TY - JOUR
T1 - The photothermal effect induces M1 macrophage-derived TNF-α-type exosomes to inhibit bladder tumor growth
AU - Jing, Minxuan
AU - Ma, Minghai
AU - Zhang, Mengzhao
AU - Mei, Yibo
AU - Wang, Lu
AU - Jiang, Yunzhong
AU - Li, Jianpeng
AU - Song, Run Dong
AU - Yang, Zezhong
AU - Pu, Yuanchun
AU - Zhang, Yuanquan
AU - Wang, Lei
AU - Fan, Jinhai
N1 - Publisher Copyright:
© 2024 Elsevier B.V.
PY - 2024/10/15
Y1 - 2024/10/15
N2 - Bladder cancer presents a significant challenge for patient treatment and prognostic health due to its high recurrence and metastasis. Nanoparticle-based photothermal therapy offers a potential solution, as it can achieve thermal ablation of tumors through photothermal conversion, modulate cytokine and exosome secretion from macrophages to assist in treatment. Herein, a system that integrates gold-manganese nanomaterials and engineered macrophage-derived exosomes for the synergistic treatment of bladder tumors was developed. We encapsulated MnO2 on the surface of sea-urchin-like Au nanoclusters (AuNCs) to form a nanocomposite with a shell-and-core structure (Au@MnO2), effectively enhancing its stability and photothermal conversion efficiency. In vitro experiments showed that Au@MnO2 induced polarization of macrophages to secrete cytokines (e.g., TNF-α, iNOS, etc.) and TNF-α-rich exosomes of the M1 phenotype when exposed to near-infrared light. This M1 phenotype, combined with the nano-photothermal effect, significantly inhibited the proliferation of bladder tumor cells, and promoted apoptosis and cycle blockade. RNA sequencing revealed significant regulation of inflammation-related genes and pathways, including TNF, NF-κB, and cytokine receptor pathways, both in M1 macrophages and their exosomes. In vivo experiments confirmed that engineered macrophages combined with nano-photothermal effect inhibited subcutaneous tumor growth in mice and reduced the macrophage CD206/CD86 ratio in tissues. This study highlights the promise of engineered macrophages combining cytokines, M1-Exo, and the photothermal effects of Au@MnO2 to achieve synergistic treatment for bladder cancer.
AB - Bladder cancer presents a significant challenge for patient treatment and prognostic health due to its high recurrence and metastasis. Nanoparticle-based photothermal therapy offers a potential solution, as it can achieve thermal ablation of tumors through photothermal conversion, modulate cytokine and exosome secretion from macrophages to assist in treatment. Herein, a system that integrates gold-manganese nanomaterials and engineered macrophage-derived exosomes for the synergistic treatment of bladder tumors was developed. We encapsulated MnO2 on the surface of sea-urchin-like Au nanoclusters (AuNCs) to form a nanocomposite with a shell-and-core structure (Au@MnO2), effectively enhancing its stability and photothermal conversion efficiency. In vitro experiments showed that Au@MnO2 induced polarization of macrophages to secrete cytokines (e.g., TNF-α, iNOS, etc.) and TNF-α-rich exosomes of the M1 phenotype when exposed to near-infrared light. This M1 phenotype, combined with the nano-photothermal effect, significantly inhibited the proliferation of bladder tumor cells, and promoted apoptosis and cycle blockade. RNA sequencing revealed significant regulation of inflammation-related genes and pathways, including TNF, NF-κB, and cytokine receptor pathways, both in M1 macrophages and their exosomes. In vivo experiments confirmed that engineered macrophages combined with nano-photothermal effect inhibited subcutaneous tumor growth in mice and reduced the macrophage CD206/CD86 ratio in tissues. This study highlights the promise of engineered macrophages combining cytokines, M1-Exo, and the photothermal effects of Au@MnO2 to achieve synergistic treatment for bladder cancer.
KW - Bladder cancer
KW - Exosome
KW - M1 macrophage
KW - Nanoparticles
KW - Photothermal therapy
KW - TNF-α
UR - https://www.scopus.com/pages/publications/85202065871
U2 - 10.1016/j.cej.2024.155023
DO - 10.1016/j.cej.2024.155023
M3 - 文章
AN - SCOPUS:85202065871
SN - 1385-8947
VL - 498
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 155023
ER -