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Published on: February 9, 2014
GDF3 Protects Mice against Sepsis-Induced Cardiac Dysfunction and Mortality by Suppression of Macrophage
Lu Wang1,2, Yutian Li2, Xiaohong Wang2
1Department of Critical Care Medicine, Renmin Hospital of Wuhan University, Wuhan 430060, China.
Abstract:
Macrophages are critical for regulation of inflammatory response during endotoxemia and septic shock. However, the mediators underlying their regulatory function remain obscure. Growth differentiation factor 3 (GDF3), a member of transforming growth factor beta (TGF-β) superfamily, has been implicated in inflammatory response. Nonetheless, the role of GDF3 in macrophage-regulated endotoxemia/sepsis is unknown. Here, we show that serum GDF3 levels in septic patients are elevated and strongly correlate with severity of sepsis and 28-day mortality. Interestingly, macrophages treated with recombinant GDF3 protein (rGDF3) exhibit greatly reduced production of pro-inflammatory cytokines, comparing to controls upon endotoxin challenge. Moreover, acute administration of rGDF3 to endotoxin-treated mice suppresses macrophage infiltration to the heart, attenuates systemic and cardiac inflammation with less pro-inflammatory macrophages (M1) and more anti-inflammatory macrophages (M2), as well as prolongs mouse survival. Mechanistically, GDF3 is able to activate Smad2/Smad3 phosphorylation, and consequently inhibits the expression of nod-like receptor protein-3 (NLRP3) in macrophages. Accordingly, blockade of Smad2/Smad3 phosphorylation with SB431542 significantly offsets rGDF3-mediated anti-inflammatory effects. Taken together, this study uncovers that GDF3, as a novel sepsis-associated factor, may have a dual role in the pathophysiology of sepsis. Acute administration of rGDF3 into endotoxic shock mice could increase survival outcome and improve cardiac function through anti-inflammatory response by suppression of M1 macrophage phenotype. However, constitutive high levels of GDF3 in human sepsis patients are associated with lethality, suggesting that GDF3 may promote macrophage polarization toward M2 phenotype which could lead to immunosuppression.
Insights
Growth Differentiation Factor 3 (GDF3) shows a dual role in sepsis. While acute GDF3 administration improves outcomes in mice by reducing inflammation, high GDF3 levels in patients correlate with sepsis severity and mortality.
Area of Science:
- Immunology
- Molecular Biology
- Pathophysiology
Background:
- Macrophages are key regulators of inflammatory responses in sepsis.
- Mediators controlling macrophage function in sepsis are not fully understood.
- Growth Differentiation Factor 3 (GDF3), a TGF-β superfamily member, is involved in inflammation, but its role in sepsis is unknown.
Purpose of the Study:
- To investigate the role of GDF3 in sepsis pathophysiology.
- To determine the effect of GDF3 on macrophage function during endotoxemia.
- To explore the therapeutic potential of GDF3 in sepsis models.
Main Methods:
- Measured serum GDF3 levels in septic patients.
- Treated macrophages with recombinant GDF3 (rGDF3) and challenged with endotoxin.
- Administered rGDF3 to endotoxin-treated mice.
- Analyzed macrophage infiltration, cytokine production, and M1/M2 polarization.
- Investigated the mechanistic pathway involving Smad2/Smad3 and NLRP3.
Main Results:
- Septic patients showed elevated serum GDF3 correlating with sepsis severity and mortality.
- rGDF3 treatment reduced pro-inflammatory cytokine production by macrophages.
- rGDF3 administration in mice suppressed inflammation, shifted macrophage polarization to M2, and improved survival.
- GDF3 activated Smad2/Smad3 phosphorylation, inhibiting NLRP3 expression.
Conclusions:
- GDF3 has a complex role in sepsis, acting as a novel sepsis-associated factor.
- Acute rGDF3 administration shows therapeutic potential by suppressing M1 macrophages and improving outcomes.
- Elevated GDF3 in patients may indicate immunosuppression via M2 polarization, linked to lethality.

