A narrative review of tissue-resident memory T cells and their role in immune surveillance and COVID-19

被引:0
作者
Chen, L. [1 ]
Wei, B. [2 ]
Di, D. -L. [2 ]
机构
[1] Weifang Med Univ, Dept Hematol, Affiliated Hosp, Weifang, Shandong, Peoples R China
[2] Weifang Med Univ, Dept Immunol, Weifang, Shandong, Peoples R China
关键词
Tissue-resident memory T cells; Immune surveillance; Vaccine development; COVID-19; TUMOR-INFILTRATING LYMPHOCYTES; DIFFERENTIATION; IMMUNIZATION; ACTIVATION; PROTECTION; SURVIVAL; CD103; SPHINGOSINE-1-PHOSPHATE; MICROENVIRONMENTS; GENERATION;
D O I
暂无
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Most effector T cells will undergo programmed apoptosis after an immune response and some of them may become memory T cells. According to the distribution and functional status, the memory T cells can be divided into effector central memory T cells (TCM), effector memory T cells (TEM) and tissue-resident memory T cells (TRM) cells. TRM cells, including CD4+ TRM and CD8+ TRM cells, colonize various barrier surfaces and are no longer involved in lymphocyte recycling, closely monitored for local perturbations in homeostasis throughout the body as a critical component of the first defense line. When pathogenic microorganisms invade the body, TRM cells can quickly produce a defense response to initiate innate immunity and adaptive immunity by producing cytokines or killer molecules to resist viral and bacterial infections. In addition, TRM cells are also involved in cancer surveillance and play an essential role in maintaining cancer-immune equilibrium. The high frequency of TRM cells in tumor tissues often means favorable survival for patients. The latest research proves that TRM cells also play an important role in vaccine development and pathological features of COVID-19. This article will summarize the biological functions of TRM cells and aims at providing references for further research on their mechanism and for targeting the best treatment of clinical disease.
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收藏
页码:4486 / 4496
页数:11
相关论文
共 88 条
[41]   Protective mucosal immunity against SARS-CoV-2 after heterologous systemic prime-mucosal boost immunization [J].
Lapuente, Dennis ;
Fuchs, Jana ;
Willar, Jonas ;
Antao, Ana Vieira ;
Eberlein, Valentina ;
Uhlig, Nadja ;
Issmail, Leila ;
Schmidt, Anna ;
Oltmanns, Friederike ;
Peter, Antonia Sophia ;
Mueller-Schmucker, Sandra ;
Irrgang, Pascal ;
Fraedrich, Kirsten ;
Cara, Andrea ;
Hoffmann, Markus ;
Poehlmann, Stefan ;
Ensser, Armin ;
Pertl, Cordula ;
Willert, Torsten ;
Thirion, Christian ;
Grunwald, Thomas ;
Ueberla, Klaus ;
Tenbusch, Matthias .
NATURE COMMUNICATIONS, 2021, 12 (01)
[42]   Biomarker evaluation of face transplant rejection: association of donor T cells with target cell injury [J].
Lian, Christine Guo ;
Bueno, Ericka M. ;
Granter, Scott R. ;
Laga, Alvaro C. ;
Saavedra, Arturo P. ;
Lin, William M. ;
Susa, Joseph S. ;
Zhan, Qian ;
Chandraker, Anil K. ;
Tullius, Stefan G. ;
Pomahac, Bohdan ;
Murphy, George F. .
MODERN PATHOLOGY, 2014, 27 (06) :788-799
[43]   Fatty Acid Oxidation Controls CD8+ Tissue-Resident Memory T-cell Survival in Gastric Adenocarcinoma [J].
Lin, Run ;
Zhang, Hui ;
Yuan, Yujie ;
He, Qiong ;
Zhou, Jianwen ;
Li, Shuhua ;
Sun, Yu ;
Li, Daniel Y. ;
Qiu, Hai-Bo ;
Wang, Wei ;
Zhuang, Zhehong ;
Chen, Bin ;
Huang, Yonghui ;
Liu, Chuwei ;
Wang, Yingzhao ;
Cai, Shirong ;
Ke, Zunfu ;
He, Weiling .
CANCER IMMUNOLOGY RESEARCH, 2020, 8 (04) :479-492
[44]   Epidermal injury and infection during poxvirus immunization is crucial for the generation of highly protective T cell-mediated immunity [J].
Liu, Luzheng ;
Zhong, Qiong ;
Tian, Tian ;
Dubin, Krista ;
Athale, Shruti K. ;
Kupper, Thomas S. .
NATURE MEDICINE, 2010, 16 (02) :224-U132
[45]   Hobit and Blimp1 instruct a universal transcriptional program of tissue residency in lymphocytes [J].
Mackay, Laura K. ;
Minnich, Martina ;
Kragten, Natasja A. M. ;
Liao, Yang ;
Nota, Benjamin ;
Seillet, Cyril ;
Zaid, Ali ;
Man, Kevin ;
Preston, Simon ;
Freestone, David ;
Braun, Asolina ;
Wynne-Jones, Erica ;
Behr, Felix M. ;
Stark, Regina ;
Pellicci, Daniel G. ;
Godfrey, Dale I. ;
Belz, Gabrielle T. ;
Pellegrini, Marc ;
Gebhardt, Thomas ;
Busslinger, Meinrad ;
Shi, Wei ;
Carbone, Francis R. ;
van Lier, Rene A. W. ;
Kallies, Axel ;
van Gisbergen, Klaas P. J. M. .
SCIENCE, 2016, 352 (6284) :459-463
[46]   Cutting Edge: CD69 Interference with Sphingosine-1-Phosphate Receptor Function Regulates Peripheral T Cell Retention [J].
Mackay, Laura K. ;
Braun, Asolina ;
Macleod, Bethany L. ;
Collins, Nicholas ;
Tebartz, Christina ;
Bedoui, Sammy ;
Carbone, Francis R. ;
Gebhardt, Thomas .
JOURNAL OF IMMUNOLOGY, 2015, 194 (05) :2059-2063
[47]   The developmental pathway for CD103+CD8+ tissue-resident memory T cells of skin [J].
Mackay, Laura K. ;
Rahimpour, Azad ;
Ma, Joel Z. ;
Collins, Nicholas ;
Stock, Angus T. ;
Hafon, Ming-Li ;
Vega-Ramos, Javier ;
Lauzurica, Pilar ;
Mueller, Scott N. ;
Stefanovic, Tijana ;
Tscharke, David C. ;
Heath, William R. ;
Inouye, Michael ;
Carbone, Francis R. ;
Gebhardt, Thomas .
NATURE IMMUNOLOGY, 2013, 14 (12) :1294-+
[48]   Migratory DCs activate TGF-β to precondition naive CD8+ T cells for tissue-resident memory fate [J].
Mani, Vinidhra ;
Bromley, Shannon K. ;
Aijo, Tarmo ;
Mora-Buch, Rut ;
Carrizosa, Esteban ;
Warner, Ross D. ;
Hamze, Moustafa ;
Sen, Debattama R. ;
Chasse, Alexandra Y. ;
Lorant, Alina ;
Griffith, Jason W. ;
Rahimi, Rod A. ;
McEntee, Craig P. ;
Jeffrey, Kate L. ;
Marangoni, Francesco ;
Travis, Mark H. ;
Lacy-Hulbert, Adam ;
Luster, Andrew D. ;
Mempel, Thorsten R. .
SCIENCE, 2019, 366 (6462) :202-+
[49]   Holding our breath: the promise of tissue-resident memory T cells in lung cancer [J].
Marceaux, Claire ;
Weeden, Clare E. ;
Gordon, Claire L. ;
Asselin-Labat, Marie-Liesse .
TRANSLATIONAL LUNG CANCER RESEARCH, 2021, 10 (06) :2819-2829
[50]   Preferential Localization of Effector Memory Cells in Nonlymphoid Tissue [J].
Masopust, David ;
Vezys, Vaiva ;
Marzo, Amanda L. ;
Lefrancois, Leo .
JOURNAL OF IMMUNOLOGY, 2014, 192 (03) :2413-2417