Liver-Specific siRNA-Mediated Stat3 or C3 Knockdown Improves the Outcome of Experimental Autoimmune Myocarditis
MOLECULAR THERAPY-METHODS & CLINICAL DEVELOPMENT
Authors: Avalle, Lidia; Marino, Francesca; Camporeale, Annalisa; Guglielmi, Chiara; Viavattene, Daniele; Bandini, Silvio; Conti, Laura; Cimino, James; Forni, Marco; Zanini, Cristina; Ghigo, Alessandra; Bogorad, Roman L.; Cavallo, Federica; Provero, Paolo; Koteliansky, Victor; Poli, Valeria
Abstract
Myocarditis can lead to autoimmune disease, dilated cardiomyopathy, and heart failure, which is modeled in the mouse by cardiac myosin immunization (experimental autoimmune myocarditis [EAM]). Signal transducer and activator of transcription 3 (STAT3) systemic inhibition exerts both preventive and therapeutic effects in EAM, and STAT3 constitutive activation elicits immune-mediated myocarditis dependent on complement C3 and correlating with activation of the STAT3-interleukin 6 (IL-6) axis in the liver. Thus, liver-specific STAT3 inhibition may represent a therapeutic option, allowing to bypass the heart toxicity, predicted by systemic STAT3 inhibition. We therefore decided to explore the effectiveness of silencing liver Stat3 and C3 in preventing EAM onset and/or the recovery of cardiac functions. We first show that complement C3 and C5 genetic depletion significantly prevents the onset of spontaneous myocarditis, supporting the complement cascade as a viable target. In order to interfere with complement production and STAT3 activity specifically in the liver, we took advantage of liver-specific Stat3 or C3 small interfering (si)RNA nanoparticles, demonstrating that both siRNAs can significantly prevent myocarditis onset and improve the recovery of heart functions in EAM. Our data demonstrate that liver-specific Stat3/C3 siRNAs may represent a therapeutic option for autoimmune myocarditis and suggest that complement levels and activation might be predictive of progression to dilated cardiomyopathy.
A stabilized glycomimetic conjugate vaccine inducing protective antibodies against Neisseria meningitidis serogroup A
NATURE COMMUNICATIONS
Authors: Enotarpi, Jacopo; Tontini, Marta; Balocchi, Cristiana; van der Es, Daan; Auberger, Ludovic; Balducci, Evita; Carboni, Filippo; Proietti, Daniela; Casini, Daniele; Filippov, Dmitri, V; Overkleeft, Hermen S.; van der Marel, Gijsbert A.; Colombo, Cinzia; Romano, Maria Rosaria; Berti, Francesco; Costantino, Paolo; Codee, Jeroen D. C.; Lay, Luigi; Adamo, Roberto
Abstract
Neisseria meningitidis serogroup A capsular polysaccharide (MenA CPS) consists of (1 -> 6)-2-acetamido-2-deoxy-alpha-D-mannopyranosyl phosphate repeating units, O-acetylated at position C3 or C4. Glycomimetics appear attractive to overcome the CPS intrinsic lability in physiological media, due to cleavage of the phosphodiester bridge, and to develop a stable vaccine with longer shelf life in liquid formulation. Here, we generate a series of non-acetylated carbaMenA oligomers which are proven more stable than the CPS. An octamer (DP8) inhibits the binding of a MenA specific bactericidal mAb and polyclonal serum to the CPS, and is selected for further in vivo testing. However, its CRM197 conjugate raises murine antibodies towards the non-acetylated CPS backbone, but not the natural acetylated form. Accordingly, random O-acetylation of the DP8 is performed, resulting in a structure (Ac-carbaMenA) showing improved inhibition of anti-MenA CPS antibody binding and, after conjugation to CRM197, eliciting anti-MenA protective murine antibodies, comparably to the vaccine benchmark.