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Cardiovascular consequences of KATP overactivity in Cantu syndrome
Yan Huang, Conor McClenaghan, Theresa M. Harter, Kristina Hinman, Carmen M. Halabi, Scot J. Matkovich, Haixia Zhang, G. Schuyler Brown, Robert P. Mecham, Sarah K. England, Attila Kovacs, Maria S. Remedi, Colin G. Nichols
Yan Huang, Conor McClenaghan, Theresa M. Harter, Kristina Hinman, Carmen M. Halabi, Scot J. Matkovich, Haixia Zhang, G. Schuyler Brown, Robert P. Mecham, Sarah K. England, Attila Kovacs, Maria S. Remedi, Colin G. Nichols
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Research Article Cardiology

Cardiovascular consequences of KATP overactivity in Cantu syndrome

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Abstract

Cantu syndrome (CS) is characterized by multiple vascular and cardiac abnormalities including vascular dilation and tortuosity, systemic hypotension, and cardiomegaly. The disorder is caused by gain-of-function (GOF) mutations in genes encoding pore-forming (Kir6.1, KCNJ8) and accessory (SUR2, ABCC9) ATP-sensitive potassium (KATP) channel subunits. However, there is little understanding of the link between molecular dysfunction and the complex pathophysiology observed, and there is no known treatment, in large part due to the lack of appropriate preclinical disease models in which to test therapies. Notably, expression of Kir6.1 and SUR2 does not fully overlap, and the relative contribution of KATP GOF in various cardiovascular tissues remains to be elucidated. To investigate pathophysiologic mechanisms in CS we have used CRISPR/Cas9 engineering to introduce CS-associated SUR2[A478V] and Kir6.1[V65M] mutations to the equivalent endogenous loci in mice. Mirroring human CS, both of these animals exhibit low systemic blood pressure and dilated, compliant blood vessels, as well dramatic cardiac enlargement, the effects being more severe in V65M animals than in A478V animals. In both animals, whole-cell patch-clamp recordings reveal enhanced basal KATP conductance in vascular smooth muscle, explaining vasodilation and lower blood pressure, and demonstrating a cardinal role for smooth muscle KATP dysfunction in CS etiology. Echocardiography confirms in situ cardiac enlargement and increased cardiac output in both animals. Patch-clamp recordings reveal reduced ATP sensitivity of ventricular myocyte KATP channels in A478V, but normal ATP sensitivity in V65M, suggesting that cardiac remodeling occurs secondary to KATP overactivity outside of the heart. These SUR2[A478V] and Kir6.1[V65M] animals thus reiterate the key cardiovascular features seen in human CS. They establish the molecular basis of the pathophysiological consequences of reduced smooth muscle excitability resulting from SUR2/Kir6.1–dependent KATP GOF, and provide a validated animal model in which to examine potential therapeutic approaches to treating CS.

Authors

Yan Huang, Conor McClenaghan, Theresa M. Harter, Kristina Hinman, Carmen M. Halabi, Scot J. Matkovich, Haixia Zhang, G. Schuyler Brown, Robert P. Mecham, Sarah K. England, Attila Kovacs, Maria S. Remedi, Colin G. Nichols

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Figure 8

Vascular consequences in SUR2wt/AV mice.

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Vascular consequences in SUR2wt/AV mice.
(A) Representative blood pressu...
(A) Representative blood pressures in anesthetized mice showing decreased basal pressures in SUR2wt/AV and SUR2AV/AV mice and blunted response to the KATP channel activator pinacidil. (B) Telemetric measurements of mean arterial pressure from ambulatory WT (black), SUR2wt/AV (orange), and SUR2AV/AV (red) mice show decreased blood pressure in SUR2AV/AV mice (n = 3 for each genotype). (C) Summary data showing basal and pinacidil-reduced systolic (left) and diastolic (right) pressures from anesthetized WT, SUR2wt/AV, and SUR2AV/AV mice (n = 6 for WT, 5 for SUR2wt/AV, and 6 for SUR2AV/AV). (D) Isolated descending thoracic aortae show progressive dilation in SUR2wt/AV and SUR2AV/AV mice. (E) Aortic diameter derived from 2D sagittal echocardiographic imaging at different points around the aortic arch in WT (black), SUR2wt/AV (orange), and SUR2AV/AV (red). STJ, sinotubular junction; AA, ascending aorta; Arch, aortic arch; DA, descending aorta; as shown in inset; n = 3 each). (F) Vessel compliance in pressurized carotid arteries of WT (black), SUR2wt/AV (orange), and SUR2AV/AV (red) mice reveal increased diameters in mutant mice across full pressure range (n = 4 for WT, 5 for SUR2wt/AV, and 5 for SUR2AV/AV). Statistical significance was determined by multiway ANOVA followed by t test pairwise comparison with Bonferroni’s correction for multiple comparisons. Adjusted α = 0.008 (B), 0.006 (C), and 0.004 (F). **P < 0.01.

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