A novel tetrahedral framework nucleic acid‐derived chemodynamic therapy agent for effective glioblastoma treatment

Author:

Li Xiaodie1,Li Lei2,Fu Xin1,Huang Shiqian3,Wang Yuhao1,Yang Yuepeng1,Zhou Shuqin4,Zou Zhaowei2,Peng Qing5,Zhang Chao1ORCID

Affiliation:

1. Department of Oncology, Zhujiang Hospital Southern Medical University Guangzhou China

2. Department of General Surgery, Zhujiang Hospital Southern Medical University Guangzhou China

3. Clinical Research Center, Zhujiang Hospital Southern Medical University Guangzhou China

4. Department of Anesthesiology of The Second Affiliated Hospital, School of Medicine The Chinese University of Hong Kong, Shenzhen & Longgang District People's Hospital of Shenzhen Shenzhen China

5. Central Laboratory of The Second Affiliated Hospital, School of Medicine The Chinese University of Hong Kong, Shenzhen & Longgang District People's Hospital of Shenzhen Shenzhen China

Abstract

AbstractChemodynamic therapy (CDT) has garnered significant attention for treating diverse malignant tumours due to its minimally invasive nature, reduced damage to healthy tissues, and potential mitigation of side effects. However, its application in glioblastoma (GBM) is hindered by the diminished capacity of CDT agents to traverse the blood–brain barrier (BBB), inadequate tumour targeting efficiency, and restricted availability of H2O2 within the tumour microenvironment (TME). To address these challenges, we devised a novel CDT agent (Fe@tFNAs‐ANG‐3AT) based on a tetrahedral framework nucleic acids (tFNAs). Fe@tFNAs‐ANG‐3AT was constructed by anchoring iron ions (Fe3+) onto the dual appendages‐modified tFNAs. Specifically, one appendage, Angiopep‐2 (ANG, a penetrating peptide), facilitates Fe@tFNAs‐ANG‐3AT penetration across the BBB and selective targeting of tumour cells. Simultaneously, the second appendage, 3‐Amino‐1,2,4‐triazole (3AT, a H2O2 enzyme inhibitor), augments the H2O2 levels required for effective CDT treatment. Upon tumour cell internalization, the loaded Fe3+ in Fe@tFNAs‐ANG‐3AT is reduced to Fe2+ by the overexpressed glutathione (GSH) in the TME, catalysing the generation of cytotoxic hydroxyl radicals (·OH) and inducing tumour cell death via elevated oxidative stress levels within tumour cells. It is anticipated that Fe@tFNAs‐ANG‐3AT holds promise as a transformative treatment strategy for GBM.

Funder

National Natural Science Foundation of China

Basic and Applied Basic Research Foundation of Guangdong Province

Publisher

Wiley

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