Article ID Journal Published Year Pages File Type
1929830 Biochemical and Biophysical Research Communications 2012 6 Pages PDF
Abstract

The de novo biosynthesis of arginine in microorganisms and plants is accomplished via several enzymatic steps. The enzyme N-acetyl glutamate kinase (NAGK) catalyzes the phosphorylation of the γ-COO− group of N-acetyl-l-glutamate (NAG) by adenosine triphosphate (ATP) which is the second rate limiting step in arginine biosynthesis pathway. Here we report the crystal structure of putative N-acetyl glutamate kinase (NAGK) from Thermus thermophilus HB8 (TtNAGK) determined at 1.92 Å resolution. The structural analysis of TtNAGK suggests that the dimeric quaternary state of the enzyme and arginine insensitive nature are similar to mesophilic Escherichia coli NAGK. These features are significantly different from its thermophilic homolog Thermatoga maritima NAGK which is hexameric and arginine-sensitive. TtNAGK is devoid of its substrates but contains two sulfates at the active site. Very interestingly the active site of the enzyme adopts a conformation which is not completely open or closed and likely represents an intermediate stage in the catalytic cycle unlike its structural homologs, which all exist either in the open or closed conformation. Engineering arginine biosynthesis pathway enzymes for the production of l-arginine is an important industrial application. The structural comparison of TtNAGK with EcNAGK revealed the structural basis of thermostability of TtNAGK and this information could be very useful to generate mutants of NAGK with increased overall stability.

► Structure of Thermus thermophilus N-acetyl glutamate kinase (TtNAGK) determined. ► TtNAGK is arginine insensitive and first dimeric structure of thermophilic origin. ► Active site of TtNAGK exhibits intermediate conformation which is unique. ► Structural basis of thermostability of TtNAGK has been analyzed. ► Structural information helps NAGK mutants’ generation for industrial applications.

Related Topics
Life Sciences Biochemistry, Genetics and Molecular Biology Biochemistry
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