Nguyen My-Hanh T, Jafri M Saleet
School of Computational Sciences, George Mason University, 10900 University Blvd., Occoquan Building, Room 328G, MSN 5B3, Manassas, VA 20110, USA.
Ann N Y Acad Sci. 2005 Jun;1047:127-37. doi: 10.1196/annals.1341.012.
A computational model of energy metabolism in the mammalian ventricular myocyte is developed to study the effect of cytosolic calcium (Ca(2+)) transients on adenosine triphosphate (ATP) production. The model couples the Jafri-Dudycha model for tricarboxylic acid cycle regulation to a modified version of the Magnus-Keizer model for the mitochondria. The fluxes associated with Ca(2+) uptake and efflux (i.e., the Ca(2+) uniporter and Na(+)-Ca(2+) exchanger) and the F(1)F(0)-ATPase were modified to better model heart mitochondria. Simulations were performed at steady state and with Ca(2+) transients at various pacing frequencies generated by the Rice-Jafri-Winslow model for the guinea pig ventricular myocyte. The effects of the Ca(2+) transients for mitochondria both adjacent to the dyadic space and in the bulk myoplasm were studied. The model shows that Ca(2+) activation of both the tricarboxylic acid cycle and the F(1)F(0)-ATPase are necessary to produce increases in ATP production. The model also shows that in mitochondria located near the subspace, the large Ca(2+) transients can depolarize the mitochondrial membrane potential sufficiently to cause a transient decline in ATP production. However, this transient is of short duration, minimizing its impact on overall ATP production.
建立了一个哺乳动物心室肌细胞能量代谢的计算模型,以研究胞质钙(Ca(2+))瞬变对三磷酸腺苷(ATP)生成的影响。该模型将用于三羧酸循环调节的Jafri-Dudycha模型与用于线粒体的Magnus-Keizer模型的修改版本相结合。与Ca(2+)摄取和流出相关的通量(即Ca(2+)单向转运体和Na(+)-Ca(2+)交换体)以及F(1)F(0)-ATP酶进行了修改,以更好地模拟心脏线粒体。在稳态下以及由豚鼠心室肌细胞的Rice-Jafri-Winslow模型在各种起搏频率下产生Ca(2+)瞬变的情况下进行了模拟。研究了Ca(2+)瞬变对紧邻二联体空间和整个肌浆中线粒体的影响。该模型表明,三羧酸循环和F(1)F(0)-ATP酶的Ca(2+)激活对于ATP生成的增加是必要的。该模型还表明,在位于亚空间附近的线粒体中,大的Ca(2+)瞬变可使线粒体膜电位充分去极化,从而导致ATP生成的短暂下降。然而,这种瞬变持续时间较短,将其对总体ATP生成的影响降至最低。