Brissos Vânia, Durão Paulo, Rodrigues Carolina F, Melo Eduardo P, Martins Lígia O
Instituto de Tecnologia Química e Biológica António Xavier, Universidade Nova de Lisboa, Oeiras, Portugal.
Centro de Ciências do Mar do Algarve (CCMAR/CIMAR LA), Campus de Gambelas, Universidade do Algarve, Faro, Portugal.
Methods Enzymol. 2025;716:157-197. doi: 10.1016/bs.mie.2025.01.043. Epub 2025 Apr 15.
Biocatalysis is considered a critical component for developing a sustainable bioeconomy, and stability is a crucial enzyme property for biotechnological and industrial applications. Enzymes with higher thermostability are more durable and desirable in industrial settings due to their resilience across various operational conditions, which helps reduce overall enzyme costs. Understanding an enzyme's thermal stability ensures its long-term efficacy and performance. Thermodynamic stability reflects the equilibrium between the native, functional protein, and unfolded state, and the kinetic or long-term stability is associated with the irreversible inactivation of the enzyme. Therefore, the thermostability of biocatalysts can be characterized by their melting temperature (T) when 50 % of the enzyme is unfolded and the half-life time (t), reporting the time gap to the loss of 50 % of the activity at a specific temperature. This parameter is crucial for assessing the feasibility of an enzymatic-based (bio)process, as it indicates the enzyme's temperature-dependent deactivation and operational stability over time. The optimum temperature of an enzyme (T) usually reflects its (thermo)stability, particularly the stability of the native state. Here, we describe protocols for accessing the thermodynamic and kinetic stability of different ligninolytic enzymes, including laccases and DyP-type peroxidases. We provide practical examples and emphasize the challenges encountered during experimental procedures and data analysis. While these protocols are tailored to these specific enzymes, they can be broadly applied to other proteins and enzymes.
生物催化被认为是发展可持续生物经济的关键组成部分,而稳定性是酶在生物技术和工业应用中的一项关键特性。具有更高热稳定性的酶在工业环境中更耐用且更具优势,因为它们能在各种操作条件下保持稳定,这有助于降低酶的总体成本。了解酶的热稳定性可确保其长期功效和性能。热力学稳定性反映了天然功能蛋白与未折叠状态之间的平衡,而动力学稳定性或长期稳定性与酶的不可逆失活相关。因此,生物催化剂的热稳定性可以通过其熔解温度(Tm)来表征,即当50%的酶发生解折叠时的温度,以及半衰期(t1/2),它表示在特定温度下酶活性丧失50%所需的时间间隔。该参数对于评估基于酶的(生物)过程的可行性至关重要,因为它表明了酶随温度的失活情况以及随时间的操作稳定性。酶的最适温度(To)通常反映其(热)稳定性,特别是天然状态的稳定性。在此,我们描述了评估不同木质素降解酶(包括漆酶和DyP型过氧化物酶)的热力学和动力学稳定性的方法。我们提供了实际示例,并强调了实验过程和数据分析中遇到的挑战。虽然这些方法是针对这些特定酶量身定制的,但它们可广泛应用于其他蛋白质和酶。