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Short-term disruption of TGF-β signaling in adult mice renders the aorta vulnerable to hypertension-induced dissection
Bo Jiang, Pengwei Ren, Changshun He, Mo Wang, Sae-Il Murtada, María Jesús Ruiz-Rodríguez, Yu Chen, Abhay B. Ramachandra, Guangxin Li, Lingfeng Qin, Roland Assi, Martin A. Schwartz, Jay D. Humphrey, George Tellides
Bo Jiang, Pengwei Ren, Changshun He, Mo Wang, Sae-Il Murtada, María Jesús Ruiz-Rodríguez, Yu Chen, Abhay B. Ramachandra, Guangxin Li, Lingfeng Qin, Roland Assi, Martin A. Schwartz, Jay D. Humphrey, George Tellides
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Research Article Cell biology Vascular biology

Short-term disruption of TGF-β signaling in adult mice renders the aorta vulnerable to hypertension-induced dissection

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Abstract

Hypertension and transient increases in blood pressure from extreme exertion are risk factors for aortic dissection in patients with age-related vascular degeneration or inherited connective tissue disorders. Yet, a common experimental model of angiotensin II–induced aortopathy in mice appears independent of high blood pressure, as lesions do not occur in response to an alternative vasoconstrictor, norepinephrine, and are not prevented by cotreatment with a vasodilator, hydralazine. We investigated vasoconstrictor administration to adult mice following 1 week of disrupted TGF-β signaling in smooth muscle cells (SMCs). Norepinephrine increased blood pressure and induced aortic dissection by 7 days and even within 30 minutes (as did angiotensin II) that was prevented by hydralazine. Initial medial injury manifested as blood extravasation among SMCs and fibrillar matrix, progressive delamination from accumulation of blood, and stretched or ruptured SMCs with persistent attachments to elastic fibers. Altered regulatory contractile molecule expression was not of pathological importance. Rather, reduced synthesis of extracellular matrix yielded a vulnerable aortic phenotype by decreasing medial collagen, most dynamically basement membrane–associated multiplexin collagen, and impairing cell-matrix adhesion. We conclude that transient and sustained increases in blood pressure can cause dissection in aortas rendered vulnerable by inhibition of TGF-β–driven extracellular matrix production by SMCs.

Authors

Bo Jiang, Pengwei Ren, Changshun He, Mo Wang, Sae-Il Murtada, María Jesús Ruiz-Rodríguez, Yu Chen, Abhay B. Ramachandra, Guangxin Li, Lingfeng Qin, Roland Assi, Martin A. Schwartz, Jay D. Humphrey, George Tellides

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Figure 7

Altered expression of regulatory contractile molecules does not substantially contribute to disease phenotype.

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Altered expression of regulatory contractile molecules does not substant...
Thoracic aortas were analyzed after various imposed conditions. (A) Bulk RNA-seq for Mylk4, Mylk, Mylk2, and Mylk3 as fragments per kilobase million (FPKM) in GFP+ SMCs from GFPiSMC and Tgfbr1/2iSMCKO mice (n = 6). (B) Quantitative RT-PCR for Mylk4 and Mylk, relative to Actb, in aortas of Tgfbr1/2iSMCKO mice at 0–14 days (day 0 denotes untreated) after tamoxifen (Tmx, n = 6). (C) Western blots for phospho-myosin light chain-2 (p-MLC2), MLC2, smooth muscle α-actin (SMA), and β-actin in aortas of Tgfbr1/2iSMCKO mice at 0–14 days after tamoxifen. Densitometry relative to (D) MLC2 or (E) β-actin (n = 6). (F) Phosphorylation of MLC by myosin light chain kinase (MLCK) leads to myosin heavy chain (MHC)-actin–mediated contraction, whereas dephosphorylation by myosin light chain phosphatase (MLCP) enables relaxation. Vasoconstrictors activate MLCK via Ca2+ or inhibit MLCP via Rho-Rho kinase (ROCK); p-MLC and SMC contractility are inhibited by the MLCK inhibitor, ML7, the Ca2+ channel blocker, nifedipine, and the ROCK inhibitor, fasudil. (G) Incidence of aortic dissection in Tgfbr1/2iSMCKO mice infused with NE alone (n = 23 out of 45) or with concomitant treatment with fasudil (n = 4 out of 6), ML-7 (n = 1 out of 6), or nifedipine (n = 2 out of 5) for 7 days. (H) Systolic blood pressure (BP) measured by tail-cuff after NE infusion with and without pharmacological agents for 7 days (n = 4–10). Data are shown as individual values with mean ± SEM. *P < 0.05; **P < 0.01; ***P < 0.001; or not significant (NS) by 2‑way ANOVA with Šidák’s multiple-comparison test (A), 1‑way ANOVA with Tukey’s multiple-comparison test (B [left panel], E and H), Kruskal-Wallis test with Dunn’s multiple-comparison test (B [right panel], D), or Fisher’s exact test between combined treatments vs. NE alone (G).

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