Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Malate dehydrogenase: A model for structure, evolution, and catalysis

View through CrossRef
AbstractMalate dehydrogenases are widely distributed and alignment of the amino acid sequences show that the enzyme has diverged into 2 main phylogenetic groups. Multiple amino acid sequence alignments of malate dehydrogenases also show that there is a low degree of primary structural similarity, apart from in several positions crucial for nucleotide binding, catalysis, and the subunit interface. The 3‐dimensional structures of several malate dehydrogenases are similar, despite their low amino acid sequence identity. The coenzyme specificity of malate dehydrogenase may be modulated by substitution of a single residue, as can the substrate specificity. The mechanism of catalysis of malate dehydrogenase is similar to that of lactate dehydrogenase, an enzyme with which it shares a similar 3‐dimensional structure. Substitution of a single amino acid residue of a lactate dehydrogenase changes the enzyme specificity to that of a malate dehydrogenase, but a similar substitution in a malate dehydrogenase resulted in relaxation of the high degree of specificity for oxaloacetate. Knowledge of the 3‐dimensional structures of malate and lactate dehydrogenases allows the redesign of enzymes by rational rather than random mutation and may have important commercial implications.
Title: Malate dehydrogenase: A model for structure, evolution, and catalysis
Description:
AbstractMalate dehydrogenases are widely distributed and alignment of the amino acid sequences show that the enzyme has diverged into 2 main phylogenetic groups.
Multiple amino acid sequence alignments of malate dehydrogenases also show that there is a low degree of primary structural similarity, apart from in several positions crucial for nucleotide binding, catalysis, and the subunit interface.
The 3‐dimensional structures of several malate dehydrogenases are similar, despite their low amino acid sequence identity.
The coenzyme specificity of malate dehydrogenase may be modulated by substitution of a single residue, as can the substrate specificity.
The mechanism of catalysis of malate dehydrogenase is similar to that of lactate dehydrogenase, an enzyme with which it shares a similar 3‐dimensional structure.
Substitution of a single amino acid residue of a lactate dehydrogenase changes the enzyme specificity to that of a malate dehydrogenase, but a similar substitution in a malate dehydrogenase resulted in relaxation of the high degree of specificity for oxaloacetate.
Knowledge of the 3‐dimensional structures of malate and lactate dehydrogenases allows the redesign of enzymes by rational rather than random mutation and may have important commercial implications.

Related Results

Mitochondrial disorders in neuromuscular pathology
Mitochondrial disorders in neuromuscular pathology
Introduction. With the advent of new drugs — analogues of mitochondrial metabolites, the widespread introduction into practice of research methods for assessing the function of mit...
Malate Efflux From Root Apices and Tolerance to Aluminium Are Highly Correlated in Wheat
Malate Efflux From Root Apices and Tolerance to Aluminium Are Highly Correlated in Wheat
Aluminium (Al) can stimulate the efflux of malate and other organic acids from root apices of wheat (Triticum aestivum L.) seedlings. This response has been implicated in a mechani...
Malate dehydrogenase of the cytosol. Preparation and reduced nicotinamide–adenine dinucleotide-binding studies
Malate dehydrogenase of the cytosol. Preparation and reduced nicotinamide–adenine dinucleotide-binding studies
1. Two methods of preparing pig heart soluble malate dehydrogenase are described. A slow method yields an enzyme composed of three electrophoretically separable subforms. The more ...
Dual Catalysis
Dual Catalysis
Dual catalysis is a powerful strategy for developing new organic reactions that used to be challenging to achieve by traditional methods. Whether through relay catalysis or synergi...
A Biophysical Analysis of Malate Dehydrogenase and Citrate Synthase Protein‐Protein Interaction
A Biophysical Analysis of Malate Dehydrogenase and Citrate Synthase Protein‐Protein Interaction
The metabolon theory describes the protein interactions of enzymes regulating a metabolic pathway. Through these interactions proteins can share substrates through direct channelin...
Interpretable Attention-based Transfer Learning in Plasma Catalysis: A Study on the Role of Surface Charge
Interpretable Attention-based Transfer Learning in Plasma Catalysis: A Study on the Role of Surface Charge
Abstract Low-temperature plasma catalysis holds promise for electrification of energy-intensive chemical processes such as methane reforming and ammonia synthesis. However,...
Biochemical characterization of malate synthase G of P. aeruginosa
Biochemical characterization of malate synthase G of P. aeruginosa
Abstract Background Malate synthase catalyzes the second step of the glyoxylate bypass, the condensation of acetyl coenzyme A and glyoxylate to f...

Back to Top