Bioengineered Bacterial Membrane Vesicles With Multifunctional Nanoparticles as a Versatile Platform for Cancer Immunotherapy

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Date

2023

Journal Title

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Volume Title

Publisher

American Chemical Society

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Green Open Access

No

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Top 1%
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Top 10%
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Top 1%

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Abstract

Inducing immunogenic cell death (ICD) is a critical strategy for enhancing cancer immunotherapy. However, inefficient and risky ICD inducers along with a tumor hypoxia microenvironment seriously limit the immunotherapy efficacy. Non-specific delivery is also responsible for this inefficiency. In this work, we report a drug-free bacteria-derived outer membrane vesicle (OMV)-functionalized Fe3O4-MnO2 (FMO) nanoplatform that realized neutrophil-mediated targeted delivery and photothermally enhanced cancer immunotherapy. In this system, modification of OMVs derived from Escherichia coli enhanced the accumulation of FMO NPs at the tumor tissue through neutrophil-mediated targeted delivery. The FMO NPs underwent reactive decomposition in the tumor site, generating manganese and iron ions that induced ICD and O2 that regulated the tumor hypoxia environment. Moreover, OMVs are rich in pathogen-associated pattern molecules that can overcome the tumor immunosuppressive microenvironment and effectively activate immune cells, thereby enhancing specific immune responses. Photothermal therapy (PTT) caused by MnO2 and Fe3O4 can not only indirectly stimulate systemic immunity by directly destroying tumor cells but also promote the enrichment of neutrophil-equipped nanoparticles by enhancing the inflammatory response at the tumor site. Finally, the proposed multi-modal treatment system with targeted delivery capability realized effective tumor immunotherapy to prevent tumor growth and recurrence. © 2023 American Chemical Society.

Description

Keywords

bacterial outer membrane vesicles, cancer immunotherapy, Fe<sub>3</sub>O<sub>4</sub>-MnO<sub>2</sub> nanoparticles, photothermal, targeted delivery of neutrophils, Bioengineering, Multifunctional Nanoparticles, Bacterial Outer Membrane, Cell Line, Tumor, Neoplasms, Tumor Microenvironment, Escherichia coli, Humans, Immunotherapy, Transport Vesicles

Fields of Science

0301 basic medicine, 02 engineering and technology, 03 medical and health sciences, 0210 nano-technology

Citation

WoS Q

Q1

Scopus Q

Q1
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OpenCitations Citation Count
54

Source

ACS Applied Materials and Interfaces

Volume

15

Issue

3

Start Page

3744

End Page

3759

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Scopus : 66

PubMed : 24

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Mendeley Readers : 21

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71

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9

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3

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