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Modulation of tumor microenvironment using a TLR-7/8 agonist-loaded nanoparticle system that exerts low-temperature hyperthermia and immunotherapy for in situ cancer vaccination
期刊文章

Modulation of tumor microenvironment using a TLR-7/8 agonist-loaded nanoparticle system that exerts low-temperature hyperthermia and immunotherapy for in situ cancer vaccination

P.-M. Chen, W.-Y. Pan, C.-Y. Wu, C.-Y. Yeh, C. Korupalli, P.-K. Luo, C.-J. Chou, W.-T. Chia 和 H.-W. Sung
Biomaterials, 卷.230
2020
Web of Science ID: WOS:000508746600046

摘要

Cancer vaccine Combination immunotherapy Hyperthermia Photothermal therapy TLR agonist Animals Dendritic Cells Hyperthermia Hyperthermia, Induced Immunotherapy Mice Nanoparticles Neoplasms Temperature Toll-Like Receptor 7 Tumor Microenvironment Vaccination Antigens Diseases Hyperthermia therapy Immune system Infrared devices Mammals Nanoparticles Temperature Vaccines cancer vaccine immunomodulating agent nanoparticle resiquimod toll like receptor 7 toll like receptor 7 agonist toll like receptor 8 toll like receptor 8 agonist toll like receptor agonist unclassified drug toll like receptor 7 Cancer vaccine Combination immunotherapy Hyperthermia Photothermal therapy TLR agonist animal cell animal experiment animal model animal tissue Article cancer immunization cancer immunotherapy cancer inhibition cancer recurrence cell maturation colorectal carcinoma controlled study dendritic cell drug cytotoxicity drug delivery system drug mechanism immunological memory immunoregulation immunosuppressive treatment in vitro study internalization light absorption low level laser therapy low temperature procedures metastasis inhibition mouse nonhuman priority journal subcutaneous tissue tumor thermotherapy tumor immunity tumor microenvironment animal hyperthermia immunotherapy neoplasm temperature tumor microenvironment vaccination Tumors
Most cancer vaccines under development are associated with defined tumor antigens rather than with all antigens of whole tumor cells, limiting the anti-tumor immune responses that they elicit. This work proposes an immunomodulator (R848)-loaded nanoparticle system (R848@NPs) that can absorb near-infrared light (+NIR) to cause low-temperature hyperthermia that interacts synergistically with its loaded R848 to relieve the tumor-mediated immunosuppressive microenvironment, generating robust anti-tumor memory immunity. In vitro results reveal that the R848@NPs could be effectively internalized by dendritic cells, causing their maturation and the subsequent regulation of their anti-tumor immune responses. Post-treatment observations in mice in which tumors were heat-treated at high temperatures reveal that tumor growth was significantly inhibited initially but not in the longer term, while low-temperature hyperthermia or immunotherapy alone simply delayed tumor growth. In contrast, a combined therapy that involved low-temperature hyperthermia and immunotherapy using R848@NPs/+NIR induced a long-lasting immunologic memory and consequently inhibited tumor growth and prevented cancer recurrence and metastasis. These results suggest that the method that is proposed herein is promising for generating cancer vaccines in situ, by using the tumor itself as the antigen source and the introduced R848@NPs/+NIR to generate a long-term anti-tumor immunity, for personalized immunotherapy. © 2019 Elsevier Ltd

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https://www.scopus.com/inward/record.uri?eid=2-s2.0-85075870650&doi=10.1016%2fj.biomaterials.2019.119629&partnerID=40&md5=54624703bb1263b373d4299b74cb5151檢視

相關連結

InCites亮點

本研究成果之相關指標(擷取自 InCites Benchmarking & Analytics)

合作類型
機構合作
引用書目主題
2 Chemistry
2.67 Nanoparticles
2.67.370 Magnetic Nanoparticles
Web Of Science研究領域
Engineering, Biomedical
Materials Science, Biomaterials
ESI研究領域
Materials Science

聯合國永續發展目標(SDGs)

此研究成果有助於達成以下目標:

#3 Good Health and Well-Being

來源:來自InCites的SDGs

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