Protein-calixarenes binding plays an increasingly central role in many applications, spanning from molecular recognition to drug delivery strategies and protein inhibition. These ligands obey a specific bio-supramolecular chemistry, which can be revealed by computational approaches, such as molecular dynamics simulations. In this paper, we rely on all-atom, explicit-solvent molecular dynamics simulations to capture the electrostatically driven association of a phosphonated calix-[4]-arene with cytochome-C, which critically relies on surface-exposed paired lysines. Beyond two binding sites identified in direct agreement with the x-ray structure, the association has a larger structural impact on the protein dynamics. Then, our simulations allow a direct comparison to analogous calixarenes, namely, sulfonato, similarly reported as "molecular glue." Our work can contribute to a robust in silico predictive tool to assess binding sites for any given protein of interest for crystallization, with the specificity of a macromolecular cage whose endo/exo orientation plays a role in the binding.

Situating the phosphonated calixarene-cytochrome C association by molecular dynamics simulations / Bartocci, A.; Dumont, E.. - In: THE JOURNAL OF CHEMICAL PHYSICS. - ISSN 0021-9606. - 160:10(2024), p. 105101. [10.1063/5.0198522]

Situating the phosphonated calixarene-cytochrome C association by molecular dynamics simulations

Bartocci A.
Primo
;
2024-01-01

Abstract

Protein-calixarenes binding plays an increasingly central role in many applications, spanning from molecular recognition to drug delivery strategies and protein inhibition. These ligands obey a specific bio-supramolecular chemistry, which can be revealed by computational approaches, such as molecular dynamics simulations. In this paper, we rely on all-atom, explicit-solvent molecular dynamics simulations to capture the electrostatically driven association of a phosphonated calix-[4]-arene with cytochome-C, which critically relies on surface-exposed paired lysines. Beyond two binding sites identified in direct agreement with the x-ray structure, the association has a larger structural impact on the protein dynamics. Then, our simulations allow a direct comparison to analogous calixarenes, namely, sulfonato, similarly reported as "molecular glue." Our work can contribute to a robust in silico predictive tool to assess binding sites for any given protein of interest for crystallization, with the specificity of a macromolecular cage whose endo/exo orientation plays a role in the binding.
2024
10
Bartocci, A.; Dumont, E.
Situating the phosphonated calixarene-cytochrome C association by molecular dynamics simulations / Bartocci, A.; Dumont, E.. - In: THE JOURNAL OF CHEMICAL PHYSICS. - ISSN 0021-9606. - 160:10(2024), p. 105101. [10.1063/5.0198522]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11572/443050
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