Histone Deacetylase 9 Activates IKK to Regulate Atherosclerotic Plaque Vulnerability

Author:

Asare Yaw1,Campbell-James Thomas A.1,Bokov Yury1,Yu Lydia Luya1,Prestel Matthias1,El Bounkari Omar1,Roth Stefan1,Megens Remco T.A.23,Straub Tobias4,Thomas Kyra1,Yan Guangyao1,Schneider Melanie1,Ziesch Natalie1,Tiedt Steffen1,Silvestre-Roig Carlos2,Braster Quinte2,Huang Yishu1,Schneider Manuela1,Malik Rainer1,Haffner Christof1,Liesz Arthur15,Soehnlein Oliver267,Bernhagen Jürgen156,Dichgans Martin15ORCID

Affiliation:

1. From the Institute for Stroke and Dementia Research, University Hospital (Y.A., T.A.C.-J., Y.B., L.L.Y., M.P., O.E.B., S.R., K.T., G.Y., M.S., N.Z., S.T., Y.H., M.S., R.M., C.H., A.L., J.B., M.D.), Ludwig-Maximilians-University, Munich, Germany

2. Institute for Cardiovascular Prevention (R.T.A.M., C.S.-R., Q.B., O.S.), Ludwig-Maximilians-University, Munich, Germany

3. Department of Biomedical Engineering, Cardiovascular Research Institute Maastricht, Maastricht University, the Netherlands (R.T.A.M.)

4. BMC, Core Facility Bioinformatics Munich, Germany (T.S.)

5. Munich Cluster for Systems Neurology, Germany (A.L., J.B., M.D.)

6. German Center for Cardiovascular Research, Partner Site Munich Heart Alliance (O.S., J.B.)

7. Department of Physiology and Pharmacology, Karolinska Institute, Stockholm, Sweden (O.S.).

Abstract

Rationale: Arterial inflammation manifested as atherosclerosis is the leading cause of mortality worldwide. Genome-wide association studies have identified a prominent role of HDAC (histone deacetylase)-9 in atherosclerosis and its clinical complications including stroke and myocardial infarction. Objective: To determine the mechanisms linking HDAC9 to these vascular pathologies and explore its therapeutic potential for atheroprotection. Methods and Results: We studied the effects of Hdac9 on features of plaque vulnerability using bone marrow reconstitution experiments and pharmacological targeting with a small molecule inhibitor in hyperlipidemic mice. We further used 2-photon and intravital microscopy to study endothelial activation and leukocyte-endothelial interactions. We show that hematopoietic Hdac9 deficiency reduces lesional macrophage content while increasing fibrous cap thickness thus conferring plaque stability. We demonstrate that HDAC9 binds to IKK (inhibitory kappa B kinase)-α and β, resulting in their deacetylation and subsequent activation, which drives inflammatory responses in both macrophages and endothelial cells. Pharmacological inhibition of HDAC9 with the class IIa HDAC inhibitor TMP195 attenuates lesion formation by reducing endothelial activation and leukocyte recruitment along with limiting proinflammatory responses in macrophages. Transcriptional profiling using RNA sequencing revealed that TMP195 downregulates key inflammatory pathways consistent with inhibitory effects on IKKβ. TMP195 mitigates the progression of established lesions and inhibits the infiltration of inflammatory cells. Moreover, TMP195 diminishes features of plaque vulnerability and thereby enhances plaque stability in advanced lesions. Ex vivo treatment of monocytes from patients with established atherosclerosis reduced the production of inflammatory cytokines including IL (interleukin)-1β and IL-6. Conclusions: Our findings identify HDAC9 as a regulator of atherosclerotic plaque stability and IKK activation thus providing a mechanistic explanation for the prominence of HDAC9 as a vascular risk locus in genome-wide association studies. Its therapeutic inhibition may provide a potent lever to alleviate vascular inflammation. Graphical Abstract: A graphical abstract is available for this article.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Cardiology and Cardiovascular Medicine,Physiology

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