The immunological effect of hyaluronan in tumor angiogenesis

被引:40
作者
Spinelli, Fiorella M. [1 ,2 ,4 ]
Vitale, Daiana L. [1 ,2 ]
Demarchi, Gianina [1 ,3 ,5 ]
Cristina, Carolina [1 ,3 ,5 ]
Alaniz, Laura [1 ,2 ,5 ]
机构
[1] Univ Nacl Noroeste Pcia Bs As, CIBA, CIT NOBA, Consejo Nacl Invest & Cientif Tecn UNNOBA CONICET, Junin, Buenos Aires, Argentina
[2] CIBA, Lab Tumour Microenvironm, Junin, Buenos Aires, Argentina
[3] CIBA, Lab Pituitary Physiopathol, Junin, Buenos Aires, Argentina
[4] Comis Invest Cientif, La Plata, Buenos Aires, Argentina
[5] Consejo Nacl Invest Cient & Tecn, Buenos Aires, DF, Argentina
关键词
D O I
10.1038/cti.2015.35
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
100102 ;
摘要
The relationship between the immune system and angiogenesis has been described in several contexts, both in physiological and pathological conditions, as pregnancy and cancer. In fact, different types of immune cells, such as myeloid, macrophages and denditric cells, are able to modulate tumor neovascularization. On the other hand, tumor microenvironment also includes extracellular matrix components like hyaluronan, which has a deregulated synthesis in different tumors. Hyaluronan is a glycosaminoglycan, normally present in the extracellular matrix of tissues in continuous remodeling (embryogenesis or wound healing processes) and acts as an important modulator of cell behavior by different mechanisms, including angiogenesis. In this review, we discuss hyaluronan as a modulator of tumor angiogenesis, focusing in intracellular signaling mediated by its receptors expressed on different immune cells. Recent observations suggest that the immune system is an important component in tumoural angiogenesis. Therefore, immune modulation could have an impact in anti-angiogenic therapy as a new therapeutic strategy, which in turn might improve effectiveness of treatment in cancer patients.
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页数:9
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共 133 条
  • [91] Endostatin: An endogenous inhibitor of angiogenesis and tumor growth
    OReilly, MS
    Boehm, T
    Shing, Y
    Fukai, N
    Vasios, G
    Lane, WS
    Flynn, E
    Birkhead, JR
    Olsen, BR
    Folkman, J
    [J]. CELL, 1997, 88 (02) : 277 - 285
  • [92] Ornitz DM, 2001, GENOME BIOL, V2
  • [93] Cancer immunotherapy via dendritic cells
    Palucka, Karolina
    Banchereau, Jacques
    [J]. NATURE REVIEWS CANCER, 2012, 12 (04) : 265 - 277
  • [94] Hyaluronic acid promotes angiogenesis by inducing RHAMM-TGFβ receptor interaction via CD44-PKCδ
    Park, Deokbum
    Kim, Youngmi
    Kim, Hyunah
    Kim, Kyungjong
    Lee, Yun-Sil
    Choe, Jongseon
    Hahn, Jang-Hee
    Lee, Hansoo
    Jeon, Jongwook
    Choi, Chulhee
    Kim, Young-Myeong
    Jeoung, Dooil
    [J]. MOLECULES AND CELLS, 2012, 33 (06) : 563 - 574
  • [95] Participation of blood vessel cells in human adaptive immune responses
    Pober, Jordan S.
    Tellides, George
    [J]. TRENDS IN IMMUNOLOGY, 2012, 33 (01) : 49 - 57
  • [96] Reduced T-cell and dendritic cell function is related to cyclooxygenase-2 overexpression and prostaglandin E2 secretion in patients with breast cancer
    Pockaj, BA
    Basu, GD
    Pathangey, LB
    Gray, RJ
    Hernandez, JL
    Gendler, SJ
    Mukherjee, P
    [J]. ANNALS OF SURGICAL ONCOLOGY, 2004, 11 (03) : 328 - 339
  • [97] Basic and Therapeutic Aspects of Angiogenesis
    Potente, Michael
    Gerhardt, Holger
    Carmeliet, Peter
    [J]. CELL, 2011, 146 (06) : 873 - 887
  • [98] Peritoneal dialysis solutions inhibit the differentiation and maturation of human monocyte-derived dendritic cells:: effect of lactate and glucose-degradation products
    Puig-Kröger, A
    Muñiz-Pello, O
    Selgas, R
    Criado, G
    Bajo, MA
    Sánchez-Tomero, JA
    Alvarez, V
    del Peso, G
    Sánchez-Mateos, P
    Holmes, C
    Faict, D
    López-Cabrera, M
    Madrenas, J
    Corbí, AL
    [J]. JOURNAL OF LEUKOCYTE BIOLOGY, 2003, 73 (04) : 482 - 492
  • [99] Hyaluronate-CD44 interactions can induce murine B-cell activation
    Rafi, A
    Nagarkatti, M
    Nagarkatti, PS
    [J]. BLOOD, 1997, 89 (08) : 2901 - 2908
  • [100] Wnt inhibitory factor 1 induces apoptosis and inhibits cervical cancer growth, invasion and angiogenesis in vivo
    Ramachandran, I.
    Thavathiru, E.
    Ramalingam, S.
    Natarajan, G.
    Mills, W. K.
    Benbrook, D. M.
    Zuna, R.
    Lightfoot, S.
    Reis, A.
    Anant, S.
    Queimado, L.
    [J]. ONCOGENE, 2012, 31 (22) : 2725 - 2737