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Application of the Principles of Systems Biology and Wiener’s Cybernetics for Analysis of Regulation of Energy Fluxes in Muscle Cells in Vivo

机译:系统生物学原理和维纳控制论在分析体内肌肉细胞能量通量中的应用

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摘要

The mechanisms of regulation of respiration and energy fluxes in the cells are analyzed based on the concepts of systems biology, non-equilibrium steady state kinetics and applications of Wiener’s cybernetic principles of feedback regulation. Under physiological conditions cardiac function is governed by the Frank-Starling law and the main metabolic characteristic of cardiac muscle cells is metabolic homeostasis, when both workload and respiration rate can be changed manifold at constant intracellular level of phosphocreatine and ATP in the cells. This is not observed in skeletal muscles. Controversies in theoretical explanations of these observations are analyzed. Experimental studies of permeabilized fibers from human skeletal muscle vastus lateralis and adult rat cardiomyocytes showed that the respiration rate is always an apparent hyperbolic but not a sigmoid function of ADP concentration. It is our conclusion that realistic explanations of regulation of energy fluxes in muscle cells require systemic approaches including application of the feedback theory of Wiener’s cybernetics in combination with detailed experimental research. Such an analysis reveals the importance of limited permeability of mitochondrial outer membrane for ADP due to interactions of mitochondria with cytoskeleton resulting in quasi-linear dependence of respiration rate on amplitude of cyclic changes in cytoplasmic ADP concentrations. The system of compartmentalized creatine kinase (CK) isoenzymes functionally coupled to ANT and ATPases, and mitochondrial-cytoskeletal interactions separate energy fluxes (mass and energy transfer) from signalling (information transfer) within dissipative metabolic structures – intracellular energetic units (ICEU). Due to the non-equilibrium state of CK reactions, intracellular ATP utilization and mitochondrial ATP regeneration are interconnected by the PCr flux from mitochondria. The feedback regulation of respiration occurring via cyclic fluctuations of cytosolic ADP, Pi and Cr/PCr ensures metabolic stability necessary for normal function of cardiac cells.
机译:根据系统生物学,非平衡稳态动力学和维纳反馈控制论控制论原理的应用,分析了细胞中呼吸和能量通量的调节机制。在生理条件下,心脏功能受Frank-Starling律支配,而心肌细胞的主要代谢特征是代谢稳态,当工作量和呼吸速率都可以在细胞内磷酸肌酸和ATP的恒定细胞内水平变化的情况下发生变化。这在骨骼肌中没有观察到。对这些观察的理论解释中的争议进行了分析。来自人骨骼肌股外侧肌和成年大鼠心肌细胞的透化纤维的实验研究表明,呼吸速率始终是明显的双曲线,而不是ADP浓度的S形函数。我们的结论是,对肌肉细胞能量通量调节的现实解释需要系统的方法,包括应用维纳控制论的反馈理论以及详细的实验研究。此类分析揭示了线粒体外膜对ADP的渗透性有限的重要性,这是由于线粒体与细胞骨架的相互作用导致呼吸速率与细胞质ADP浓度的循环变化幅度近似线性相关。在功能上与ANT和ATPase偶联的区隔肌酸激酶(CK)同工酶系统以及线粒体-细胞骨架相互作用将耗散代谢结构内的能量通量(质量和能量转移)与信号传导(信息转移)(细胞内能量单元(ICEU))分开。由于CK反应的非平衡状态,细胞内ATP的利用和线粒体ATP的再生通过线粒体的PCr通量相互联系。通过胞质ADP,Pi和Cr / PCr的周期性波动而发生的呼吸反馈调节可确保心脏细胞正常功能所必需的代谢稳定性。

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