Role of ATP-dependent potassium channels in pulmonary vascular tone of fetal lambs with congenital diaphragmatic hernia

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Abstract

High mortality in newborn babies with congenital diaphragmatic hernia (CDH) is principally due to persistent pulmonary hypertension. ATP-dependent potassium (KATP) channels might modulate pulmonary vascular tone. We have assessed the effects of Pinacidil, a KATP channel opener, and glibenclamide (GLI), a KATP channel blocker, in near full-term lambs with and without CDH. In vivo, pulmonary hemodynamics were assessed by means of pressure and blood flow catheters. In vitro, we used isolated pulmonary vessels and immunohistochemistry to detect the presence of KATP channels in pulmonary tissue. In vivo, pinacidil (2 mg) significantly reduced pulmonary vascular resistance (PVR) in both controls and CDH animals. GLI (30 mg) significantly increased pulmonary arterial pressure (PAP) and PVR in control animals only. In vitro, pinacidil (10 μM) relaxed, precontracted arteries from lambs with and without CDH. GLI (10 μM) did not raise the basal tone of vessels. We conclude that activation of KATP channels could be of interest to reduce pulmonary vascular tone in fetal lambs with CDH, a condition often associated with persistent pulmonary hypertension of the newborn. © International Pediatrics Research Foundation, Inc. 2006. All Rights Reserved.

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De Buys Roessingh, A. S., De Lagausie, P., Barbet, J. P., Mercier, J. C., Aigrain, Y., & Dinh-Xuan, A. T. (2006). Role of ATP-dependent potassium channels in pulmonary vascular tone of fetal lambs with congenital diaphragmatic hernia. Pediatric Research, 60(5), 537–542. https://doi.org/10.1203/01.pdr.0000242372.99285.72

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