The causes and consequences of trained immunity in myeloid cells

被引:14
作者
Bhargavi, Gunapati [1 ]
Subbian, Selvakumar [1 ]
机构
[1] Rutgers State Univ, Publ Hlth Res Inst, New Jersey Med Sch, Newark, NJ 07102 USA
基金
美国国家卫生研究院;
关键词
inflammation; macrophage; neutrophil; epigenetics; metabolism; cell signaling; innate immunity; animal models; CANDIDA-ALBICANS; INNATE IMMUNITY; BCG VACCINATION; BETA-GLUCAN; ADAPTIVE IMMUNITY; MEMORY; INFECTION; EXERCISE; INDUCTION; IMMUNOMODULATION;
D O I
10.3389/fimmu.2024.1365127
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
100102 ;
摘要
Conventionally, immunity in humans has been classified as innate and adaptive, with the concept that only the latter type has an immunological memory/recall response against specific antigens or pathogens. Recently, a new concept of trained immunity (a.k.a. innate memory response) has emerged. According to this concept, innate immune cells can exhibit enhanced responsiveness to subsequent challenges, after initial stimulation with antigen/pathogen. Thus, trained immunity enables the innate immune cells to respond robustly and non-specifically through exposure or re-exposure to antigens/infections or vaccines, providing enhanced resistance to unrelated pathogens or reduced infection severity. For example, individuals vaccinated with BCG to protect against tuberculosis were also protected from malaria and SARS-CoV-2 infections. Epigenetic modifications such as histone acetylation and metabolic reprogramming (e.g. shift towards glycolysis) and their inter-linked regulations are the key factors underpinning the immune activation of trained cells. The integrated metabolic and epigenetic rewiring generates sufficient metabolic intermediates, which is crucial to meet the energy demand required to produce proinflammatory and antimicrobial responses by the trained cells. These factors also determine the efficacy and durability of trained immunity. Importantly, the signaling pathways and regulatory molecules of trained immunity can be harnessed as potential targets for developing novel intervention strategies, such as better vaccines and immunotherapies against infectious (e.g., sepsis) and non-infectious (e.g., cancer) diseases. However, aberrant inflammation caused by inappropriate onset of trained immunity can lead to severe autoimmune pathological consequences, (e.g., systemic sclerosis and granulomatosis). In this review, we provide an overview of conventional innate and adaptive immunity and summarize various mechanistic factors associated with the onset and regulation of trained immunity, focusing on immunologic, metabolic, and epigenetic changes in myeloid cells. This review underscores the transformative potential of trained immunity in immunology, paving the way for developing novel therapeutic strategies for various infectious and non-infectious diseases that leverage innate immune memory.
引用
收藏
页数:20
相关论文
共 145 条
[1]   Saving lives by training innate immunity with bacille Calmette-Guerin vaccine [J].
Aaby, Peter ;
Benn, Christine Stabell .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2012, 109 (43) :17317-17318
[2]   Randomized Trial of BCG Vaccination at Birth to Low-Birth-Weight Children: Beneficial Nonspecific Effects in the Neonatal Period? [J].
Aaby, Peter ;
Roth, Adam ;
Ravn, Henrik ;
Napirna, Bitiguida Mutna ;
Rodrigues, Amabelia ;
Lisse, Ida Maria ;
Stensballe, Lone ;
Diness, Birgitte Rode ;
Lausch, Karen Rokkedal ;
Lund, Najaaraq ;
Biering-Sorensen, Sofie ;
Whittle, Hilton ;
Benn, Christine Stabell .
JOURNAL OF INFECTIOUS DISEASES, 2011, 204 (02) :245-252
[3]   Molecular and Cellular Mechanisms Modulating Trained Immunity by Various Cell Types in Response to Pathogen Encounter [J].
Acevedo, Orlando A. ;
Berrios, Roslye, V ;
Rodriguez-Guilarte, Linmar ;
Lillo-Dapremont, Bastian ;
Kalergis, Alexis M. .
FRONTIERS IN IMMUNOLOGY, 2021, 12
[4]   Epigenetic Memories in Hematopoietic Stem and Progenitor Cells [J].
Aoyama, Kazumasa ;
Itokawa, Naoki ;
Oshima, Motohiko ;
Iwama, Atsushi .
CELLS, 2022, 11 (14)
[5]   BCG Vaccination Protects against Experimental Viral Infection in Humans through the Induction of Cytokines Associated with Trained Immunity [J].
Arts, Rob J. W. ;
Moorlag, Simone J. C. F. M. ;
Novakovic, Boris ;
Li, Yang ;
Wang, Shuang-Yin ;
Oosting, Marije ;
Kumar, Vinod ;
Xavier, Ramnik J. ;
Wijmenga, Cisca ;
Joosten, Leo A. B. ;
Reusken, Chantal B. E. M. ;
Benn, Christine S. ;
Aaby, Peter ;
Koopmans, Marion P. ;
Stunnenberg, Hendrik G. ;
van Crevel, Reinout ;
Netea, Mihai G. .
CELL HOST & MICROBE, 2018, 23 (01) :89-+
[6]   Glutaminolysis and Fumarate Accumulation Integrate Immunometabolic and Epigenetic Programs in Trained Immunity [J].
Arts, Rob J. W. ;
Novakovic, Boris ;
ter Horst, Rob ;
Carvalho, Agostinho ;
Bekkering, Siroon ;
Lachmandas, Ekta ;
Rodrigues, Fernando ;
Silvestre, Ricardo ;
Cheng, Shih-Chin ;
Wang, Shuang-Yin ;
Habibi, Ehsan ;
Goncalves, Luis G. ;
Mesquita, Ines ;
Cunha, Cristina ;
van Laarhoven, Arjan ;
van de Veerdonk, Frank L. ;
Williams, David L. ;
van der Meer, Jos W. M. ;
Logie, Colin ;
O'Neill, Luke A. ;
Dinarello, Charles A. ;
Riksen, Niels P. ;
van Crevel, Reinout ;
Clish, Clary ;
Notebaart, Richard A. ;
Joosten, Leo A. B. ;
Stunnenberg, Hendrik G. ;
Xavier, Ramnik J. ;
Netea, Mihai G. .
CELL METABOLISM, 2016, 24 (06) :807-819
[7]   Immunometabolic Pathways in BCG-Induced Trained Immunity [J].
Arts, Rob J. W. ;
Carvalho, Agostinho ;
La Rocca, Claudia ;
Palma, Carla ;
Rodrigues, Fernando ;
Silvestre, Ricardo ;
Kleinnijenhuis, Johanneke ;
Lachmandas, Ekta ;
Goncalves, Luis G. ;
Belinha, Ana ;
Cunha, Cristina ;
Oosting, Marije ;
Joosten, Leo A. B. ;
Matarese, Giuseppe ;
van Crevel, Reinout ;
Netea, Mihai G. .
CELL REPORTS, 2016, 17 (10) :2562-2571
[8]   Immunometabolic circuits in trained immunity [J].
Arts, Rob J. W. ;
Joosten, Leo A. B. ;
Netea, Mihai G. .
SEMINARS IN IMMUNOLOGY, 2016, 28 (05) :425-430
[9]   Active and passive immunity, vaccine types, excipients and licensing [J].
Baxter, David .
OCCUPATIONAL MEDICINE-OXFORD, 2007, 57 (08) :552-556
[10]   Metabolic Induction of Trained Immunity through the Mevalonate Pathway [J].
Bekkering, Siroon ;
Arts, Rob J. W. ;
Novakovic, Boris ;
Kourtzelis, Ioannis ;
van der Heijden, Charlotte D. C. C. ;
Li, Yang ;
Popa, Calin D. ;
ter Horst, Rob ;
van Tuijl, Julia ;
Netea-Maier, Romana T. ;
de Veerdonk, Frank L. van ;
Chavakis, Triantafyllos ;
Joosten, Leo A. B. ;
van der Meer, Jos W. M. ;
Stunnenberg, Henk ;
Riksen, Niels P. ;
Netea, Mihai G. .
CELL, 2018, 172 (1-2) :135-+