Protein quaternary structure is the fourth (and highest) classification level of protein structure. Protein quaternary structure refers to the structure of proteins which are themselves composed of two or more smaller protein chains (also referred to as subunits). Protein quaternary structure describes the number and arrangement of multiple folded protein subunits in a multi-subunit complex. It includes organizations from simple dimers to large homooligomers and complexes with defined or variable numbers of subunits. In contrast to the first three levels of protein structure, not all proteins will have a quaternary structure since some proteins function as single units. Protein quaternary structure can also refer to biomolecular complexes of proteins with nucleic acids and other cofactors.
Many proteins are actually assemblies of multiple polypeptide chains. The quaternary structure refers to the number and arrangement of the protein subunits with respect to one another. Examples of proteins with quaternary structure include hemoglobin, DNA polymerase, ribosomes, antibodies, and ion channels.
Enzymes composed of subunits with diverse functions are sometimes called holoenzymes, in which some parts may be known as regulatory subunits and the functional core is known as the catalytic subunit. Other assemblies referred to instead as multiprotein complexes also possess quaternary structure. Examples include nucleosomes and microtubules. Changes in quaternary structure can occur through conformational changes within individual subunits or through reorientation of the subunits relative to each other. It is through such changes, which underlie cooperativity and allostery in "multimeric" enzymes, that many proteins undergo regulation and perform their physiological function.
The above definition follows a classical approach to biochemistry, established at times when the distinction between a protein and a functional, proteinaceous unit was difficult to elucidate.
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thumb|right|300px|Repliement des protéines Le repliement des protéines est le processus physique par lequel un polypeptide se replie dans sa structure tridimensionnelle caractéristique dans laquelle il est fonctionnel. Chaque protéine commence sous forme de polypeptide, transcodée depuis une séquence d'ARNm en une chaîne linéaire d'acides aminés. Ce polypeptide ne possède pas à ce moment de structure tridimensionnelle développée (voir côté gauche de la figure).
A protein complex or multiprotein complex is a group of two or more associated polypeptide chains. Protein complexes are distinct from multidomain enzymes, in which multiple catalytic domains are found in a single polypeptide chain. Protein complexes are a form of quaternary structure. Proteins in a protein complex are linked by non-covalent protein–protein interactions. These complexes are a cornerstone of many (if not most) biological processes.
La structure des protéines est la composition en acides aminés et la conformation en trois dimensions des protéines. Elle décrit la position relative des différents atomes qui composent une protéine donnée. Les protéines sont des macromolécules de la cellule, dont elles constituent la « boîte à outils », lui permettant de digérer sa nourriture, produire son énergie, de fabriquer ses constituants, de se déplacer, etc. Elles se composent d'un enchaînement linéaire d'acides aminés liés par des liaisons peptidiques.
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EPFL2024
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