Simple, yet powerful methodologies for conformational sampling of proteins
文献情報
Takeshi Baba
Several biological functions, such as molecular recognition, enzyme catalysis, signal transduction, allosteric regulation, and protein folding, are strongly related to conformational transitions of proteins. These conformational transitions are generally induced as slow dynamics upon collective motions, including biologically relevant large-amplitude fluctuations of proteins. Although molecular dynamics (MD) simulation has become a powerful tool for extracting conformational transitions of proteins, it might still be difficult to reach time scales of the biological functions because the accessible time scales of MD simulations are far from biological time scales, even if straightforward conventional MD (CMD) simulations using massively parallel computers are employed. Thus, it is desirable to develop efficient methods to achieve canonical ensembles with low computational costs. From this perspective, we review several enhanced conformational sampling techniques of biomolecules developed by us. In our methods, multiple independent short-time MD simulations are employed instead of single straightforward long-time CMD simulations. Our basic strategy is as follows: (i) selection of initial seeds (initial structures) for the conformational sampling in restarting MD simulations. Here, the seeds should be selected as candidates with high potential to transit. (ii) Resampling from the selected seeds by initializing velocities in restarting short-time MD simulations. A cycle of these simple protocols might drastically promote the conformational transitions of biomolecules. (iii) Once reactive trajectories extracted from the cycles of short-time MD simulations are obtained, a free energy profile is evaluated by means of umbrella sampling (US) techniques with the weighted histogram analysis method (WHAM) as a post-processing technique. For the selection of the initial seeds, we proposed four different choices: (1) Parallel CaScade molecular dynamics (PaCS-MD), (2) Fluctuation Flooding Method (FFM), (3) Outlier FLOODing (OFLOOD) method, and (4) TaBoo SeArch (TBSA) method. We demonstrate applications of our methods to several biological systems, such as domain motions of proteins with large-amplitude fluctuations, conformational transitions upon ligand binding, and protein folding/refolding to native structures of proteins. Finally, we show the conformational sampling efficiencies of our methods compared with those by CMD simulations and other previously developed enhanced conformational sampling methods.
おすすめジャーナル

Main Group Chemistry

Topics in Catalysis

Bioorganic & Medicinal Chemistry

Acta Metallurgica Sinica-English Letters

Herald of the Russian Academy of Sciences

Bioorganic & Medicinal Chemistry Letters

Biocatalysis and Biotransformation

Journal of Asian Natural Products Research

Journal of Chemical Sciences

NDT & E International
関連文献
Lifespan prediction of Li-ion batteries in electrical vehicles by applying coulombic efficiency: from anode material to battery cell to vehicle application
Yanfei Li, Xiaohua Jiang, Kw Xu
DOI: 10.1039/D3SE01455J
An iron phosphate hydroxide hydrate electrocatalyst: synergistic effects of Fe2+ and Fe3+ for enhanced hydrogen evolution reaction stability
Jeygeerthika Reddy, Vivekanandan Raman, K. K. Viswanathan, Kandasamy Prabakar
DOI: 10.1039/D3SE01488F
P-incorporated CuO/Cu2S heteronanorods as efficient electrocatalysts for the glucose oxidation reaction toward highly sensitive and selective glucose sensing
Sonny H. Rhim, C.-D. Nguyen
DOI: 10.1039/D3CP04095J
Three-dimensional flower-like NiO on Cu foam as a lithiophilic current collector for high-performance lithium metal batteries
Bin Zhang, Changyong Huang, Xiaoqian Shi, Yong Liu, Guangmin Zhou
DOI: 10.1039/D3SE01262J
Highly efficient hydrogen production and selective CO2 reduction by the C3N5 photocatalyst using only visible light
Kosei Ito, Kei Noda
DOI: 10.1039/D3CP04431A
Studies on bimetallic Cu–Ag supported alumina catalysts for hydrodeoxygenation of 5-hydroxymethylfurfural to 2,5-dimethylfuran‡
B. Srinivasa Rao
DOI: 10.1039/D3SE01096A
Selective C–O bond cleavage in diphenyl ether via catalytic transfer hydrogenolysis over Ru-decorated nanocrystalline H-ZSM-5
Atul Kumar, Rajendra Srivastava
DOI: 10.1039/D3SE01285A
Coronene: a model for ultrafast dynamics in graphene nanoflakes and PAHs
Alberto Martín Santa Daría, Lola González-Sánchez, Sandra Gómez
DOI: 10.1039/D3CP03656A
Two-dimensional ternary pentagonal BCX (X = P, As, and Sb): promising photocatalyst semiconductors for water splitting with strong piezoelectricity
Luqi Liu, Xuxin Kang
DOI: 10.1039/D3CP04866G
こちらもおすすめ
N,N-二乙基-4-ブロモナフサルレン-1-カルボニルアミドはどのように合成されますか?
N,N-二乙基-4-ブロモナフサルレン-1-カルボニルアミドは、4-ブロモナフサルビンとN,N-ジエチルアミド基を有する反応物を用いて合成されます。触媒の使用は...
大黄酚-8-O-葡萄糖苷の市場動向や研究トレンドはどうですか?
大黄酚-8-O-葡萄糖苷の市場は、医薬品、機能食品、研究化学物質としての需要が高まっています。特に、その抗炎症作用や抗ウイルス作用に関する研究が増えています。価...
アトラキュリウム不純物5塩酸塩の物理化学的性質は何ですか?
アトラキュリウム不純物5塩酸塩のCAS番号は2048273-58-9です。この化合物は結晶性であり、分子量は約435.4 g/molです。水に溶けやすく、反応性...
2-イソブチルシクロヘキサン酮とは何ですか?
2-イソブチルシクロヘキサン酮は、CAS番号39207-65-3の化合物で、化学式はC11H20Oです。この化合物は、有機合成化学において重要な原料として使用さ...
2-溴-6-甲基烟酸を取り扱う際の実験室安全事項は何ですか?
この化合物は毒性と刺激性があります。密閉されたドラフトチャンバー内で処理し、PPE(ゴーグル、手袋)を使用してください。漏洩時は即座に通気し、適切な漏洩処理材を...
6-アミノニコニタルデオキシド塩化水和物の物理化学的性質は何ですか?
6-アミノニコニタルデオキシド塩化水和物のCAS番号は1588441-31-9です。この化合物は結晶性粉末で、分子量は220.63 g/molです。水に溶けやす...
塩酸中毒藜碱はどのように合成されますか?
塩酸中毒藜碱は、ピペリジンとピリジンの反応により合成されます。具体的には、ピペリジンとピリジンを反応させ、塩基触媒を使用してピペリジン環内 enters 3-ピ...
Methyl 4-(6-formyl-2-pyridinyl)benzoateに適用される法規ガイドラインは何ですか?
この化合物はCAS番号834884-81-0で、GHS分類では高毒性の危険性を持つと見なされます。REACH規則では登録が求められ、FDA/EPAでは環境、健康...
1-エチynyル-3-(三氟甲氧基)ベンゼンについて「に適用される法規ガイドラインは何ですか」
CAS番号 866683-57-0の1-エチynyル-3-(三氟甲氧基)ベンゼンは、GHS分類では易燃性化学品が該当し、REACH規則では特定の危険性を評価する...
メチル2-ブロモイソニコネートの代替品はありますか?
メチル2-ブロモイソニコネートの代替品には、メチルイソニコネートや他のブロモ化合物が含まれます。これらの代替物は、特定の用途に応じて選択されます。
掲載誌
Physical Chemistry Chemical Physics

Physical Chemistry Chemical Physics (PCCP) is an international journal co-owned by 19 physical chemistry and physics societies from around the world. This journal publishes original, cutting-edge research in physical chemistry, chemical physics and biophysical chemistry. To be suitable for publication in PCCP, articles must include significant innovation and/or insight into physical chemistry; this is the most important criterion that reviewers and Editors will judge against when evaluating submissions. The journal has a broad scope and welcomes contributions spanning experiment, theory, computation and data science. Topical coverage includes spectroscopy, dynamics, kinetics, statistical mechanics, thermodynamics, electrochemistry, catalysis, surface science, quantum mechanics, quantum computing and machine learning. Interdisciplinary research areas such as polymers and soft matter, materials, nanoscience, energy, surfaces/interfaces, and biophysical chemistry are welcomed if they demonstrate significant innovation and/or insight into physical chemistry. Joined experimental/theoretical studies are particularly appreciated when complementary and based on up-to-date approaches.
![(1S,2R,4S)-1,7,7-Trimethylbicyclo[2.2.1]heptan-2-ol structure (1S,2R,4S)-1,7,7-Trimethylbicyclo[2.2.1]heptan-2-ol structure](https://static.chemtradehub.com/structs/464/464-45-9-f88b.webp)
![(2S)-{[(9H-Fluoren-9-ylmethoxy)carbonyl]amino}(phenyl)acetic acid structure (2S)-{[(9H-Fluoren-9-ylmethoxy)carbonyl]amino}(phenyl)acetic acid structure](https://static.chemtradehub.com/structs/102/102410-65-1-4aa7.webp)


