BACKGROUND: Macrophage migration inhibitory factor (MIF) is a structurally unique inflammatory cytokine that controls cellular signaling in human physiology and disease through extra- and intracellular processes. Macrophage migration inhibitory factor has been shown to mediate both disease-exacerbating and beneficial effects, but the underlying mechanism(s) controlling these diverse functions are poorly understood. METHODS AND RESULTS: Here, we have identified an S-nitros(yl)ation modification of MIF that regulates the protective functional phenotype of MIF in myocardial reperfusion injury. Macrophage migration inhibitory factor contains 3 cysteine (Cys) residues; using recombinant wtMIF and site-specific MIF mutants, we have identified that Cys-81 is modified by S-nitros(yl)ation whereas the CXXC-derived Cys residues of MIF remained unaffected. The selective S-nitrosothiol formation at Cys-81 led to a doubling of the oxidoreductase activity of MIF. Importantly, S-nitrosothiol-MIF formation was measured both in vitro and in vivo and led to a decrease in cardiomyocyte apoptosis in the reperfused heart. This decrease was paralleled by a S-nitrosothiol-MIF- but not Cys81 serine (Ser)-MIF mutant-dependent reduction of infarct size in an in vivo model of myocardial ischemia/reperfusion injury. CONCLUSIONS: S-nitros(yl)ation of MIF is a pivotal novel regulatory mechanism, providing enhanced activity resulting in increased cytoprotection in myocardial reperfusion injury.
BACKGROUND:Macrophage migration inhibitory factor (MIF) is a structurally unique inflammatory cytokine that controls cellular signaling in human physiology and disease through extra- and intracellular processes. Macrophage migration inhibitory factor has been shown to mediate both disease-exacerbating and beneficial effects, but the underlying mechanism(s) controlling these diverse functions are poorly understood. METHODS AND RESULTS: Here, we have identified an S-nitros(yl)ation modification of MIF that regulates the protective functional phenotype of MIF in myocardial reperfusion injury. Macrophage migration inhibitory factor contains 3 cysteine (Cys) residues; using recombinant wtMIF and site-specific MIF mutants, we have identified that Cys-81 is modified by S-nitros(yl)ation whereas the CXXC-derived Cys residues of MIF remained unaffected. The selective S-nitrosothiol formation at Cys-81 led to a doubling of the oxidoreductase activity of MIF. Importantly, S-nitrosothiol-MIF formation was measured both in vitro and in vivo and led to a decrease in cardiomyocyte apoptosis in the reperfused heart. This decrease was paralleled by a S-nitrosothiol-MIF- but not Cys81 serine (Ser)-MIF mutant-dependent reduction of infarct size in an in vivo model of myocardial ischemia/reperfusion injury. CONCLUSIONS:S-nitros(yl)ation of MIF is a pivotal novel regulatory mechanism, providing enhanced activity resulting in increased cytoprotection in myocardial reperfusion injury.
Authors: Ioanna Andreadou; Hector A Cabrera-Fuentes; Yvan Devaux; Nikolaos G Frangogiannis; Stefan Frantz; Tomasz Guzik; Elisa A Liehn; Clarissa P C Gomes; Rainer Schulz; Derek J Hausenloy Journal: Cardiovasc Res Date: 2019-06-01 Impact factor: 10.787
Authors: Michael Thiele; Randolf J Kerschbaumer; Frederick W K Tam; Dirk Völkel; Patrice Douillard; Alexander Schinagl; Harald Kühnel; Jennifer Smith; John P McDaid; Gurjeet Bhangal; Mei-Ching Yu; Charles D Pusey; H Terence Cook; Josef Kovarik; Erica Magelky; Atul Bhan; Manfred Rieger; Geert C Mudde; Hartmut Ehrlich; Bernd Jilma; Herbert Tilg; Alexander Moschen; Cox Terhorst; Friedrich Scheiflinger Journal: J Immunol Date: 2015-07-24 Impact factor: 5.422
Authors: Christian Stoppe; Thilo Werker; Rolf Rossaint; Florian Dollo; Hongqi Lue; Willibald Wonisch; Ares Menon; Andreas Goetzenich; Christian S Bruells; Mark Coburn; Rüdger Kopp; Richard Bucala; Jürgen Bernhagen; Steffen Rex Journal: Antioxid Redox Signal Date: 2013-01-09 Impact factor: 8.401
Authors: Sylvia Hiller; Robert DeKroon; Eric D Hamlett; Longquan Xu; Cristina Osorio; Jennifer Robinette; Witold Winnik; Stephen Simington; Nobuyo Maeda; Oscar Alzate; Xianwen Yi Journal: Biochim Biophys Acta Date: 2015-09-04