J 2022

Fast approximative methods for study of ligand transport and rational design of improved enzymes for biotechnologies

VÁVRA, Ondřej; Jiří DAMBORSKÝ a David BEDNÁŘ

Základní údaje

Originální název

Fast approximative methods for study of ligand transport and rational design of improved enzymes for biotechnologies

Autoři

VÁVRA, Ondřej (203 Česká republika, domácí); Jiří DAMBORSKÝ (203 Česká republika, garant, domácí) a David BEDNÁŘ (203 Česká republika, domácí)

Vydání

BIOTECHNOLOGY ADVANCES, OXFORD, PERGAMON-ELSEVIER SCIENCE LTD, 2022, 0734-9750

Další údaje

Jazyk

angličtina

Typ výsledku

Článek v odborném periodiku

Stát vydavatele

Velká Británie a Severní Irsko

Utajení

není předmětem státního či obchodního tajemství

Odkazy

Kód RIV

RIV/00216224:14310/22:00126323

Organizace

Přírodovědecká fakulta – Masarykova univerzita – Repozitář

UT WoS

000822719400003

EID Scopus

2-s2.0-85132920067

Klíčová slova anglicky

ART-RRT; Binding; Biotechnology; CaverDock; Catalysis; Cytochrome P450 CYP153A; Fe/a-ketoglutarate-dependent hydroxylase; GPathFinder; Channel; Docking; Ligand; MoMA-LigPath; Monoamine oxidase; Nanomotors; Protein engineering; SLITHER

Návaznosti

EF17_043/0009632, projekt VaV. GJ20-15915Y, projekt VaV. LM2018121, projekt VaV. LM2018140, projekt VaV. TN01000013, projekt VaV. 814418, interní kód Repo. 857560, interní kód Repo. ELIXIR-CZ II, velká výzkumná infrastruktura.
Změněno: 27. 2. 2025 00:50, RNDr. Daniel Jakubík

Anotace

V originále

Acceleration of chemical reactions by the enzymes optimized using protein engineering represents one of the key pillars of the contribution of biotechnology towards sustainability. Tunnels and channels of enzymes with buried active sites enable the exchange of ligands, ions, and water molecules between the outer environment and active site pockets. The efficient exchange of ligands is a fundamental process of biocatalysis. Therefore, enzymes have evolved a wide range of mechanisms for repetitive conformational changes that enable periodic opening and closing. Protein-ligand interactions are traditionally studied by molecular docking, whereas molecular dynamics is the method of choice for studying conformational changes and ligand transport. However, computational demands make molecular dynamics impractical for screening purposes. Thus, several approximative methods have been recently developed to study interactions between a protein and ligand during the ligand transport process. Apart from identifying the best binding modes, these methods also provide information on the energetics of the transport and identify problematic regions limiting the ligand passage. These methods use approximations to simulate binding or unbinding events rapidly (calculation times from minutes to hours) and provide energy profiles that can be used to rank ligands or pathways. Here we provide a critical comparison of available methods, showcase their results on sample systems, discuss their practical applications in molecular biotechnologies and outline possible future developments.

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