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1.
Annu Rev Immunol ; 40: 443-467, 2022 04 26.
Artículo en Inglés | MEDLINE | ID: mdl-35471837

RESUMEN

A principal purpose of type 2 immunity was thought to be defense against large parasites, but it also functions in the restoration of homeostasis, such as toxin clearance following snake bites. In other cases, like allergy, the type 2 T helper (Th2) cytokines and cells present in the environment are detrimental and cause diseases. In recent years, the recognition of cell heterogeneity within Th2-associated cell populations has revealed specific functions of cells with a particular phenotype or gene signature. In addition, here we discuss the recent data regarding heterogeneity of type 2 immunity-related cells, as well as their newly identified role in a variety of processes ranging from involvement in respiratory viral infections [especially in the context of the recent COVID-19 (coronavirus disease 2019) pandemic] to control of cancer development or of metabolic homeostasis.


Asunto(s)
COVID-19 , Hipersensibilidad , Animales , Citocinas/metabolismo , Homeostasis , Humanos , Linfocitos T Colaboradores-Inductores/metabolismo , Células Th2
2.
Annu Rev Immunol ; 39: 345-368, 2021 04 26.
Artículo en Inglés | MEDLINE | ID: mdl-33556247

RESUMEN

For many infections and almost all vaccines, neutralizing-antibody-mediated immunity is the primary basis and best functional correlate of immunological protection. Durable long-term humoral immunity is mediated by antibodies secreted by plasma cells that preexist subsequent exposures and by memory B cells that rapidly respond to infections once they have occurred. In the midst of the current pandemic of coronavirus disease 2019, it is important to define our current understanding of the unique roles of memory B cells and plasma cells in immunity and the factors that control the formation and persistence of these cell types. This fundamental knowledge is the basis to interpret findings from natural infections and vaccines. Here, we review transcriptional and metabolic programs that promote and support B cell fates and functions, suggesting points at which these pathways do and do not intersect.


Asunto(s)
Linfocitos B/inmunología , Linfocitos B/metabolismo , Metabolismo Energético , Regulación de la Expresión Génica , Memoria Inmunológica , Células Plasmáticas/inmunología , Células Plasmáticas/metabolismo , Animales , Biomarcadores , Diferenciación Celular/genética , Diferenciación Celular/inmunología , Supervivencia Celular/genética , Supervivencia Celular/inmunología , Centro Germinal/inmunología , Centro Germinal/metabolismo , Humanos , Memoria Inmunológica/genética , Activación de Linfocitos/genética , Activación de Linfocitos/inmunología , Transcripción Genética
3.
Annu Rev Immunol ; 39: 313-344, 2021 04 26.
Artículo en Inglés | MEDLINE | ID: mdl-33902313

RESUMEN

Tissue-resident macrophages are present in most tissues with developmental, self-renewal, or functional attributes that do not easily fit into a textbook picture of a plastic and multifunctional macrophage originating from hematopoietic stem cells; nor does it fit a pro- versus anti-inflammatory paradigm. This review presents and discusses current knowledge on the developmental biology of macrophages from an evolutionary perspective focused on the function of macrophages, which may aid in study of developmental, inflammatory, tumoral, and degenerative diseases. We also propose a framework to investigate the functions of macrophages in vivo and discuss how inherited germline and somatic mutations may contribute to the roles of macrophages in diseases.


Asunto(s)
Células Madre Hematopoyéticas , Macrófagos , Animales , Biología , Humanos
4.
Annu Rev Immunol ; 38: 147-170, 2020 04 26.
Artículo en Inglés | MEDLINE | ID: mdl-32340573

RESUMEN

Metabolism is one of the strongest drivers of interkingdom interactions-including those between microorganisms and their multicellular hosts. Traditionally thought to fuel energy requirements and provide building blocks for biosynthetic pathways, metabolism is now appreciated for its role in providing metabolites, small-molecule intermediates generated from metabolic processes, to perform various regulatory functions to mediate symbiotic relationships between microbes and their hosts. Here, we review recent advances in our mechanistic understanding of how microbiota-derived metabolites orchestrate and support physiological responses in the host, including immunity, inflammation, defense against infections, and metabolism. Understanding how microbes metabolically communicate with their hosts will provide us an opportunity to better describe how a host interacts with all microbes-beneficial, pathogenic, and commensal-and an opportunity to discover new ways to treat microbial-driven diseases.


Asunto(s)
Susceptibilidad a Enfermedades , Metabolismo Energético , Homeostasis , Microbiota , Simbiosis , Animales , Susceptibilidad a Enfermedades/inmunología , Interacciones Huésped-Patógeno , Humanos , Sistema Inmunológico/inmunología , Sistema Inmunológico/metabolismo , Microbiota/inmunología
5.
Annu Rev Immunol ; 37: 405-437, 2019 04 26.
Artículo en Inglés | MEDLINE | ID: mdl-30673535

RESUMEN

Pathogenic organisms exert a negative impact on host health, revealed by the clinical signs of infectious diseases. Immunity limits the severity of infectious diseases through resistance mechanisms that sense and target pathogens for containment, killing, or expulsion. These resistance mechanisms are viewed as the prevailing function of immunity. Under pathophysiologic conditions, however, immunity arises in response to infections that carry health and fitness costs to the host. Therefore, additional defense mechanisms are required to limit these costs, before immunity becomes operational as well as thereafter to avoid immunopathology. These are tissue damage control mechanisms that adjust the metabolic output of host tissues to different forms of stress and damage associated with infection. Disease tolerance is the term used to define this defense strategy, which does not exert a direct impact on pathogens but is essential to limit the health and fitness costs of infection. Under this argument, we propose that disease tolerance is an inherent component of immunity.


Asunto(s)
Resistencia a la Enfermedad/inmunología , Inmunidad Innata , Infecciones/inmunología , Microbiota/inmunología , Animales , Interacciones Huésped-Patógeno , Humanos , Tolerancia Inmunológica , Inmunomodulación
6.
Annu Rev Immunol ; 36: 309-338, 2018 04 26.
Artículo en Inglés | MEDLINE | ID: mdl-29677470

RESUMEN

The complement system is an evolutionarily ancient key component of innate immunity required for the detection and removal of invading pathogens. It was discovered more than 100 years ago and was originally defined as a liver-derived, blood-circulating sentinel system that classically mediates the opsonization and lytic killing of dangerous microbes and the initiation of the general inflammatory reaction. More recently, complement has also emerged as a critical player in adaptive immunity via its ability to instruct both B and T cell responses. In particular, work on the impact of complement on T cell responses led to the surprising discoveries that the complement system also functions within cells and is involved in regulating basic cellular processes, predominantly those of metabolic nature. Here, we review current knowledge about complement's role in T cell biology, with a focus on the novel intracellular and noncanonical activities of this ancient system.


Asunto(s)
Proteínas del Sistema Complemento/inmunología , Inmunomodulación , Linfocitos T/inmunología , Linfocitos T/metabolismo , Inmunidad Adaptativa , Animales , Autoinmunidad , Linfocitos B/inmunología , Linfocitos B/metabolismo , Activación de Complemento/inmunología , Metabolismo Energético , Interacciones Huésped-Patógeno/inmunología , Humanos , Inmunidad Celular , Proteína Cofactora de Membrana/metabolismo , Células TH1/inmunología , Células TH1/metabolismo
7.
Annu Rev Immunol ; 36: 221-246, 2018 04 26.
Artículo en Inglés | MEDLINE | ID: mdl-29328786

RESUMEN

Researchers are intensifying efforts to understand the mechanisms by which changes in metabolic states influence differentiation programs. An emerging objective is to define how fluctuations in metabolites influence the epigenetic states that contribute to differentiation programs. This is because metabolites such as S-adenosylmethionine, acetyl-CoA, α-ketoglutarate, 2-hydroxyglutarate, and butyrate are donors, substrates, cofactors, and antagonists for the activities of epigenetic-modifying complexes and for epigenetic modifications. We discuss this topic from the perspective of specialized CD4+ T cells as well as effector and memory T cell differentiation programs. We also highlight findings from embryonic stem cells that give mechanistic insight into how nutrients processed through pathways such as glycolysis, glutaminolysis, and one-carbon metabolism regulate metabolite levels to influence epigenetic events and discuss similar mechanistic principles in T cells. Finally, we highlight how dysregulated environments, such as the tumor microenvironment, might alter programming events.


Asunto(s)
Diferenciación Celular/genética , Diferenciación Celular/inmunología , Metabolismo Energético , Epigénesis Genética , Animales , Biomarcadores , Regulación del Desarrollo de la Expresión Génica , Humanos , Neoplasias/etiología , Neoplasias/metabolismo , Linfocitos T/inmunología , Linfocitos T/metabolismo , Microambiente Tumoral/genética , Microambiente Tumoral/inmunología
8.
Annu Rev Biochem ; 93(1): 447-469, 2024 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-38603559

RESUMEN

Lysosomes catabolize and recycle lipids and other biological molecules to maintain cellular homeostasis in diverse nutrient environments. Lysosomal lipid catabolism relies on the stimulatory activity of bis(monoacylglycero)phosphate (BMP), an enigmatic lipid whose levels are altered across myriad lysosome-associated diseases. Here, we review the discovery of BMP over half a century ago and its structural properties that facilitate the activation of lipid hydrolases and recruitment of their coactivators. We further discuss the current, yet incomplete, understanding of BMP catabolism and anabolism. To conclude, we discuss its role in lysosome-associated diseases and the potential for modulating its levels by pharmacologically activating and inhibiting the BMP synthase to therapeutically target lysosomal storage disorders, drug-induced phospholipidosis, Alzheimer's disease, Parkinson's disease, frontotemporal dementia, cancer, and viral infection.


Asunto(s)
Lisofosfolípidos , Enfermedades por Almacenamiento Lisosomal , Lisosomas , Monoglicéridos , Humanos , Lisosomas/metabolismo , Lisofosfolípidos/metabolismo , Monoglicéridos/metabolismo , Monoglicéridos/química , Animales , Enfermedades por Almacenamiento Lisosomal/metabolismo , Enfermedades por Almacenamiento Lisosomal/patología , Enfermedades por Almacenamiento Lisosomal/genética , Enfermedades por Almacenamiento Lisosomal/tratamiento farmacológico , Neoplasias/metabolismo , Neoplasias/tratamiento farmacológico , Neoplasias/genética , Enfermedad de Alzheimer/metabolismo , Enfermedad de Alzheimer/tratamiento farmacológico , Enfermedad de Alzheimer/patología , Enfermedad de Alzheimer/genética , Metabolismo de los Lípidos
9.
Annu Rev Biochem ; 93(1): 317-338, 2024 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-39094034

RESUMEN

Discovered in 1993, inositol pyrophosphates are evolutionarily conserved signaling metabolites whose versatile modes of action are being increasingly appreciated. These include their emerging roles as energy regulators, phosphodonors, steric/allosteric regulators, and G protein-coupled receptor messengers. Through studying enzymes that metabolize inositol pyrophosphates, progress has also been made in elucidating the various cellular and physiological functions of these pyrophosphate-containing, energetic molecules. The two main forms of inositol pyrophosphates, 5-IP7 and IP8, synthesized respectively by inositol-hexakisphosphate kinases (IP6Ks) and diphosphoinositol pentakisphosphate kinases (PPIP5Ks), regulate phosphate homeostasis, ATP synthesis, and several other metabolic processes ranging from insulin secretion to cellular energy utilization. Here, we review the current understanding of the catalytic and regulatory mechanisms of IP6Ks and PPIP5Ks, as well as their counteracting phosphatases. We also highlight the genetic and cellular evidence implicating inositol pyrophosphates as essential mediators of mammalian metabolic homeostasis.


Asunto(s)
Fosfatos de Inositol , Fosfotransferasas (Aceptor del Grupo Fosfato) , Transducción de Señal , Humanos , Fosfatos de Inositol/metabolismo , Animales , Fosfotransferasas (Aceptor del Grupo Fosfato)/metabolismo , Fosfotransferasas (Aceptor del Grupo Fosfato)/genética , Homeostasis , Metabolismo Energético , Adenosina Trifosfato/metabolismo , Monoéster Fosfórico Hidrolasas/metabolismo , Monoéster Fosfórico Hidrolasas/genética
10.
Annu Rev Immunol ; 35: 199-228, 2017 04 26.
Artículo en Inglés | MEDLINE | ID: mdl-28142322

RESUMEN

Commensal microorganisms (the microbiota) live on all the surface barriers of our body and are particularly abundant and diverse in the distal gut. The microbiota and its larger host represent a metaorganism in which the cross talk between microbes and host cells is necessary for health, survival, and regulation of physiological functions locally, at the barrier level, and systemically. The ancestral molecular and cellular mechanisms stemming from the earliest interactions between prokaryotes and eukaryotes have evolved to mediate microbe-dependent host physiology and tissue homeostasis, including innate and adaptive resistance to infections and tissue repair. Mostly because of its effects on metabolism, cellular proliferation, inflammation, and immunity, the microbiota regulates cancer at the level of predisposing conditions, initiation, genetic instability, susceptibility to host immune response, progression, comorbidity, and response to therapy. Here, we review the mechanisms underlying the interaction of the microbiota with cancer and the evidence suggesting that the microbiota could be targeted to improve therapy while attenuating adverse reactions.


Asunto(s)
Inmunidad Innata , Inmunoterapia/métodos , Mucosa Intestinal/inmunología , Microbiota/inmunología , Neoplasias/inmunología , Inmunidad Adaptativa , Animales , Antineoplásicos/uso terapéutico , Carcinogénesis , Humanos , Inflamación , Neoplasias/microbiología , Neoplasias/terapia , Cicatrización de Heridas
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