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A platinum@polymer-catechol nanobraker enables radio-immunotherapy for crippling melanoma tumorigenesis, angiogenesis, and radioresistance
Li, Wenxi1,2; Yan, Jie1,2; Tian, Hao1,2; Li, Bei1,2; Wang, Guohao1,2; Sang, Wei1,2; Zhang, Zhan1,2; Zhang, Xuanjun1,2; Dai, Yunlu1,2
2023-04
Source PublicationBioactive Materials
ISSN2452-199X
Volume22Pages:34-46
Abstract

Malignant melanoma cell-intrinsic PD-1:PD-L1 interaction thrusts tumorigenesis, angiogenesis, and radioresistance via mTOR hyperactivation to aggravate circumjacent aggression. Interdicting melanoma intrinsic growth signals, including the blockade of PD-L1 and mTOR signaling concurrently, cooperative with radiotherapy may provide a vigorous repertoire to alleviate the tumor encumbrance. Thence, we design a three-pronged platinum@polymer-catechol nanobraker to deliver mTOR inhibitor TAK228 and anti-PD-L1 antibody (aPD-L1) for impeding the melanoma-PD-1-driven aggression and maximizing the melanoma eradication. The aPD-L1 collaborated with TAK228 restrains melanoma cell-intrinsic PD-1: PD-L1 tumorigenic interaction via blocking melanoma-PD-L1 ligand and the melanoma-PD-1 receptor-driven mTOR signaling; corresponding downregulation of mTOR downstream protumorigenic cellular MYC and proangiogenic hypoxia-inducible factor 1-alpha is conducive to preventing tumorigenesis and angiogenesis, respectively. Further, high-Z metal platinum sensitizing TAK228-enhanced radiotherapy confers the nanobraker on remarkable tumoricidal efficacy. Hereto, the customized three-pronged nanobrakers efficiently suppress melanoma tumorigenesis and angiogenesis concomitant with the amplification of radiotherapeutic efficacy. Such an ingenious tactic may provide substantial benefits to clinical melanoma patients.

KeywordAnti-angiogenesis Anti-tumorigenesis Melanoma Pd-1:Pd-l1 Interaction Blockade Platinum@polymer-catechol Nanobrakers Radio-sensitization Effect
DOI10.1016/j.bioactmat.2022.09.006
URLView the original
Indexed BySCIE
Language英語English
WOS Research AreaEngineering ; Materials Science
WOS SubjectEngineering, Biomedical ; Materials Science, bioMaterials
WOS IDWOS:000888505200001
PublisherKEAI PUBLISHING LTD,16 DONGHUANGCHENGGEN NORTH ST, BEIJING, DONGCHENG DISTRICT 100717, PEOPLES R CHINA
Scopus ID2-s2.0-85138583655
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Document TypeJournal article
CollectionFaculty of Health Sciences
Cancer Centre
Institute of Translational Medicine
Ministry of Education Frontiers Science Center for Precision Oncology, University of Macau
Corresponding AuthorDai, Yunlu
Affiliation1.Cancer Centre and Institute of Translational Medicine, Faculty of Health Sciences, University of Macau, Macau SAR, 999078, China
2.MOE Frontiers Science Center for Precision Oncology, University of Macau, Macau SAR, 999078, China
First Author AffilicationCancer Centre;  University of Macau
Corresponding Author AffilicationCancer Centre;  University of Macau
Recommended Citation
GB/T 7714
Li, Wenxi,Yan, Jie,Tian, Hao,et al. A platinum@polymer-catechol nanobraker enables radio-immunotherapy for crippling melanoma tumorigenesis, angiogenesis, and radioresistance[J]. Bioactive Materials, 2023, 22, 34-46.
APA Li, Wenxi., Yan, Jie., Tian, Hao., Li, Bei., Wang, Guohao., Sang, Wei., Zhang, Zhan., Zhang, Xuanjun., & Dai, Yunlu (2023). A platinum@polymer-catechol nanobraker enables radio-immunotherapy for crippling melanoma tumorigenesis, angiogenesis, and radioresistance. Bioactive Materials, 22, 34-46.
MLA Li, Wenxi,et al."A platinum@polymer-catechol nanobraker enables radio-immunotherapy for crippling melanoma tumorigenesis, angiogenesis, and radioresistance".Bioactive Materials 22(2023):34-46.
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