Vinblastine resets tumor-associated macrophages toward M1 phenotype and promotes antitumor immune response

被引:57
作者
Wang, Yi-Na [1 ]
Wang, Yuan-Yuan [1 ]
Wang, Jin [1 ]
Bai, Wen-Juan [1 ]
Miao, Nai-Jun [1 ,2 ]
Wang, Jing [1 ,2 ]
机构
[1] Shanghai Jiao Tong Univ, Sch Med, Shanghai Inst Immunol, Dept Immunol & Microbiol, Shanghai, Peoples R China
[2] Shanghai Jiao Tong Univ, Sch Med, Ruijin Hosp, Ctr Immune Related Dis,Shanghai Inst Immunol, Shanghai, Peoples R China
关键词
macrophages; CD8-positive T-lymphocytes; combined modality therapy; drug therapy; combination; immunohistochemistry; ROS; POLARIZATION; ACTIVATION;
D O I
10.1136/jitc-2023-007253
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
BackgroundMassive tumor-associated macrophage (TAM) infiltration is observed in many tumors, which usually display the immune-suppressive M2-like phenotype but can also be converted to an M1-like antitumor phenotype due to their high degree of plasticity. The macrophage polarization state is associated with changes in cell shape, macrophage morphology is associated with activation status. M1 macrophages appeared large and rounded, while M2 macrophages were stretched and elongated cells. Manipulating cell morphology has been shown to affect the polarization state of macrophages. The shape of the cell is largely dependent on cytoskeletal proteins, especially, microtubules. As a microtubule-targetting drug, vinblastine (VBL) has been used in chemotherapy. However, no study to date has explored the effect of VBL on TAM shape changes and its role in tumor immune response.MethodWe used fluorescent staining of the cytoskeleton and quantitative analysis to reveal the morphological differences between M0, M1, M2, TAM and VBL-treated TAM. Flow cytometry was used to confirm the polarization states of these macrophages using a cell surface marker-based classification. In vivo antibody depletion experiments in tumor mouse models were performed to test whether macrophages and CD8+ T cell populations were required for the antitumor effect of VBL. VBL and anti-PD-1 combination therapy was then investigated in comparison with monotherapy. RNA-seq of TAM of treated and untreated with VBL was performed to explore the changes in pathway activities. siRNA mediated knockdown experiments were performed to verify the target pathway that was affected by VBL treatment.ResultsHere, we showed that VBL, an antineoplastic agent that destabilizes microtubule, drove macrophage polarization into the M1-like phenotype both in vitro and in tumor models. The antitumor effect of VBL was attenuated in the absence of macrophages or CD8+ T cells. Mechanistically, VBL induces the activation of NF-& kappa;B and Cyba-dependent reactive oxygen species generation, thus polarizing TAMs to the M1 phenotype. In parallel, VBL promotes the nuclear translocation of transcription factor EB, inducing lysosome biogenesis and a dramatic increase in phagocytic activity in macrophages.ConclusionsThis study explored whether manipulating cellular morphology affects macrophage polarization and consequently induces an antitumor response. Our data reveal a previously unrecognized antitumor mechanism of VBL and suggest a drug repurposing strategy combining VBL with immune checkpoint inhibitors to improve malignant tumor immunotherapy.
引用
收藏
页数:15
相关论文
共 46 条
[31]   TLR7/8-agonist-loaded nanoparticles promote the polarization of tumour-associated macrophages to enhance cancer immunotherapy [J].
Rodell, Christopher B. ;
Arlauckas, Sean P. ;
Cuccarese, Michael F. ;
Garris, Christopher S. ;
Ahmed, Ran Li Maaz S. ;
Kohler, Rainer H. ;
Pittet, Mikael J. ;
Weissleder, Ralph .
NATURE BIOMEDICAL ENGINEERING, 2018, 2 (08) :578-+
[32]   Image based Machine Learning for identification of macrophage subsets [J].
Rostam, Hassan M. ;
Reynolds, Paul M. ;
Alexander, Morgan R. ;
Gadegaard, Nikolaj ;
Ghaemmaghami, Amir M. .
SCIENTIFIC REPORTS, 2017, 7
[33]   Autophagy suppresses isoprenaline-induced M2 macrophage polarization via the ROS/ERK and mTOR signaling pathway [J].
Shan, Meihua ;
Qin, Junfang ;
Jin, Fengjiao ;
Han, Xiao ;
Guan, Haitao ;
Li, Xiaoge ;
Zhang, Jiahui ;
Zhang, Hongyao ;
Wang, Yue .
FREE RADICAL BIOLOGY AND MEDICINE, 2017, 110 :432-443
[34]   Macrophages and cathepsin proteases blunt chemotherapeutic response in breast cancer [J].
Shree, Tanaya ;
Olson, Oakley C. ;
Elie, Benelita T. ;
Kester, Jemila C. ;
Garfall, Alfred L. ;
Simpson, Kenishana ;
Bell-McGuinn, Katherine M. ;
Zabor, Emily C. ;
Brogi, Edi ;
Joyce, Johanna A. .
GENES & DEVELOPMENT, 2011, 25 (23) :2465-2479
[35]   CYBA encoding p22phox, the cytochrome b558 alpha polypeptide: gene structure, expression, role and physiopathology [J].
Stasia, Marie Jose .
GENE, 2016, 586 (01) :27-35
[36]   Tumor-Associated Macrophages and Survival in Classic Hodgkin's Lymphoma [J].
Steidl, Christian ;
Lee, Tang ;
Shah, Sohrab P. ;
Farinha, Pedro ;
Han, Guangming ;
Nayar, Tarun ;
Delaney, Allen ;
Jones, Steven J. ;
Iqbal, Javeed ;
Weisenburger, Dennis D. ;
Bast, Martin A. ;
Rosenwald, Andreas ;
Muller-Hermelink, Hans-Konrad ;
Rimsza, Lisa M. ;
Campo, Elias ;
Delabie, Jan ;
Braziel, Rita M. ;
Cook, James R. ;
Tubbs, Ray R. ;
Jaffe, Elaine S. ;
Lenz, Georg ;
Connors, Joseph M. ;
Staudt, Louis M. ;
Chan, Wing C. ;
Gascoyne, Randy D. .
NEW ENGLAND JOURNAL OF MEDICINE, 2010, 362 (10) :875-885
[37]   The role of inflammatory cytokines and tumor associated macrophages (TAMs) in microenvironment of pancreatic cancer [J].
Valilou, Saeed Farajzadeh ;
Keshavarz-Fathi, Mahsa ;
Silvestris, Nicola ;
Argentiero, Antonella ;
Rezaei, Nima .
CYTOKINE & GROWTH FACTOR REVIEWS, 2018, 39 :46-61
[38]  
Vayrynen J.P., 2021, CANCER IMMUNOL RES, V9, P8, DOI [DOI 10.1158/2326-6066.CIR-20-0527, 10.1158/2326-6066.CIR-20-0527 (2021]
[39]   Phenylboronic Acid Modification Augments the Lysosome Escape and Antitumor Efficacy of a Cylindrical Polymer Brush-Based Prodrug [J].
Wang, Ruonan ;
Yin, Changfeng ;
Liu, Changren ;
Sun, Ying ;
Xiao, Panpan ;
Li, Jia ;
Yang, Shuo ;
Wu, Wei ;
Jiang, Xiqun .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2021, 143 (49) :20927-20938
[40]   Polyphyllin D punctures hypertrophic lysosomes to reverse drug resistance of hepatocellular carcinoma by targeting acid sphingomyelinase [J].
Wang, Yang ;
Chen, Yan-Yan ;
Gao, Gui -Bin ;
Zheng, Yang -Han ;
Yu, Nan-Nan ;
Ouyang, Lan ;
Gao, Xuejuan ;
Li, Nan ;
Huang, Shangjia ;
Zhao, Qian ;
Liu, Langxia ;
Cao, Mingrong ;
Zhang, Shuixing ;
Zhang, Jing ;
He, Qing -Yu .
MOLECULAR THERAPY, 2023, 31 (07) :2169-2187