The Impact of Focused Ultrasound in Two Tumor Models: Temporal Alterations in the Natural History on Tumor Microenvironment and Immune Cell Response

被引:15
|
作者
Cohen, Gadi [1 ]
Chandran, Parwathy [1 ]
Lorsung, Rebecca M. [1 ]
Tomlinson, Lauren E. [1 ]
Sundby, Maggie [1 ]
Burks, Scott R. [1 ]
Frank, Joseph A. [1 ,2 ]
机构
[1] NIH, Frank Lab, Radiol & Imaging Sci, Clin Ctr, 10 Ctr Dr, Bethesda, MD 20892 USA
[2] NIH, Natl Inst Biomed Imaging & Bioengn, 10 Ctr Dr, Bethesda, MD 20892 USA
基金
美国国家卫生研究院;
关键词
B16; melanoma; 4T1 breast cancer; pulsed focused ultrasound; proteomic; tumor microenvironment; immune cells; CANCER; IMMUNOTHERAPY; INFLAMMATION; SUPPRESSION; MECHANISMS; CHEMOKINES; TOLERANCE; CYTOKINES; MELANOMA; KIDNEY;
D O I
10.3390/cancers12020350
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Image-guided focused ultrasound (FUS) has been successfully employed as an ablative treatment for solid malignancies by exposing immune cells to tumor debris/antigens, consequently inducing an immune response within the tumor microenvironment (TME). To date, immunomodulation effects of non-ablative pulsed-FUS (pFUS) on the TME are poorly understood. In this study, the temporal differences of cytokines, chemokines, and trophic factors (CCTFs) and immune cell populations induced by pFUS were interrogated in murine B16 melanoma or 4T1 breast cancer cells subcutaneously inoculated into C57BL/6 or BALB/c mice. Natural history growth characteristics during the course of 11 days showed a progressive increase in size for both tumors, and proteomic analysis revealed a shift toward an immunosuppressive TME. With respect to tumor natural growth, pFUS applied to tumors on days 1, 5, or 9 demonstrated a decrease in the growth rate 24 h post-sonication. Flow cytometry analysis of tumors, LNs, and Sp, as well as CCTF profiles, relative DNA damage, and adaptive T-cell localization within tumors, demonstrated dynamic innate and adaptive immune-modulation following pFUS in early time points of B16 tumors and in advanced 4T1 tumors. These results provide insight into the temporal dynamics in the treatment-associated TME, which could be used to evaluate an immunomodulatory approach in different tumor types.
引用
收藏
页数:19
相关论文
共 50 条
  • [21] The Impact of FGFR3 Alterations on the Tumor Microenvironment and the Efficacy of Immune Checkpoint Inhibitors in Bladder Cancer
    Kazumasa Komura
    Kensuke Hirosuna
    Satoshi Tokushige
    Takuya Tsujino
    Kazuki Nishimura
    Mitsuaki Ishida
    Takuo Hayashi
    Ayako Ura
    Takaya Ohno
    Shogo Yamazaki
    Keita Nakamori
    Shoko Kinoshita
    Ryoichi Maenosono
    Masahiko Ajiro
    Yuki Yoshikawa
    Tomoaki Takai
    Takeshi Tsutsumi
    Kohei Taniguchi
    Tomohito Tanaka
    Kiyoshi Takahara
    Tsuyoshi Konuma
    Teruo Inamoto
    Yoshinobu Hirose
    Fumihito Ono
    Yuichi Shiraishi
    Akihide Yoshimi
    Haruhito Azuma
    Molecular Cancer, 22
  • [22] Dissecting the tumor microenvironment in response to immune checkpoint inhibitors via single-cell and spatial transcriptomics
    Liu, Wendi
    Puri, Anusha
    Fu, Doris
    Chen, Lee
    Wang, Cassia
    Kellis, Manolis
    Yang, Jiekun
    CLINICAL & EXPERIMENTAL METASTASIS, 2024, 41 (04) : 313 - 332
  • [23] Targeting the CD47/thrombospondin-1 signaling axis regulates immune cell bioenergetics in the tumor microenvironment to potentiate antitumor immune response
    Stirling, Elizabeth R.
    Terabe, Masaki
    Wilson, Adam S.
    Kooshki, Mitra
    Yamaleyeva, Liliya M.
    Alexander-Miller, Martha A.
    Zhang, Wei
    Miller, Lance D.
    Triozzi, Pierre L.
    Soto-Pantoja, David R.
    JOURNAL FOR IMMUNOTHERAPY OF CANCER, 2022, 10 (11)
  • [24] A B cell-derived gene expression signature associates with an immunologically active tumor microenvironment and response to immune checkpoint blockade therapy
    Varn, Frederick S.
    Wang, Yue
    Cheng, Chao
    ONCOIMMUNOLOGY, 2019, 8 (01):
  • [25] Response to neoadjuvant immune checkpoint inhibitors and chemotherapy in Chinese patients with esophageal squamous cell carcinoma: the role of tumor immune microenvironment
    Wang, Xiaoyuan
    Ling, Xiaodong
    Wang, Changhong
    Zhang, Jinfeng
    Yang, Yingnan
    Jiang, Hao
    Xin, Yanzhong
    Zhang, Luquan
    Liang, Hao
    Fang, Chengyuan
    Zheng, Dayong
    Zhu, Jinhong
    Ma, Jianqun
    CANCER IMMUNOLOGY IMMUNOTHERAPY, 2023, 72 (06) : 1619 - 1631
  • [26] Tumor Immune Microenvironment Clusters in Localized Prostate Adenocarcinoma: Prognostic Impact of Macrophage Enriched/Plasma Cell Non-Enriched Subtypes
    Jairath, Neil K.
    Farha, Mark W.
    Srinivasan, Sudharsan
    Jairath, Ruple
    Green, Michael D.
    Dess, Robert T.
    Jackson, William C.
    Weiner, Adam B.
    Schaeffer, Edward M.
    Zhao, Shuang G.
    Feng, Felix Y.
    El Naqa, Issam
    Spratt, Daniel E.
    JOURNAL OF CLINICAL MEDICINE, 2020, 9 (06) : 1 - 13
  • [27] Multidimensional Analyses of Tumor Immune Microenvironment Reveal the Possible Rationality of Immunotherapy and Identify High Immunotherapy Response Subtypes for Renal Papillary Cell Carcinoma
    Wei, Baojun
    Yu, Meng
    Yao, Jihang
    Jiang, Mingzhe
    An, Jun
    Yang, Jieping
    Lin, Jiaxing
    Zhao, Yongkang
    Zhu, Yuyan
    FRONTIERS IN IMMUNOLOGY, 2021, 12
  • [28] Prediction of Tumor Microenvironment Characteristics and Treatment Response in Lung Squamous Cell Carcinoma by Pseudogene OR7E47P-related Immune Genes
    Zhao, Ya-qi
    Zhang, Hao-han
    Wu, Jie
    Li, Lan
    Li, Jing
    Zhong, Hao
    Jin, Yan
    Lei, Tian-yu
    Zhao, Xin-yi
    Xu, Bin
    Song, Qi-bin
    He, Jie
    CURRENT MEDICAL SCIENCE, 2023, 43 (06) : 1133 - 1150
  • [29] MAME Models for 4D Live-cell Imaging of Tumor: Microenvironment Interactions that Impact Malignant Progression
    Sameni, Mansoureh
    Anbalagan, Arulselvi
    Olive, Mary B.
    Moin, Kamiar
    Mattingly, Raymond R.
    Sloane, Bonnie F.
    JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2012, (60):
  • [30] Reconnaissance of tumor immune microenvironment spatial heterogeneity in metastatic renal cell carcinoma and correlation with immunotherapy response
    Hajiran, A.
    Chakiryan, N.
    Aydin, A. M.
    Zemp, L.
    Nguyen, J.
    Laborde, J. M.
    Chahoud, J.
    Spiess, P. E.
    Zaman, S.
    Falasiri, S.
    Fournier, M.
    Teer, J. K.
    Dhillon, J.
    McCarthy, S.
    Moran-Segura, C.
    Katende, E. N.
    Sexton, W. J.
    Koomen, J. M.
    Mule, J.
    Kim, Y.
    Manley, B.
    CLINICAL AND EXPERIMENTAL IMMUNOLOGY, 2021, 204 (01) : 96 - 106