» Articles » PMID: 29408402

Part-of-the-sites Binding and Reactivity in the Homooligomeric Enzymes - Facts and Artifacts

Overview
Publisher Elsevier
Specialties Biochemistry
Biophysics
Date 2018 Feb 7
PMID 29408402
Citations 10
Authors
Affiliations
Soon will be listed here.
Abstract

For a number of enzymes composed of several subunits with the same amino acid sequence, it was documented, or suggested, that binding of a ligand, or catalysis, is carried out by a single subunit. This phenomenon may be the result of a pre-existent asymmetry of subunits or a limiting case of the negative cooperativity, and is sometimes called "half-of-the-sites binding (or reactivity)" for dimers and could be called "part-of-the-sites binding (or reactivity)" for higher oligomers. In this article, we discuss molecular mechanisms that may result in "part-of-the-sites binding (and reactivity)", offer possible explanations why it may have a beneficial role in enzyme function, and point to experimental problems in documenting this behaviour. We describe some cases, for which such a mechanism was first reported and later disproved. We also give several examples of enzymes, for which this mechanism seems to be well documented, and profitable. A majority of enzymes identified in this study as half-of-the-sites binding (or reactive) use it in the flip-flop version, in which "half-of-the-sites" refers to a particular moment in time. In general, the various variants of the mechanism seems to be employed often by oligomeric enzymes for allosteric regulation to enhance the efficiency of enzymatic reactions in many key metabolic pathways.

Citing Articles

Purification and validation of asparaginyl-tRNA synthetase heterodimer with indistinguishable subunits.

Vallee I, Shapiro R, Yang X IUBMB Life. 2025; 77(2):e70000.

PMID: 39994779 PMC: 11864589. DOI: 10.1002/iub.70000.


Structural Fluctuation in Homodimeric Aminoacyl-tRNA Synthetases Induces Half-of-the-Sites Activity.

Okamoto Y, Yasuda T, Morita R, Shigeta Y, Harada R J Phys Chem B. 2024; 128(44):10823-10830.

PMID: 39441699 PMC: 11551958. DOI: 10.1021/acs.jpcb.4c05191.


Structure and dynamics of pteridine reductase 1: the key phenomena relevant to enzyme function and drug design.

Panecka-Hofman J, Poehner I Eur Biophys J. 2023; 52(6-7):521-532.

PMID: 37608196 PMC: 10618315. DOI: 10.1007/s00249-023-01677-6.


Cryo-EM structures of human arachidonate 12S-lipoxygenase bound to endogenous and exogenous inhibitors.

Mobbs J, Black K, Tran M, Burger W, Venugopal H, Holman T Blood. 2023; 142(14):1233-1242.

PMID: 37506345 PMC: 10579047. DOI: 10.1182/blood.2023020441.


An asymmetric structure of bacterial TrpRS supports the half-of-the-sites catalytic mechanism and facilitates antimicrobial screening.

Xiang M, Xia K, Chen B, Luo Z, Yu Y, Jiang L Nucleic Acids Res. 2023; 51(9):4637-4649.

PMID: 37070195 PMC: 10201369. DOI: 10.1093/nar/gkad278.