Intravasation as a Key Step in Cancer Metastasis

被引:56
作者
Zavyalova, M. V. [1 ,2 ]
Denisov, E. V. [1 ]
Tashireva, L. A. [1 ]
Savelieva, O. E. [1 ]
Kaigorodova, E. V. [1 ,2 ]
Krakhmal, N. V. [1 ,2 ]
Perelmuter, V. M. [1 ]
机构
[1] Russian Acad Sci, Tomsk Natl Res Med Ctr, Canc Res Inst, Tomsk 634009, Russia
[2] Siberian State Med Univ, Minist Hlth Russian Federat, Tomsk 634050, Russia
基金
俄罗斯科学基金会;
关键词
intravasation; invasion; hematogenous metastasis; carcinoma; TMEM; extrusion; RECEPTOR-TYPE; 1; LYMPHOCYTE EGRESS; DENDRITIC CELLS; T-CELLS; MAMMARY-GLAND; TUMOR-CELLS; MIGRATION; MACROPHAGES; KINASE; MONOCYTES;
D O I
10.1134/S0006297919070071
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Intravasation is a key step in cancer metastasis during which tumor cells penetrate the vessel wall and enter circulation, thereby becoming circulating tumor cells and potential metastatic seeds. Understanding the molecular mechanisms of intravasation is critically important for the development of therapeutic strategies to prevent metastasis. In this article, we review current data on the mechanisms of cancer cell intravasation into the blood and lymphatic vessels. The entry of mature thymocytes into the circulation and of dendritic cells into the regional lymph nodes is considered as examples of intravasation under physiologically normal conditions. Intravasation in a pathophysiological state is illustrated by the reverse transendothelial migration of leukocytes into the bloodstream from the sites of inflammation mediated by the sphingosine 1-phosphate interaction with its receptors. Intravasation involves both invasion-dependent and independent mechanisms. In particular, mesenchymal and amoeboid cell invasion, as well as neoangiogenesis and vascular remodeling, are discussed to play a significant role in the entry of tumor cells to the circulation. Special attention is given to the contribution of macrophages to the intravasation via the CSF1/EGF (colony stimulating factor 1/epidermal growth factor) paracrine signaling pathway and the TMEM (tumor microenvironment of metastasis)-mediated mechanisms. Other mechanisms including intravasation of tumor cell clusters surrounded by the vessel wall elements, cooperative intravasation (entry of non-invasive tumor cells to the circulation following invasive tumor cells), and intravasation associated with the vasculogenic mimicry (formation of vascular channels by tumor cells) are also discussed. Novel intravasation-specific mechanisms that have not yet been described in the literature are suggested. The importance of targeted therapeutic strategies to prevent cancer intravasation is emphasized.
引用
收藏
页码:762 / 772
页数:11
相关论文
共 77 条
  • [1] Circulating Tumor Cell Clusters Are Oligoclonal Precursors of Breast Cancer Metastasis
    Aceto, Nicola
    Bardia, Aditya
    Miyamoto, David T.
    Donaldson, Maria C.
    Wittner, Ben S.
    Spencer, Joel A.
    Yu, Min
    Pely, Adam
    Engstrom, Amanda
    Zhu, Huili
    Brannigan, Brian W.
    Kapur, Ravi
    Stott, Shannon L.
    Shioda, Toshi
    Ramaswamy, Sridhar
    Ting, David T.
    Lin, Charles P.
    Toner, Mehmet
    Haber, Daniel A.
    Maheswaran, Shyamala
    [J]. CELL, 2014, 158 (05) : 1110 - 1122
  • [2] Fibroblast-derived CXCL12 promotes breast cancer metastasis by facilitating tumor cell intravasation
    Ahirwar, Dinesh K.
    Nasser, Mohd W.
    Ouseph, Madhu M.
    Elbaz, Mohamad
    Cuitino, Maria C.
    Kladney, Raleigh D.
    Varikuti, Sanjay
    Kaul, Kirti
    Satoskar, Abhay R.
    Ramaswamy, Bhuvaneswari
    Zhang, Xiaoli
    Ostrowski, Michael C.
    Leone, Gustavo
    Ganju, Ramesh K.
    [J]. ONCOGENE, 2018, 37 (32) : 4428 - 4442
  • [3] Aggressive serous epithelial ovarian cancer is potentially propagated by EpCAM+CD45+ phenotype
    Akhter, Md Zahid
    Sharawat, Surender K.
    Kumar, Vikash
    Kochat, Veena
    Equbal, Zaffar
    Ramakrishnan, Mallika
    Kumar, Umesh
    Mathur, Sandeep
    Kumar, Lalit
    Mukhopadhyay, Asok
    [J]. ONCOGENE, 2018, 37 (16) : 2089 - 2103
  • [4] A Unidirectional Transition from Migratory to Perivascular Macrophage Is Required for Tumor Cell Intravasation
    Arwert, Esther N.
    Harney, Allison S.
    Entenberg, David
    Wang, Yarong
    Sahai, Erik
    Pollard, Jeffrey W.
    Condeelis, John S.
    [J]. CELL REPORTS, 2018, 23 (05): : 1239 - 1248
  • [5] Identification of a phenotypically and functionally distinct population of long-lived neutrophils in a model of reverse endothelial migration
    Buckley, Christopher D.
    Ross, Ewan A.
    McGettrick, Helen M.
    Osborne, Chloe. E.
    Haworth, Oliver
    Schmutz, Caroline
    Stone, Philip C. W.
    Salmon, Mike
    Matharu, Nick M.
    Vohra, Rajiv K.
    Nash, Gerard B.
    Rainger, G. Ed
    [J]. JOURNAL OF LEUKOCYTE BIOLOGY, 2006, 79 (02) : 303 - 311
  • [6] Reverse transendothelial cell migration in inflammation: to help or to hinder?
    Burn, Thomas
    Alvarez, Jorge Ivan
    [J]. CELLULAR AND MOLECULAR LIFE SCIENCES, 2017, 74 (10) : 1871 - 1881
  • [7] Tumor cell intravasation
    Chiang, Serena P. H.
    Cabrera, Ramon M.
    Segall, Jeffrey E.
    [J]. AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY, 2016, 311 (01): : C1 - C14
  • [8] Chiba K, 2006, CELL MOL IMMUNOL, V3, P11
  • [9] Angiopoietin 2 Stimulates TIE2-Expressing Monocytes To Suppress T Cell Activation and To Promote Regulatory T Cell Expansion
    Coffelt, Seth B.
    Chen, Yung-Yi
    Muthana, Munitta
    Welford, Abigail F.
    Tal, Andrea O.
    Scholz, Alexander
    Plate, Karl H.
    Reiss, Yvonne
    Murdoch, Craig
    De Palma, Michele
    Lewis, Claire E.
    [J]. JOURNAL OF IMMUNOLOGY, 2011, 186 (07) : 4183 - 4190
  • [10] Circulating tumor cells, disease progression, and survival in metastatic breast cancer
    Cristofanilli, M
    Budd, GT
    Ellis, MJ
    Stopeck, A
    Matera, J
    Miller, MC
    Reuben, JM
    Doyle, GV
    Allard, WJ
    Terstappen, LWMM
    Hayes, DF
    [J]. NEW ENGLAND JOURNAL OF MEDICINE, 2004, 351 (08) : 781 - 791