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Metabolic Control Analysis

Metabolic Control Analysis
代谢控制分析
批准号:
6431372
负责人:
richard l veech
金额:
$0.0万
依托单位国家:
美国
项目类别:
财政年份:
--
资助国家:
美国
项目状态:
未结题
起止时间:
至

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中文摘要
翻译
人们普遍认为,主要代谢途径中的步骤是已知的,通过这些途径的流量控制发生在非常有限的“限速”步骤中。这一概念导致了药物的设计,以改变这些“限速酶”的动力学。它还导致了使用分子生物学技术通过改变限速酶的数量来改变代谢途径的尝试。令许多人沮丧的是,这样的干预往往无法改变正在研究的通路的比率。这些失败使人们越来越意识到,代谢途径中的许多酶都可以控制途径的流量,而且不同的酶可以根据条件的不同而不同。代谢控制理论预测了控制在一个途径的许多酶之间的分布(Veech,R.L.&Fell,D.A.细胞生物化学)。&函数14:229-236,1996)。然而,这些理论的实际论证和测试在技术上是困难的。我们是第一个对每个步骤的通量、动力学和热力学常数进行必要测量的实验室,以及对主要代谢途径中的通量控制进行这种正式分析所需的所有底物和产品的水平(Kashiwaya,Y.等,J.Biol)。化学。:25502-25514,1994年)。我们继续展示了酮体可以在心脏中起作用,以克服心脏中的胰岛素抵抗(Kashiwaya,J.等人,Am J.80:50A 64A,1997)。自从Kashiwaya博士离开这个实验室以来,我继续与他合作,他和日本鸟取大学神经学系的其他人应用我们以前的工作中的这些见解,研究了酮小体对两种最常见的退行性神经系统疾病的神经元培养模型的影响。阿尔茨海默病通过在胚胎大鼠海马神经元培养中加入淀粉样β1-42来建模,帕金森病通过在中脑神经元培养中加入MPP+来建模。在这两种情况下,酮体保护神经元免受这些非常不同的毒素诱导的死亡。酮体在这些条件下保护神经元的能力提供了治疗这些非常常见的疾病以及由于糖酵解或线粒体能量产生失败而导致的其他疾病的可能性。这项工作现已发表于:Kashiwaya,Y.,Takeshima,T.,Mori,N.,Nakashima,K.,Clarke,K.,Veech,R.L.Proc。娜塔莉。阿卡德。SCI。(美国)97:5440-5444,2000。2000年5月3日,在美国国立卫生研究院举行的一次罕见疾病会议上,讨论了酮小体在治疗神经疾病中的应用,包括难治性癫痫和胰岛素抵抗,如小精灵中毒。代谢控制方面的工作是与巴塞罗那大学生化系、巴塞罗那大学和港湾加州大学洛杉矶分校研究所合作完成的,今年的研究方向是六糖单磷酸途径和硫胺素在某些癌症中的作用,并发表在卡斯坎特,M.,森特勒,J.J.,Veech,R.L.,Lee,W-N.P.,Boros,L.G.《营养与癌症》36:150-154,2000。
英文摘要
It is widely believed that the steps in the major metabolic pathways are known and that the control of flux through these pathways occurs at a very limited number of "rate limiting" steps. This concept has lead to the design of drugs to alter the kinetics of these "rate limiting enzymes". It has also led to attempts to alter metabolic pathways by altering the amounts of rate limiting enzymes using the techniques of molecular biology. To the dismay of many, such interventions often fail to alter the rates of the pathways under study. These failures have led to an increased awareness that "control" of pathway flux is distributed among many enzymes of a metabolic pathway and can vary from enzyme to enzyme depending upon conditions. Metabolic control theory predicts distribution of control among many enzymes of a pathway (Veech, R.L. & Fell, D.A. Cell Biochem. & Function 14: 229-236, 1996). However, actual demonstration and testing of such theories was technically difficult. We were the first laboratory to make the required measurements of flux, kinetic and thermodynamic constants of each step, and the levels of all substrates and products required to make such a formal analysis of flux control in a major metabolic pathway (Kashiwaya, Y. et al, J. Biol. Chem. 269: 25502-25514, 1994). We went on to show that ketone bodies can act in heart to overcome insulin resistance in heart (Kashiwaya, J. et al, Am J. Cardiol. 80: 50A 64A, 1997). Since Dr. Kashiwaya left this laboratory, I have continued to collaborate with him and he, with others at the Department of Neurology of Tottori University in Yonago, Japan, have applied these insights from our previous work to investigate the effects of ketone bodies upon two neuronal culture models of the two most common degenerative neurological diseases. Alzheimer's disease was modeled by adding amyloid beta 1-42 to embryonic rat hippocampal neuronal cultures and Parkinson's disease was modeled by adding MPP+ to mesencephalic neuronal cultures. In both case, ketone bodies protected neurons from death induced by these very different toxins. The ability of ketone bodies to protects neurons under these conditions offers the possibility of therapy of these very common diseases as well as other diseases resulting from failures in either glycolysis or mitochondrial energy generation. This work has now appeared in: Kashiwaya,Y., Takeshima,T., Mori,N., Nakashima,K., Clarke,K., Veech,R.L. Proc. Natl. Acad. Sci. (USA) 97: 5440-5444, 2000. Discussions of the uses of ketone bodies in the treatment of neurological diseases including refractory epilepsy and insulin resistance such as Leprechaunism was held in a Rare Disease Meeting at NIH on May 3, 2000. Work on metabolic control was done in collaboration with the Dept of Biochemistry, U of Barcelona and the Harbor UCLA Research Institute and was directed this year toward the hexosemonophosphate pathway and the role of thiamine in certain cancers and appeared in Cascante,M., Centelles,J.J., Veech, R.L., Lee, W-N.P., Boros, L.G. Nutrition and Cancer 36: 150-154, 2000.
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会议论文
ION GRADIENTS AND METABOLIC ENERGY IN ANIMAL TISSUE
Ion Gradients And Metabolic Energy In Animal Tissue
Development of Ketone Ester Diets
Metabolic Control Analysis
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