus.com/pages/publications/85188242754
U2 - 10.1021/jacs.4c01929
DO - 10.1021/jacs.4c01929
M3 - Article
C2 - 38506128
AN - SCOPUS:85188242754
SN - 0002-7863
VL - 146
SP - 9413
EP - 9421
JO - Journal of the American Chemical Society
JF - Journal of the American Chemical Society
IS - 13
ER -