Laboratorio de Tecnología de Enzimas para Bioprocesos, Departamento de Ingeniería en Alimentos, Universidad de La Serena, Av. Raúl Bitrán 1305, 1720010 La Serena, Chile.
Laboratorio de Tecnología de Enzimas para Bioprocesos, Departamento de Ingeniería en Alimentos, Universidad de La Serena, Av. Raúl Bitrán 1305, 1720010 La Serena, Chile; Instituto de Investigación Multidisciplinario en Ciencia y Tecnología, Universidad de La Serena, Benavente 980, 1720010 La Serena, Chile.
Int J Biol Macromol. 2021 Feb 15;170:61-70. doi: 10.1016/j.ijbiomac.2020.12.097. Epub 2020 Dec 26.
The increasing use of sustainable manufacturing technologies in the industry presents a constant challenge for the development of suitable biocatalysts. Traditionally, improved biocatalysts are developed either using protein engineering (PE) or enzyme immobilization (EI). However, these approaches are usually not simultaneously applied. In this work, we designed and validated an enzyme improvement platform, Immobilized Biocatalyst Engineering (IBE), which simultaneously integrates PE and EI, with a unique combination of improvement through amino acid substitutions and attachment to a support material, allowing to select variants that would not be found through single or subsequent PE and EI improvement strategies. Our results show that there is a significant difference on the best performing variants identified through IBE, when compared to those that could be identified as soluble enzymes and then immobilized, especially when evaluating variants with low enzyme as soluble enzymes and high activity when immobilized. IBE allows evaluating thousands of variants in a short time through an integrated screening, and selection can be made with more information, resulting in the detection of highly stable and active heterogeneous biocatalysts. This novel approach can translate into a higher probability of finding suitable biocatalysts for highly demanding processes.
随着可持续制造技术在工业中的应用不断增加,开发合适的生物催化剂一直是一个挑战。传统上,通过蛋白质工程 (PE) 或酶固定化 (EI) 来开发改良的生物催化剂。然而,这些方法通常不会同时应用。在这项工作中,我们设计并验证了一种酶改良平台,即固定化生物催化剂工程 (IBE),它将 PE 和 EI 同时集成,通过氨基酸取代和附着到支撑材料的独特组合进行改良,从而能够选择通过单一或后续的 PE 和 EI 改良策略无法找到的变体。我们的结果表明,通过 IBE 鉴定的最佳表现变体与那些可以作为可溶性酶鉴定然后固定化的变体之间存在显著差异,尤其是在评估那些可溶性酶活性低但固定化酶活性高的变体时。IBE 允许通过集成筛选在短时间内评估数千个变体,并且可以用更多信息进行选择,从而检测到高度稳定和活性的异相生物催化剂。这种新方法可以提高在高要求的过程中找到合适的生物催化剂的可能性。