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首页> 外文期刊>The Journal of Experimental Biology >Roles of hierarchical and metabolic regulation in the allometric scaling of metabolism in Panamanian orchid bees
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Roles of hierarchical and metabolic regulation in the allometric scaling of metabolism in Panamanian orchid bees

机译:分层和代谢调节在巴拿马兰花蜂代谢代谢的比例缩放中的作用

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Assessment of the relative importance of variation in enzyme concentration [E] and metabolic regulation in accounting for interspecific variation in metabolic rates is an unrealized area of research. Towards this end, we used metabolic flux rates during hovering and enzymatic flux capacities (V-max values, equal to [E] x k(cat), where k(cat) is catalytic efficiency) in flight muscles measured in vitro from 14 orchid bee species ranging in body mass from 47 to 1065 mg. Previous studies revealed that, across orchid bee species, wingbeat frequencies and metabolic rates decline in parallel with increasing body mass. V-max values at some enzymatic steps in pathways of energy metabolism decline with increasing mass while, at most other steps, Vmax values are mass-independent. We quantified the relative importance of 'hierarchical regulation' (alteration in V-max, indicative of alteration in [E]) and 'metabolic regulation' (resulting from variation in substrate, product or modulator concentrations) in accounting for interspecific variation in flux across species. In addition, we applied the method of phylogenetically independent contrasts to remove the potentially confounding effects of phylogenetic relationships among species. In the evolution of orchid bees, hierarchical regulation completely accounts for allometric variation in flux rates at the hexokinase step while, at other reactions, variation in flux is completely accounted for by metabolic regulation. The predominant role played by metabolic regulation is examined at the phosphoglucoisomerase step using the Haldane relationship. We find that extremely small variation in the concentration ratio of [product]/[substrate] is enough to cause the observed interspecific variation in net flux at this reaction in glycolysis.
机译:评估酶浓度[E]和代谢调控对代谢率种间变化的相对重要性的评估是一个尚未实现的研究领域。为此,我们使用了从14只兰花蜜蜂体外测得的飞行肌肉中悬停期间的代谢通量速率和酶通量容量(V-max值,等于[E] xk(cat),其中k(cat)是催化效率)。种类从47到1065毫克不等。先前的研究表明,在整个兰花蜂物种中,翅膀搏动频率和新陈代谢速率随体重增加而下降。能量代谢途径中某些酶促步骤的V-max值随质量的增加而下降,而在其他大多数步骤中,Vmax值与质量无关。我们量化了“等级调节”(V-max的变化,指示[E]发生变化)和“代谢调节”(由于底物,产物或调节剂浓度的变化)在解决通量间种间变化方面的相对重要性。种类。此外,我们应用了系统发育独立对比的方法,以消除物种之间系统发育关系的潜在混杂影响。在兰花蜜蜂的进化过程中,分层调节完全解释了己糖激酶步骤通量速率的异速变化,而在其他反应中,通量的变化完全由代谢调节引起。使用Haldane关系,在磷酸葡萄糖异构酶步骤检查了代谢调节的主要作用。我们发现,[产物] / [底物]浓度比的极小变化足以引起糖酵解反应中所观察到的净通量的种间变化。

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