Synergistic ROS generation and directional overloading of endogenous calcium induce mitochondrial dysfunction in living cells.

Shao, Fengying; Han, Jianyu; Tian, Zhaoyan; Wang, Zhi; Liu, Songqin; Wu, Yafeng · Biomaterials · 2023

basic_science · Level V

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Abstract

Taking advantage of endogenous Ca<sup>2+</sup> to upregulate intramitochondrial Ca<sup>2+</sup> level has become a powerful mean for mitochondrial dysfunction-mediated tumor therapy. However, the Ca<sup>2+</sup> entered into mitochondria is limited ascribing to the uncontrollability and non-selectivity of endogenous Ca<sup>2+</sup> transport. It remains a great challenge to make the maximum use of endogenous Ca<sup>2+</sup> to ensure sufficient Ca<sup>2+</sup> overloading in mitochondria. Herein, we smartly fabricate an intracellular Ca<sup>2+</sup> directional transport channel to selectively transport endogenous Ca<sup>2+</sup> from endoplasmic reticulum (ER) to mitochondria based on cascade release nanoplatform ABT-199@liposomes/doxorubicin@Fe<sup>III</sup>-tannic acid (ABT@Lip/DOX@Fe-TA). In tumor acidic microenvironment, Fe<sup>3+</sup> ions are firstly released and reduced by tannic acid (TA) to Fe<sup>2+</sup> for ROS generation. Subsequently, under the NIR light irradiation, the released ABT-199 molecules combine with ROS contribute to the formation of IP3R-Grp75-VDAC1 channel between ER and mitochondria, thus Ca<sup>2+</sup> ions are directionally delivered and intramitochondrial Ca<sup>2+</sup> level is significantly upregulated. The synergetic ROS generation and mitochondrial Ca<sup>2+</sup> overloading effectively intensifies mitochondrial dysfunction, thereby achieving efficient tumor inhibition. This work presents a new insight and promising avenue for endogenous Ca<sup>2+</sup>-involved tumor therapies.

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