Pyruvate dehydrogenase kinase 1 controls triacylglycerol hydrolysis in cardiomyocytes.

Michael G Atser, Chelsea D Wenyonu, Elyn M Rowe, Connie L K Leung, Haoning Howard Cen, Eric D Queathem, Leo T Liu, Renata Moravcova, Jason Rogalski, David Perrin, Peter Crawford, Leonard J Foster, Armando Alcazar, James D Johnson
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Abstract

Pyruvate dehydrogenase kinase (PDK) 1 is one of four isozymes that inhibit the oxidative decarboxylation of pyruvate to acetyl-CoA via pyruvate dehydrogenase. PDK activity is elevated in fasting or starvation conditions to conserve carbohydrate reserves. PDK has also been shown to increase mitochondrial fatty acid utilization. In cardiomyocytes, metabolic flexibility is crucial for the fulfillment of high energy requirements. The PDK1 isoform is abundant in cardiomyocytes, but its specific contribution to cardiomyocyte metabolism is unclear. Here we show that PDK1 regulates cardiomyocyte fuel preference by mediating triacylglycerol turnover in differentiated H9c2 myoblasts using lentiviral shRNA to knockdown Pdk1. Somewhat surprisingly, PDK1 loss did not affect overall PDH activity, basal glycolysis, or glucose oxidation revealed by oxygen consumption rate experiments and 13C6 glucose labelling. On the other hand, we observed decreased triacylglycerol turnover in H9c2 cells with PDK1 knockdown, which was accompanied by decreased mitochondrial fatty acid utilization following nutrient deprivation. 13C16 palmitate tracing of uniformly labelled acyl chains revealed minimal acyl chain shuffling within triacylglycerol, indicating that the triacylglycerol hydrolysis, and not re-esterification, was dysfunctional in PDK1 suppressed cells. Importantly, PDK1 loss did not significantly impact the cellular lipidome or triacylglycerol accumulation following palmitic acid treatment, suggesting that effects of PDK1 on lipid metabolism were specific to the nutrient-deprived state. We validated that PDK1 loss decreased triacylglycerol turnover in Pdk1 knockout mice. Together, these findings implicate a novel role for PDK1 in lipid metabolism in cardiomyocytes, independent of its canonical roles in glucose metabolism.

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丙酮酸脱氢酶激酶 1 控制心肌细胞中的三酰甘油水解。
丙酮酸脱氢酶激酶(PDK)1 是抑制丙酮酸通过丙酮酸脱氢酶氧化脱羧为乙酰-CoA 的四种同工酶之一。在禁食或饥饿条件下,PDK 活性会升高,以保存碳水化合物储备。研究还表明,PDK 可提高线粒体脂肪酸的利用率。在心肌细胞中,新陈代谢的灵活性对于满足高能量需求至关重要。PDK1 同工酶在心肌细胞中含量丰富,但其对心肌细胞代谢的具体贡献尚不清楚。在这里,我们使用慢病毒 shRNA 敲除 Pdk1,结果表明 PDK1 在分化的 H9c2 心肌细胞中通过介导三酰甘油周转来调节心肌细胞的燃料偏好。令人惊讶的是,氧消耗率实验和 13 C 6 葡萄糖标记显示,PDK1 的缺失并未影响整体 PDH 活性、基础糖酵解或葡萄糖氧化。另一方面,我们观察到 PDK1 基因敲除的 H9c2 细胞中三酰甘油周转率降低,同时线粒体脂肪酸在营养剥夺后的利用率也降低。对均匀标记的酰基链进行 13 C 16 棕榈酸酯追踪发现,三酰甘油内的酰基链洗牌极少,这表明在 PDK1 受抑制的细胞中,三酰甘油水解而非再酯化功能失调。重要的是,在棕榈酸处理后,PDK1 的缺失并没有对细胞脂质体或三酰甘油的积累产生显著影响,这表明 PDK1 对脂质代谢的影响仅限于营养缺乏状态。我们验证了 PDK1 缺失会降低 Pdk1 基因敲除小鼠的三酰甘油周转。总之,这些发现表明 PDK1 在心肌细胞的脂质代谢中扮演着新的角色,而非其在葡萄糖代谢中的典型角色。
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