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Mikhaylina, A.

Publications and source records attributed to Mikhaylina, A..

2 recordsLinked to original sources

A simple methods for obtaining a multivalent protein with a variable number of binding sites and estimating its binding parameters

The study of natural and the design of artificial multivalent proteins is a promising field of molecular biology. Working with such proteins is much more difficult than with their monovalent analogues. In this paper, we show how using a ring of heptameric Sm-like protein as a scaffold, it is possible to create a multivalent protein with a different number of binding sites. This is an urgent task for the study of multivalent and multicenter protein-protein interactions. The method of analysis used in the work allows us to evaluate the stoichiometry and the dissociation constant of complexes of artificial chaperone with a non-native protein. It is shown that for reliable binding of non-native LA, its interaction with several apical domains of GroEL is necessary. At the same time, the dissociation constant of such a complex does not significantly change with an increase in the number of binding domains in the oligomer. Up to 4 LA molecules can be attached to the complete heptameric ring of apical domains. The proposed methods have a good cost-to-result ratio and can be applied to the study and design of other new proteins.

bioengineering↗

Studying of RNA-protein interactions between a mutant form of glycyl-tRNA synthetase associated with neurodegenerative diseases and IRES type I.

Aminoacyl-tRNA synthetases (aaRS) are the main enzymes of protein biosynthesis. Human glycyl-tRNA synthetase, in addition to the main function of amino acid transfer to the corresponding tRNA molecules, is also involved in the initiation of IRES I translation. All members of the enterovirus genus have this type of IRES. It is also known that the presence of point mutations in aaRS leads to the occurrence of diseases in which peripheral nerves are affected. One such disorder of the nervous system is the incurable neurodegenerative disorder Charcot-Marie-Tooth (CMT). The most studied enzyme whose mutations cause CMT is glycyl-tRNA synthetase (GlyRS). In this work, we tested the ability of various mutant forms of glycyl-tRNA synthetase associated with Charcot-Marie-Tooth syndrome to form a stable complex with IRES I. It turned out that neither catalytic activity nor the ability to form a dimer are necessary for the interaction of GlyRS with IRES.

molecular biology↗