Dipartimento di Medicina Interna dell'Invecchiamento e Malattie Nefrologiche, Università di Bologna, I-40138 Bologna, Italy.
J Phys Chem B. 2010 Feb 11;114(5):1985-93. doi: 10.1021/jp903990j.
The Legendre-transformed Gibbs energy change for a biochemical reaction, Delta(r)G', is shown to be equal to the nontransformed Gibbs energy change, Delta(r)G, of any single reaction involving selected chemical species of the biochemical system. These two Gibbs energies of reaction have hitherto been thought to have different values. The equality of the quantities means that a substantial part of biochemical and chemical thermodynamics, previously treated separately, can be treated within a unified thermodynamic framework. An important consequence of the equality of Delta(r)G and Delta(r)G' is that the Gibbs energy change of many enzyme reactions can be quantified without specifying which chemical species is the active substrate of the enzyme. Another consequence is that the transformed standard Gibbs energy change of a reaction, Delta(r)G'(0), can be calculated by a simple analytical expression, rather than the complex computational methods of the past. The equality of the quantities is restricted to Gibbs energy changes and does not apply to enthalpy or entropy changes.
生化反应的勒让德变换吉布斯自由能变化Δ(r)G',被证明等于涉及生化系统选定化学物质的任何单一反应的未变换吉布斯自由能变化Δ(r)G。迄今为止,人们一直认为这两种反应的吉布斯自由能具有不同的值。这些数量的相等意味着,以前分别处理的生物化学和化学热力学的很大一部分可以在统一的热力学框架内进行处理。数量相等的一个重要结果是,许多酶反应的吉布斯自由能变化可以定量,而无需指定哪种化学物质是酶的活性底物。另一个结果是,反应的变换标准吉布斯自由能变化Δ(r)G'(0)可以通过简单的分析表达式计算,而不是过去复杂的计算方法。这些数量的相等仅适用于吉布斯自由能变化,不适用于焓或熵变化。