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Regioisomeric Engineering of Sterically Hindered Bright Near-Infrared Paraptosis Agents for Chemo-Photodynamic
Xiang Wang1,2, Xiaowan Han2, Xiaoyuan Tian3
1School of Chemistry and Chemical Engineering, Beijing Institute of Technology, Beijing 100081, P.R. China.
Abstract:
Paraptosis emerges as a new promising form of programmed nonapoptotic cell death in chemotherapeutic anticancer therapy. However, current paraptosis agents face critical challenges, including poor targeting specificity, limited imaging capability, and low therapeutic efficacy. To overcome these limitations, we developed a novel approach by functionalizing the tetraphenylethylene (TPE) unit at the meso position of xanthene dyes, enabling the synthesis of two sterically hindered regioisomeric fluorescent paraptosis-inducing agents (m-TSX and p-TSX) for mitochondria-targeted chemo-photodynamic anticancer therapy. These agents exhibited strong near-infrared (NIR) emissions (∼663 nm) with a quantum yield of up to 82.9%. The TPE substitution, in contrast to the phenyl group, allowed for precise modulation of triplet excited state energy levels, boosting type I/II reactive oxygen species (ROS) generation, and notable enhancement of the paraptotic anticancer activity. Comparative studies of the meta- and para-substituted regioisomers revealed that the meta-substituted m-TSX exhibited superior ROS generation and anticancer behavior. m-TSX effectively induced Alix/ATF4-regulated paraptosis, along with apoptosis and necrosis, while also triggering GPX4/SLC7A11-regulated ferroptosis under low-power 655 nm laser (0.1 W/cm2) irradiation, leading to effective cancer cell growth inhibition. Furthermore, in vivo chemo-photodynamic therapy against HeLa tumor by inducing multiple cell death pathways was successfully achieved. This innovative strategy of steric hindrance regulation represents a breakthrough in developing bright NIR xanthene-based anticancer agents for synergistic cancer therapy.
Insights
Researchers developed novel fluorescent agents that induce multiple cell death pathways for enhanced cancer therapy. These agents show improved targeting, imaging, and efficacy in preclinical models.
Area of Science:
- Biochemistry
- Materials Science
- Oncology
Background:
- Paraptosis is a promising programmed cell death pathway for cancer therapy.
- Current paraptosis inducers have limitations in specificity, imaging, and efficacy.
Purpose of the Study:
- To develop novel, targeted fluorescent agents for chemo-photodynamic therapy.
- To overcome limitations of existing paraptosis inducers through steric hindrance regulation.
Main Methods:
- Synthesized two regioisomeric xanthene-based agents (m-TSX and p-TSX) functionalized with tetraphenylethylene (TPE).
- Investigated their photophysical properties, ROS generation, and ability to induce paraptosis, apoptosis, necrosis, and ferroptosis.
- Evaluated in vitro and in vivo chemo-photodynamic therapy efficacy against cancer cells and tumors.
Main Results:
- m-TSX and p-TSX exhibit strong near-infrared (NIR) emission and high quantum yields.
- TPE substitution enhances ROS generation and paraptotic activity compared to phenyl groups.
- m-TSX demonstrates superior ROS generation and anticancer efficacy, inducing multiple cell death pathways (paraptosis, apoptosis, necrosis, ferroptosis).
- Successful in vivo chemo-photodynamic therapy against HeLa tumors was achieved.
Conclusions:
- Steric hindrance regulation using TPE is a breakthrough strategy for developing bright NIR xanthene-based anticancer agents.
- m-TSX is a potent agent for synergistic cancer therapy by inducing multiple cell death mechanisms.
- This approach offers improved targeting, imaging, and therapeutic efficacy for cancer treatment.
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