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Multistability in macrophage activation pathways and metabolic implications

dc.creatorGeiß, Carsten
dc.creatorSalas Hidalgo, Elvira
dc.creatorGuevara Coto, José Andrés
dc.creatorRégnier Vigouroux, Anne
dc.creatorMora Rodríguez, Rodrigo Antonio
dc.date.accessioned2024-11-22T20:10:28Z
dc.date.available2024-11-22T20:10:28Z
dc.date.issued2022
dc.description.abstractMacrophages are innate immune cells with a dynamic range of reversible activation states including the classical pro-inflammatory (M1) and alternative anti-inflammatory (M2) states. Deciphering how macrophages regulate their transition from one state to the other is key for a deeper understanding of inflammatory diseases and relevant therapies. Common regulatory motifs reported for macrophage transitions, such as positive or double-negative feedback loops, exhibit a switchlike behavior, suggesting the bistability of the system. In this review, we explore the evidence for multistability (including bistability) in macrophage activation pathways at four molecular levels. First, a decision-making module in signal transduction includes mutual inhibitory interactions between M1 (STAT1, NF-KB/p50-p65) and M2 (STAT3, NF-KB/p50-p50) signaling pathways. Second, a switchlike behavior at the gene expression level includes complex network motifs of transcription factors and miRNAs. Third, these changes impact metabolic gene expression, leading to switches in energy production, NADPH and ROS production, TCA cycle functionality, biosynthesis, and nitrogen metabolism. Fourth, metabolic changes are monitored by metabolic sensors coupled to AMPK and mTOR activity to provide stability by maintaining signals promoting M1 or M2 activation. In conclusion, we identify bistability hubs as promising therapeutic targets for reverting or blocking macrophage transitions through modulation of the metabolic environment.
dc.description.procedenceUCR::Vicerrectoría de Docencia::Salud::Facultad de Medicina
dc.description.procedenceUCR::Vicerrectoría de Docencia::Ingeniería::Facultad de Ingeniería::Escuela de Ciencias de la Computación e Informática
dc.description.procedenceUCR::Vicerrectoría de Investigación::Unidades de Investigación::Ingeniería::Centro de Investigaciones en Tecnologías de Información y Comunicación (CITIC)
dc.description.procedenceUCR::Vicerrectoría de Investigación::Unidades de Investigación::Ciencias de la Salud::Centro de Investigación en Cirugía y Cáncer (CICICA)
dc.description.procedenceUCR::Vicerrectoría de Investigación::Unidades de Investigación::Ciencias de la Salud::Centro de Investigación en Enfermedades Tropicales (CIET)
dc.identifier.doihttps://doi.org/10.3390/cells11030404
dc.identifier.issn2073-4409
dc.identifier.urihttps://hdl.handle.net/10669/100125
dc.language.isoeng
dc.rightsacceso abierto
dc.sourceCells, 11(3), 1-26
dc.subjectMACROPHAGE
dc.subjectBISTABILITY
dc.subjectMULTISTABILITY
dc.subjectMETABOLISM
dc.subjectSYSTEMS BIOLOGY
dc.titleMultistability in macrophage activation pathways and metabolic implications
dc.typeartículo original

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