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缺血性运动肌肉中pH值和磷代谢物浓度变化的生理限制:对代谢控制及31P磁共振波谱研究解读的意义

Physiological constraints on changes in pH and phosphorus metabolite concentrations in ischemically exercising muscle: implications for metabolic control and for the interpretation of 31P-magnetic resonance spectroscopic studies.

作者信息

Kemp G J

机构信息

Department of Orthopaedic and Accident Surgery, University of Liverpool, United Kingdom.

出版信息

MAGMA. 1997 Sep;5(3):231-41. doi: 10.1007/BF02594586.

DOI:10.1007/BF02594586
PMID:9351027
Abstract

Relationships between pH and the concentrations of phosphocreatine (PCr), inorganic phosphate (Pi), and lactate during ischemic exercise depend on passive buffering, proton consumption as a consequence of net PCr breakdown, the control of glycogenolysis, (particularly in relation to the concentration of Pi, a substrate of glycogen phosphorylase that is produced by net PCr breakdown), and the creatine kinase equilibrium. The author analyzes the implications of these relationships for the interpretation of 31P-magnetic resonance spectroscopic data and for the control of glycogenolysis. For realistic adenosine diphosphate (ADP) concentrations, given the constraints of the creatine kinase equilibrium, the pH must be near-linear with lactate, with an apparent buffer capacity (i.e., the ratio of lactate accumulation to pH change) that is nearly twice the true buffer capacity (i.e., the ratio of net proton loading to pH change). The implications for glycogenolytic control depend on adenosine triphosphate (ATP) turnover, but an upper limit of activation of glycogen phosphorylase (i.e., the amount of the a form) that would permit no increase in ADP concentration can be calculated. Phosphorylase activation during ischemic exercise seems approximately proportional to the power output, consistent with calcium stimulation of phosphorylase b kinase. In simulations, ADP concentration is highly sensitive to this proportionality, as (unlike in purely oxidative exercise) ADP concentration is not known to participate in any closed feedback loops in ischemic exercise.

摘要

缺血性运动期间,pH值与磷酸肌酸(PCr)、无机磷酸盐(Pi)和乳酸浓度之间的关系取决于被动缓冲、净PCr分解导致的质子消耗、糖原分解的控制(特别是与糖原磷酸化酶的底物Pi的浓度有关,Pi由净PCr分解产生)以及肌酸激酶平衡。作者分析了这些关系对31P磁共振波谱数据解释和糖原分解控制的影响。对于实际的二磷酸腺苷(ADP)浓度,在肌酸激酶平衡的限制下,pH值必须与乳酸呈近似线性关系,表观缓冲能力(即乳酸积累与pH变化的比值)几乎是真实缓冲能力(即净质子负载与pH变化的比值)的两倍。对糖原分解控制的影响取决于三磷酸腺苷(ATP)周转,但可以计算出糖原磷酸化酶激活的上限(即a型的量),该上限不会使ADP浓度增加。缺血性运动期间的磷酸化酶激活似乎与功率输出大致成正比,这与钙对磷酸化酶b激酶的刺激一致。在模拟中,ADP浓度对这种比例关系高度敏感,因为(与纯氧化运动不同)在缺血性运动中,ADP浓度不参与任何封闭的反馈回路。

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