Literature DB >> 23807146

Stabilizing biocatalysts.

Andreas S Bommarius1, Mariétou F Paye.   

Abstract

The area of biocatalysis itself is in rapid development, fueled by both an enhanced repertoire of protein engineering tools and an increasing list of solved problems. Biocatalysts, however, are delicate materials that hover close to the thermodynamic limit of stability. In many cases, they need to be stabilized to survive a range of challenges regarding temperature, pH value, salt type and concentration, co-solvents, as well as shear and surface forces. Biocatalysts may be delicate proteins, however, once stabilized, they are efficiently active enzymes. Kinetic stability must be achieved to a level satisfactory for large-scale process application. Kinetic stability evokes resistance to degradation and maintained or increased catalytic efficiency of the enzyme in which the desired reaction is accomplished at an increased rate. However, beyond these limitations, stable biocatalysts can be operated at higher temperatures or co-solvent concentrations, with ensuing reduction in microbial contamination, better solubility, as well as in many cases more favorable equilibrium, and can serve as more effective templates for combinatorial and data-driven protein engineering. To increase thermodynamic and kinetic stability, immobilization, protein engineering, and medium engineering of biocatalysts are available, the main focus of this work. In the case of protein engineering, there are three main approaches to enhancing the stability of protein biocatalysts: (i) rational design, based on knowledge of the 3D-structure and the catalytic mechanism, (ii) combinatorial design, requiring a protocol to generate diversity at the genetic level, a large, often high throughput, screening capacity to distinguish 'hits' from 'misses', and (iii) data-driven design, fueled by the increased availability of nucleotide and amino acid sequences of equivalent functionality.

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Year:  2013        PMID: 23807146     DOI: 10.1039/c3cs60137d

Source DB:  PubMed          Journal:  Chem Soc Rev        ISSN: 0306-0012            Impact factor:   54.564


  61 in total

1.  Protein stability engineering insights revealed by domain-wide comprehensive mutagenesis.

Authors:  Alex Nisthal; Connie Y Wang; Marie L Ary; Stephen L Mayo
Journal:  Proc Natl Acad Sci U S A       Date:  2019-08-01       Impact factor: 11.205

2.  Computational tools help improve protein stability but with a solubility tradeoff.

Authors:  Aron Broom; Zachary Jacobi; Kyle Trainor; Elizabeth M Meiering
Journal:  J Biol Chem       Date:  2017-07-14       Impact factor: 5.157

3.  Enzyme stabilization via computationally guided protein stapling.

Authors:  Eric J Moore; Dmitri Zorine; William A Hansen; Sagar D Khare; Rudi Fasan
Journal:  Proc Natl Acad Sci U S A       Date:  2017-11-06       Impact factor: 11.205

4.  High-temperature behavior of hyperthermostable Thermotoga maritima xylanase XYN10B after designed and evolved mutations.

Authors:  Yawei Wang; Jing Wang; Zhongqiang Zhang; Jiangke Yang; Ossi Turunen; Hairong Xiong
Journal:  Appl Microbiol Biotechnol       Date:  2022-02-16       Impact factor: 4.813

5.  Replacing a single atom accelerates the folding of a protein and increases its thermostability.

Authors:  Ulrich Arnold; Ronald T Raines
Journal:  Org Biomol Chem       Date:  2016-07-12       Impact factor: 3.876

6.  Enhancing the Thermostability of Rhizomucor miehei Lipase with a Limited Screening Library by Rational-Design Point Mutations and Disulfide Bonds.

Authors:  Guanlin Li; Xingrong Fang; Feng Su; Yuan Chen; Li Xu; Yunjun Yan
Journal:  Appl Environ Microbiol       Date:  2018-01-02       Impact factor: 4.792

7.  Organic solvent stability and long-term storage of myoglobin-based carbene transfer biocatalysts.

Authors:  Alfons J Pineda-Knauseder; David A Vargas; Rudi Fasan
Journal:  Biotechnol Appl Biochem       Date:  2020-07-09       Impact factor: 2.431

8.  Unified rational protein engineering with sequence-based deep representation learning.

Authors:  Ethan C Alley; Grigory Khimulya; Surojit Biswas; Mohammed AlQuraishi; George M Church
Journal:  Nat Methods       Date:  2019-10-21       Impact factor: 28.547

9.  carba Nicotinamide Adenine Dinucleotide Phosphate: Robust Cofactor for Redox Biocatalysis.

Authors:  Ioannis Zachos; Manuel Döring; Georg Tafertshofer; Robert C Simon; Volker Sieber
Journal:  Angew Chem Int Ed Engl       Date:  2021-05-10       Impact factor: 15.336

10.  Improvement Thermal Stability of D-Lactate Dehydrogenase by Hydrophobin-1 and in Silico Prediction of Protein-Protein Interactions.

Authors:  Mehri Mokhtari-Abpangoui; Azadeh Lohrasbi-Nejad; Jafar Zolala; Masoud Torkzadeh-Mahani; Saba Ghanbari
Journal:  Mol Biotechnol       Date:  2021-06-09       Impact factor: 2.695

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