Lysine methyltransferase SET7 links cardiometabolic risk to endothelial dysfunction by dysregulating mRNA splicing and eNOS-CaM interaction
Sanchez-Ceinos, J.; Filis, G.; Zhang, J.; Jakobsson, M. E.; Vegvari, A.; Luk, C.; Carlestal, E.; Hagberg, C.; Kövamees, O.; Cosentino, F.
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BACKGROUNDLysine methyltransferase SET7 activates gene expression through mono- methylation of histone H3 at lysine 4 (H3K4me1) and modulates protein function via mono- methylation of non-histone proteins (Kme1). However, its role and molecular targets in endothelial dysfunction associated with cardiometabolic disorders remain unknown. METHODSEndothelial-specific Setd7 knockout (Setd7EC-KO) mice were generated and endothelial function assessed in WT and Setd7EC-KO mice after high-fat diet (HFD). Human aortic endothelial cells (HAECs) were used to investigate SET7 expression and function under metabolic stress. SET7-dependent histone and non-histone targets were identified by proteomic and ChIP analyses. Insights from these datasets guided the design of bioinformatic, molecular, and functional studies to define their regulatory mechanisms. Clinical relevance was evaluated in human arteries. RESULTSHFD selectively increased endothelial SET7 expression in WT mouse aortas. Despite comparable metabolic abnormalities, Setd7EC-KO mice were protected from HFD- induced endothelial dysfunction, oxidative stress, and inflammation. In HAECs, high glucose emerged as the strongest inducer of SET7 expression, promoting pro-inflammatory and pro- oxidant gene expression, monocyte adhesion, and ROS generation. These effects were reproduced by overexpression of catalytically active SET7 and reversed by its inhibition or silencing. Proteomic and ChIP analyses revealed that SET7-dependent H3K4me1 activates transcription of spliceosome components, linking aberrant mRNA splicing to endothelial inflammation and oxidative stress. Moreover, Kme1-proteomics identified endothelial nitric oxide synthase (eNOS) as a direct SET7 substrate. Bioinformatic analyses and mutagenesis experiments demonstrated that SET7-mediated mono-methylation of eNOS at K494 disrupts calmodulin (CaM) binding and impairs NO synthesis. These molecular signatures were also observed in internal mammary arteries from patients with vascular disease and hyperglycemia. CONCLUSIONSSET7 drives endothelial dysfunction through a dual mechanism: 1) H3K4me1-dependent activation of splicing machinery triggering inflammation and oxidative stress, and 2) eNOS mono-methylation at K494 reducing NO bioavailability. Targeting SET7 may therefore represent a promising avenue to safeguard endothelial homeostasis in cardiometabolic disease. GRAPHIC ABSTRACTA graphic abstract is available for this article.
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