Myeloid Cell Modulation by Tumor-Derived Extracellular Vesicles

被引:37
作者
Arkhypov, Ihor [1 ,2 ]
Lasser, Samantha [1 ,2 ]
Petrova, Vera [1 ,2 ]
Weber, Rebekka [1 ,2 ]
Groth, Christopher [1 ,2 ]
Utikal, Jochen [1 ,2 ]
Altevogt, Peter [1 ,2 ]
Umansky, Viktor [1 ,2 ]
机构
[1] German Canc Res Ctr, Skin Canc Unit, D-69120 Heidelberg, Germany
[2] Ruprecht Karl Univ Heidelberg, Univ Med Ctr Mannheim, Dept Dermatol Venereol & Allergol, D-68167 Mannheim, Germany
关键词
extracellular vesicles; cancer; myeloid cells; immunosuppression; SUPPRESSOR-CELLS; DENDRITIC CELLS; CANCER-CELLS; MACROPHAGE POLARIZATION; MELANOMA PATIENTS; MESSENGER-RNAS; EXOSOMES; DIFFERENTIATION; PROGRESSION; EXPRESSION;
D O I
10.3390/ijms21176319
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
070307 [化学生物学]; 071010 [生物化学与分子生物学];
摘要
Extracellular vesicles (EV) can carry proteins, RNA and DNA, thus serving as communication tools between cells. Tumor cells secrete EV, which can be taken up by surrounding cells in the tumor microenvironment as well as by cells in distant organs. Tumor-derived EV (TEV) contain factors induced by tumor-associated hypoxia such as heat shock proteins or a variety of microRNA (miRNA). The interaction of TEV with tumor and host cells can promote cancer angiogenesis, invasion and metastasis. Myeloid cells are widely presented in tissues, comprise the majority of immune cells and play an essential role in immune reactions and tissue remodeling. However, in cancer, the differentiation of myeloid cells and their functions are impaired, resulting in tumor promotion. Such alterations are due to chronic inflammatory conditions associated with cancer and are mediated by the tumor secretome, including TEV. A high capacity of myeloid cells to clear EV from circulation put them in the central position in EV-mediated formation of pre-metastatic niches. The exposure of myeloid cells to TEV could trigger numerous signaling pathways. Progenitors of myeloid cells alter their differentiation upon the contact with TEV, resulting in the generation of myeloid-derived suppressor cells (MDSC), inhibiting anti-tumor function of T and natural killer (NK) cells and promoting thereby tumor progression. Furthermore, TEV can augment MDSC immunosuppressive capacity. Different subsets of mature myeloid cells such as monocytes, macrophages, dendritic cells (DC) and granulocytes take up TEV and acquire a protumorigenic phenotype. However, the delivery of tumor antigens to DC by TEV was shown to enhance their immunostimulatory capacity. The present review will discuss a diverse and complex EV-mediated crosstalk between tumor and myeloid cells in the context of the tumor type, TEV-associated cargo molecules and type of recipient cells.
引用
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页码:1 / 22
页数:22
相关论文
共 159 条
[1]
Novel insights into exosome-induced, tumor-associated inflammation and immunomodulation [J].
Altevogt, Peter ;
Bretz, Niko P. ;
Ridinger, Johannes ;
Utikal, Jochen ;
Umansky, Viktor .
SEMINARS IN CANCER BIOLOGY, 2014, 28 :51-57
[2]
Phenotypical and functional evaluation of dendritic cells after exosomal delivery of miRNA-155 [J].
Asadirad, Ali ;
Hashemi, Seyed Mahmoud ;
Baghaei, Kaveh ;
Ghanbarian, Hossein ;
Mortaz, Esmaeil ;
Zali, Mohammad Reza ;
Amani, Davar .
LIFE SCIENCES, 2019, 219 :152-162
[3]
Tumor-derived exosomes in the regulation of macrophage polarization [J].
Baig, Mirza S. ;
Roy, Anjali ;
Rajpoot, Sajjan ;
Liu, Dongfang ;
Savai, Rajkumar ;
Banerjee, Sreeparna ;
Kawada, Manabu ;
Faisal, Syed M. ;
Saluja, Rohit ;
Saqib, Uzma ;
Ohishi, Tomokazu ;
Wary, Kishore K. .
INFLAMMATION RESEARCH, 2020, 69 (05) :435-451
[4]
Colorectal cancer-derived microvesicles modulate differentiation of human monocytes to macrophages [J].
Baj-Krzyworzeka, Monika ;
Mytar, Bozenna ;
Szatanek, Rafal ;
Surmiak, Marcin ;
Weglarczyk, Kazimierz ;
Baran, Jarek ;
Siedlar, Maciej .
JOURNAL OF TRANSLATIONAL MEDICINE, 2016, 14
[5]
Melanoma exosomes promote mixed M1 and M2 macrophage polarization [J].
Bardi, Gina T. ;
Smith, Mary Ann ;
Hood, Joshua L. .
CYTOKINE, 2018, 105 :63-72
[6]
The Myeloid Cell Compartment-Cell by Cell [J].
Bassler, Kevin ;
Schulte-Schrepping, Jonas ;
Warnat-Herresthal, Stefanie ;
Aschenbrenner, Anna C. ;
Schultze, Joachim L. .
ANNUAL REVIEW OF IMMUNOLOGY, VOL 37, 2019, 2019, 37 :269-293
[7]
Exosomes Produced by Mesenchymal Stem Cells Drive Differentiation of Myeloid Cells into Immunosuppressive M2-Polarized Macrophages in Breast Cancer [J].
Biswas, Subir ;
Mandal, Gunjan ;
Chowdhury, Sougata Roy ;
Purohit, Suman ;
Payne, Kyle K. ;
Anadon, Carmen ;
Gupta, Arnab ;
Swanson, Patricia ;
Yu, Xiaoqing ;
Conejo-Garcia, Jose R. ;
Bhattacharyya, Arindam .
JOURNAL OF IMMUNOLOGY, 2019, 203 (12) :3447-3460
[8]
Acidic microenvironment plays a key role in human melanoma progression through a sustained exosome mediated transfer of clinically relevant metastatic molecules [J].
Boussadia, Zaira ;
Lamberti, Jessica ;
Mattei, Fabrizio ;
Pizzi, Elisabetta ;
Puglisi, Rossella ;
Zanetti, Cristiana ;
Pasquini, Luca ;
Fratini, Federica ;
Fantozzi, Luca ;
Felicetti, Federica ;
Fecchi, Katia ;
Raggi, Carla ;
Sanchez, Massimo ;
D'Atri, Stefania ;
Care, Alessandra ;
Sargiacomo, Massimo ;
Parolini, Isabella .
JOURNAL OF EXPERIMENTAL & CLINICAL CANCER RESEARCH, 2018, 37
[9]
Body Fluid Exosomes Promote Secretion of Inflammatory Cytokines in Monocytic Cells via Toll-like Receptor Signaling [J].
Bretz, Niko P. ;
Ridinger, Johannes ;
Rupp, Anne-Kathleen ;
Rimbach, Katharina ;
Keller, Sascha ;
Rupp, Christian ;
Marme, Frederik ;
Umansky, Ludmila ;
Umansky, Viktor ;
Eigenbrod, Tatjana ;
Sammar, Marei ;
Altevogt, Peter .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2013, 288 (51) :36691-36702
[10]
Recommendations for myeloid-derived suppressor cell nomenclature and characterization standards [J].
Bronte, Vincenzo ;
Brandau, Sven ;
Chen, Shu-Hsia ;
Colombo, Mario P. ;
Frey, Alan B. ;
Greten, Tim F. ;
Mandruzzato, Susanna ;
Murray, Peter J. ;
Ochoa, Augusto ;
Ostrand-Rosenberg, Suzanne ;
Rodriguez, Paulo C. ;
Sica, Antonio ;
Umansky, Viktor ;
Vonderheide, Robert H. ;
Gabrilovich, Dmitry I. .
NATURE COMMUNICATIONS, 2016, 7