The Role of Tumor Microenvironment in Cancer Metastasis: Molecular Mechanisms and Therapeutic Opportunities

被引:180
|
作者
Neophytou, Christiana M. [1 ,2 ]
Panagi, Myrofora [3 ]
Stylianopoulos, Triantafyllos [2 ]
Papageorgis, Panagiotis [1 ,2 ]
机构
[1] European Univ, Res Ctr, CY-2404 Nicosia, Cyprus
[2] European Univ Cyprus, Tumor Microenvironm Metastasis & Expt Therapeut L, Basic & Translat Canc Res Ctr, Dept Life Sci, CY-1516 Nicosia, Cyprus
[3] Univ Cyprus, Canc Biophys Lab, Dept Mech & Mfg Engn, CY-2109 Nicosia, Cyprus
基金
欧洲研究理事会;
关键词
tumor microenvironment; immune system; metastasis; drug delivery; cancer therapy; MESENCHYMAL STEM-CELLS; CARBONIC-ANHYDRASE IX; CARCINOMA-ASSOCIATED FIBROBLASTS; FACTORS MASTER REGULATORS; IMPROVING DRUG-DELIVERY; BREAST-CARCINOMA; GASTRIC-CANCER; LUNG-CANCER; CHEMOATTRACTANT PROTEIN-1; XENOGRAFT MODELS;
D O I
10.3390/cancers13092053
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Simple Summary Metastasis, the process by which cancer cells escape primary tumor site and colonize distant organs, is responsible for most cancer-related deaths. The tumor microenvironment (TME), comprises different cell types, including immune cells and cancer-associated fibroblasts, as well as structural elements, such as collagen and hyaluronan that constitute the extracellular matrix (ECM). Intratumoral interactions between the cellular and structural components of the TME regulate the aggressiveness, and dissemination of malignant cells and promote immune evasion. At the secondary site, the TME also facilitates escape from dormancy to enhance metastatic tumor outgrowth. Moreover, the ECM applies mechanical forces on tumors that contribute to hypoxia and cancer cell invasiveness whereas also hinders drug delivery and efficacy in both primary and metastatic sites. In this review, we summarize the latest developments regarding the role of the TME in cancer progression and discuss ongoing efforts to remodel the TME to stop metastasis in its tracks. The tumor microenvironment (TME) regulates essential tumor survival and promotion functions. Interactions between the cellular and structural components of the TME allow cancer cells to become invasive and disseminate from the primary site to distant locations, through a complex and multistep metastatic cascade. Tumor-associated M2-type macrophages have growth-promoting and immunosuppressive functions; mesenchymal cells mass produce exosomes that increase the migratory ability of cancer cells; cancer associated fibroblasts (CAFs) reorganize the surrounding matrix creating migration-guiding tracks for cancer cells. In addition, the tumor extracellular matrix (ECM) exerts determinant roles in disease progression and cancer cell migration and regulates therapeutic responses. The hypoxic conditions generated at the primary tumor force cancer cells to genetically and/or epigenetically adapt in order to survive and metastasize. In the circulation, cancer cells encounter platelets, immune cells, and cytokines in the blood microenvironment that facilitate their survival and transit. This review discusses the roles of different cellular and structural tumor components in regulating the metastatic process, targeting approaches using small molecule inhibitors, nanoparticles, manipulated exosomes, and miRNAs to inhibit tumor invasion as well as current and future strategies to remodel the TME and enhance treatment efficacy to block the detrimental process of metastasis.
引用
收藏
页数:22
相关论文
共 50 条
  • [1] The Tumor Microenvironment in SCC: Mechanisms and Therapeutic Opportunities
    Amor, Nadia Ghinelli
    da Silva Santos, Paulo Sergio
    Campanelli, Ana Paula
    [J]. FRONTIERS IN CELL AND DEVELOPMENTAL BIOLOGY, 2021, 9
  • [2] Role of tumor microenvironment in the pathobiology of ovarian cancer: Insights and therapeutic opportunities
    Ghoneum, Alia
    Afify, Hesham
    Salih, Ziyan
    Kelly, Michael
    Said, Neveen
    [J]. CANCER MEDICINE, 2018, 7 (10): : 5047 - 5056
  • [3] Molecular Biology of Ovarian Cancer: From Mechanisms of Intraperitoneal Metastasis to Therapeutic Opportunities
    Ksiazek, Krzysztof
    [J]. CANCERS, 2021, 13 (07)
  • [4] The Complex Tumor Microenvironment in Ovarian Cancer: Therapeutic Challenges and Opportunities
    Garlisi, Bianca
    Lauks, Sylvia
    Aitken, Caroline
    Ogilvie, Leslie M.
    Lockington, Cielle
    Petrik, Duncan
    Eichhorn, Jan Soeren
    Petrik, Jim
    [J]. CURRENT ONCOLOGY, 2024, 31 (07) : 3826 - 3844
  • [5] Cholesterol metabolism in tumor microenvironment cancer hallmarks and therapeutic opportunities
    Jiang, Wen
    Jin, Wei-Lin
    Xu, A-Man
    [J]. INTERNATIONAL JOURNAL OF BIOLOGICAL SCIENCES, 2024, 20 (06): : 2044 - 2071
  • [6] Tumor microenvironment promotes cancer progression, metastasis, and therapeutic resistance
    Sung, Shian-Ying
    Johnstone, Peter A. S.
    [J]. CURRENT PROBLEMS IN CANCER, 2007, 31 (02) : 36 - 100
  • [7] Unraveling the tumor microenvironment: Insights into cancer metastasis and therapeutic strategies
    El-Tanani, Mohamed
    Rabbani, Syed Arman
    Babiker, Rasha
    Rangraze, Imran
    Kapre, Sumedha
    Palakurthi, Sushesh Srivastsa
    Alnuqaydan, Abdullah M.
    Aljabali, Alaa A.
    Rizzo, Manfredi
    El-Tanani, Yahia
    Tambuwala, Murtaza M.
    [J]. CANCER LETTERS, 2024, 591
  • [8] Phytonanomedicine as a therapeutic regulator of the tumor microenvironment for inhibiting cancer metastasis
    Sahoo, Sonali
    Sahoo, Sanjeeb Kumar
    [J]. NANOMEDICINE, 2024, 19 (14) : 1227 - 1229
  • [9] The role of tumor microenvironment in prostate cancer bone metastasis
    Morrissey, Colm
    Vessella, Robert L.
    [J]. JOURNAL OF CELLULAR BIOCHEMISTRY, 2007, 101 (04) : 873 - 886
  • [10] Hypoxic microenvironment in cancer: molecular mechanisms and therapeutic interventions
    Zhou Chen
    Fangfang Han
    Yan Du
    Huaqing Shi
    Wence Zhou
    [J]. Signal Transduction and Targeted Therapy, 8