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Dual-Membrane-Camouflaged Engineered Bacteria for Targeted Melanoma Therapy.

ACS nano 2025 Vol.19(51) p. 42897-42915

Fang Z, Zhong W, Xiong H, Zhou L, Xu X, Ding D, Wan Y, Wan H

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Bacteria have attracted enormous attention in cancer therapy due to their immunoactivating capabilities and ease of genetic engineering.

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BibTeX ↓ RIS ↓
APA Fang Z, Zhong W, et al. (2025). Dual-Membrane-Camouflaged Engineered Bacteria for Targeted Melanoma Therapy.. ACS nano, 19(51), 42897-42915. https://doi.org/10.1021/acsnano.5c16163
MLA Fang Z, et al.. "Dual-Membrane-Camouflaged Engineered Bacteria for Targeted Melanoma Therapy.." ACS nano, vol. 19, no. 51, 2025, pp. 42897-42915.
PMID 41403228

Abstract

Bacteria have attracted enormous attention in cancer therapy due to their immunoactivating capabilities and ease of genetic engineering. However, clinical advancement is hindered by off-target toxicity, rapid clearance, and low therapeutic efficiency, demanding additional functionalization. Herein, by leveraging the universal adhesive capacity of iron-tannic acid (Fe-TA) networks, a dual-membrane-camouflaged bacterial therapeutic (VNP-AIF@Fe-TA@RH) was fabricated through fusing red blood cell membrane (RM) and PD-1-overexpressing HEK293T cell membrane (HM) on the surface of an attenuated strain genetically engineered with apoptosis-inducing factor (AIF)-encoding plasmids. Camouflaged by RM, VNP-AIF@Fe-TA@RH demonstrated prolonged blood circulation and facilitated selective tumor accumulation together with the intrinsic hypoxic tropism of VNP, presenting a remarkable tumor-to-organ accumulation ratio of up to 3.76 × 10-fold. Upon reaching tumor sites, in situ AIF encoding in tumor cells induced enhanced cell apoptosis and subsequently triggered robust antitumor immune responses, which were powered by T cell dysfunction reversing endowed by HM-mediated PD-L1 immune checkpoint blockade. Consequently, the tumor immune microenvironment was effectively remodeled, as evidenced by dendritic cell maturation, effector T cell activation, macrophage phenotypic repolarization, reduced T regulatory cell infiltration, and enhanced production of pro-inflammatory cytokines. Collectively, effective inhibition of bilateral melanoma tumor growth and metastasis was accomplished. This work presented a potent bacteria-based biohybrid therapeutic, inspiring the design of effective alternatives for cancer therapy.

MeSH Terms

Humans; Animals; Mice; HEK293 Cells; Melanoma; Apoptosis; Tannins; Cell Membrane; Cell Line, Tumor; Iron; Salmonella typhimurium; Genetic Engineering

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