Inhibition of pyruvate dehydrogenase kinase improves pulmonary arterial hypertension in genetically susceptible patients

医学 丙酮酸激酶 肺动脉高压 丙酮酸脱氢酶激酶 心脏病学 丙酮酸脱氢酶复合物 转基因生物 内科学 血流动力学 药理学 内分泌学 基因 生物 糖酵解 新陈代谢 生物化学
作者
Evangelos D. Michelakis,Vikram Gurtu,Linda Webster,Gareth Barnes,Geoffrey Watson,Luke Howard,John Cupitt,D. Ian Paterson,Richard B. Thompson,Kelvin Chow,Declan P. O’Regan,Lan Zhao,John Wharton,David G. Kiely,Adam Kinnaird,Aristeidis E. Boukouris,Christopher W. White,Jayan Nagendran,Darren H. Freed,Stephen J. Wort
出处
期刊:Science Translational Medicine [American Association for the Advancement of Science]
卷期号:9 (413) 被引量:298
标识
DOI:10.1126/scitranslmed.aao4583
摘要

Pulmonary arterial hypertension (PAH) is a progressive vascular disease with a high mortality rate. It is characterized by an occlusive vascular remodeling due to a pro-proliferative and antiapoptotic environment in the wall of resistance pulmonary arteries (PAs). Proliferating cells exhibit a cancer-like metabolic switch where mitochondrial glucose oxidation is suppressed, whereas glycolysis is up-regulated as the major source of adenosine triphosphate production. This multifactorial mitochondrial suppression leads to inhibition of apoptosis and downstream signaling promoting proliferation. We report an increase in pyruvate dehydrogenase kinase (PDK), an inhibitor of the mitochondrial enzyme pyruvate dehydrogenase (PDH, the gatekeeping enzyme of glucose oxidation) in the PAs of human PAH compared to healthy lungs. Treatment of explanted human PAH lungs with the PDK inhibitor dichloroacetate (DCA) ex vivo activated PDH and increased mitochondrial respiration. In a 4-month, open-label study, DCA (3 to 6.25 mg/kg b.i.d.) administered to patients with idiopathic PAH (iPAH) already on approved iPAH therapies led to reduction in mean PA pressure and pulmonary vascular resistance and improvement in functional capacity, but with a range of individual responses. Lack of ex vivo and clinical response was associated with the presence of functional variants of SIRT3 and UCP2 that predict reduced protein function. Impaired function of these proteins causes PDK-independent mitochondrial suppression and pulmonary hypertension in mice. This first-in-human trial of a mitochondria-targeting drug in iPAH demonstrates that PDK is a druggable target and offers hemodynamic improvement in genetically susceptible patients, paving the way for novel precision medicine approaches in this disease.
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