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Endothelial Nogo-B regulates sphingolipid biosynthesis to promote pathological cardiac hypertrophy during chronic pressure overload
Yi Zhang, Yan Huang, Anna Cantalupo, Paula S. Azevedo, Mauro Siragusa, Jacek Bielawski, Frank J. Giordano, Annarita Di Lorenzo
Yi Zhang, Yan Huang, Anna Cantalupo, Paula S. Azevedo, Mauro Siragusa, Jacek Bielawski, Frank J. Giordano, Annarita Di Lorenzo
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Research Article Cardiology Vascular biology

Endothelial Nogo-B regulates sphingolipid biosynthesis to promote pathological cardiac hypertrophy during chronic pressure overload

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Abstract

We recently discovered that endothelial Nogo-B, a membrane protein of the ER, regulates vascular function by inhibiting the rate-limiting enzyme, serine palmitoyltransferase (SPT), in de novo sphingolipid biosynthesis. Here, we show that endothelium-derived sphingolipids, particularly sphingosine-1-phosphate (S1P), protect the heart from inflammation, fibrosis, and dysfunction following pressure overload and that Nogo-B regulates this paracrine process. SPT activity is upregulated in banded hearts in vivo as well as in TNF-α–activated endothelium in vitro, and loss of Nogo removes the brake on SPT, increasing local S1P production. Hence, mice lacking Nogo-B, systemically or specifically in the endothelium, are resistant to the onset of pathological cardiac hypertrophy. Furthermore, pharmacological inhibition of SPT with myriocin restores permeability, inflammation, and heart dysfunction in Nogo-A/B–deficient mice to WT levels, whereas SEW2871, an S1P1 receptor agonist, prevents myocardial permeability, inflammation, and dysfunction in WT banded mice. Our study identifies a critical role of endothelial sphingolipid biosynthesis and its regulation by Nogo-B in the development of pathological cardiac hypertrophy and proposes a potential therapeutic target for the attenuation or reversal of this clinical condition.

Authors

Yi Zhang, Yan Huang, Anna Cantalupo, Paula S. Azevedo, Mauro Siragusa, Jacek Bielawski, Frank J. Giordano, Annarita Di Lorenzo

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Figure 4

Nogo-A/B–deficient mice were resistant to myocardial permeability, inflammation, and fibrosis.

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Nogo-A/B–deficient mice were resistant to myocardial permeability, infla...
(A) Assessment of the endothelial barrier functions by measuring the resistance (Ω) of primary cultures of WT and Nogo-A/B–deficient endothelial cells using the Electric Cell-Substrate Impedance Sensing System. n = 14 replicates from 4 independent endothelial cell isolations/group. (B) Myocardial permeability was assessed by quantifying the extravasation of Evans Blue dye into the hearts of sham- or transverse aortic constriction–operated (TAC-operated) WT and Nogo-A/B–deficient mice and was expressed as μg/mg dry heart weight. n ≥ 6/group. (C) Images and (D) quantification of immunohistochemical staining of CD45 in heart sections from WT and Nogo-A/B–deficient mice at 3 days after TAC. Scale bar: 100 μm. n ≥ 9/group. (E) Masson’s trichrome staining of cardiac fibrosis in TAC- or sham-operated WT and Nogo-A/B–deficient mice at indicated time points. Scale bar: 200 μm. Real-time PCR analysis of expression of fibrosis-related genes (F) collagen type I α 1 (Col1a1), (G) collagen type 3 α 1 (Col3a1), and (H) Tgfb in sham or 2 weeks banded WT and Nogo-A/B–deficient hearts. Gapdh served as internal control. Data were normalized to sham group. n ≥ 9/group. Data are expressed as mean ± SEM. **P < 0.01, ***P < 0.001 compared with WT or as otherwise indicated. Statistical significance was determined by unpaired t test (A and D) or 1-way ANOVA followed by Tukey’s multiple comparison test (B and F–H).

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