Improving the performance of the MM/PBSA and MM/GBSA methods in recognizing the native structure of the Bcl-2 family using the interaction entropy method

文献情報

出版日 2020-02-04
DOI 10.1039/C9CP06459A
インパクトファクター 3.676
著者

Susu Zhong, Kaifang Huang, Song Luo, Shuheng Dong, Lili Duan


原文を見る

要旨

In the research and development of new drugs, theoretical and computational studies play an increasingly important role in discriminating native and decoy structures by their binding free energies. Predicting the binding free energy using the molecular mechanics/Poisson–Boltzmann (Generalized Born) surface area (MM/PB(GB)SA) methods to identify the native structure as the lowest-energy conformation is more theoretically rigorous than most scoring functions, but the main challenge of this method is the calculation of the entropic contribution. In this study, we add the entropic contribution to the MM/PBSA and two MM/GBSA (GBHCT and GBOBC1) models using the interaction entropy (IE) method. We then systemically evaluate the performance of these methods in recognizing the native structures by predicting the binding affinities of 176 protein–ligand and protein–protein systems of the Bcl-2 family. By calculating a series of statistical metrics, sensitivity, specificity, accuracy, Matthews correlation coefficient, the G-mean, and the receiver operating characteristic (ROC) curve, we find that the ability to discern the native structure from a decoy ensemble is improved significantly by the modification of the binding free energy using the IE method in both protein–ligand and protein–protein systems. Furthermore, the maximum area under the ROC curve (AUC) was 0.97, which was obtained by the GBHCT model combined with the IE method, indicating that this method has the best performance. The largest improvement occurs in the PB method, with a change in the AUC of 0.32. The modification of the energy is more obvious for protein–protein interactions than for protein–ligand interactions. This study indicates the effectiveness of the IE method in successfully recognizing the native structure, which is critical in rational drug design.

関連文献

The flow patterning capability of localized natural convection

Ling-Ting Huang, Ling Chao

2016-08-18 Paper

DOI: 10.1039/C6CP03501A

Ultrafast electronic energy relaxation in a conjugated dendrimer leading to inter-branch energy redistribution

D. Ondarse-Alvarez, S. Kömürlü, A. E. Roitberg, G. Pierdominici-Sottile, S. Tretiak, S. Fernandez-Alberti, V. D. Kleiman

2016-08-09 Paper

DOI: 10.1039/C6CP04448D

Generation of highly reactive oxygen species on metal-supported MgO(100) thin films

Zhenjun Song, Jing Fan, Yueyue Shan, Alan Man Ching Ng, Hu Xu

2016-08-17 Paper

DOI: 10.1039/C6CP03236B

Molecular mechanisms responsible for hydrate anti-agglomerant performance

Anh Phan, Tai Bui, Erick Acosta, Pushkala Krishnamurthy, Alberto Striolo

2016-07-07 Paper

DOI: 10.1039/C6CP03296F

A new insight into π–π stacking involving remarkable orbital interactions

Rundong Zhao, Rui-Qin Zhang

2016-08-18 Paper

DOI: 10.1039/C6CP05485D

Water-mediated aggregation of 2-butoxyethanol

Shannon R. Pattenaude, Kenji Mochizuki, Dor Ben-Amotz

2016-08-25 Paper

DOI: 10.1039/C6CP04379H

Shedding light on the mechanism of asymmetric track etching: an interplay between latent track structure, etchant diffusion and osmotic flow

Valery V. Bashevoy, Irina V. Blonskaya, Nikolay E. Lizunov, Oleg L. Orelovitch

2016-08-26 Paper

DOI: 10.1039/C6CP05465J

Effect of chain microstructure on self-assembly and emulsification of amphiphilic poly(acrylic acid)-polystyrene copolymers

Ye Zhu, Chenglin Yi, Qiong Hu, Wei Wei, Xiaoya Liu

2016-08-30 Paper

DOI: 10.1039/C6CP04978H

An oxygen-vacancy rich 3D novel hierarchical MoS2/BiOI/AgI ternary nanocomposite: enhanced photocatalytic activity through photogenerated electron shuttling in a Z-scheme manner

M. Jahurul Islam, D. Amaranatha Reddy, Noh Soo Han, Jiha Choi, Jae Kyu Song, Tae Kyu Kim

2016-08-12 Paper

DOI: 10.1039/C6CP02246D

Coronene-based metal–organic framework: a theoretical exploration

Chandrima Chakravarty, Bikash Mandal, Pranab Sarkar

2016-08-17 Paper

DOI: 10.1039/C6CP05495A

こちらもおすすめ

化合物よくある質問

2,3-スチオエポキシマドルを取り扱う際の実験室安全事項は何ですか?

取り扱いにはPPE(プロテクティブ・パーソナル・エイド)が必要で、防ぐ手袋と保護眼鏡を着用してください。ドラフトチャンバーの使用を推奨します。漏洩した場合は、適...

4267-80-52,3-Thioepoxy Madol
化合物よくある質問

6-氟-2-氨基苯酚の主な用途は何ですか?

6-氟-2-氨基苯酚は主に医薬品の合成材料として使用され、一部の農薬の製造にも利用されます。また、研究用途でも広く使用されています。

53981-25-22-Amino-6-fluorophen...
化合物よくある質問

BOC-S-3-アミニ-4-(4-メチオキシベンチル)-ブタン酸の代替品はありますか?

この化合物の代替品としては、BOC保護基を有さないアミノ酸やその他の保護基化合物が考えられます。また、メチオキシ基を有しない他の芳香族アミノ酸も代替品として挙げ...

126800-59-7(3S)-4-(4-Methoxyphe...
化合物よくある質問

Methyl 2-(chloromethyl)-3-nitrobenzoate(1218910-61-2)の代替品はありますか?

Methyl 2-(chloromethyl)-3-nitrobenzoate(1218910-61-2)の代替品としては、化学組成を変えることで効果を達成する...

1218910-61-2Methyl 2-(chlorometh...
化合物よくある質問

(2R)-2-アミノ-N-ベンジル-3-ヒドロキシプロパナミドを含む廃棄物はどのように処理すべきですか?

(2R)-2-アミノ-N-ベンジル-3-ヒドロキシプロパナミドを含む廃棄物は、適切な廃棄物管理ガイドラインに基づき処理する必要があります。まず、廃棄物を適切に収...

175481-39-7(2R)-2-amino-N-benzy...
化合物よくある質問

6,7-二氢-咪唑並[1,2-a]ピリドイン-8(5h)-酮はどのように合成されますか?

6,7-二氢-咪唑並[1,2-a]ピリドイン-8(5h)-酮は、2-ブロモフェニルアセトインとリン酸ハロゲン化物を反応させることで合成できます。この反応は高温で...

457949-09-66,7-Dihydroimidazo[1...
化合物よくある質問

エチル(3R)-3-ピロリジニル酢酸水和塩とは何ですか?

エチル(3R)-3-ピロリジニル酢酸水和塩は、CAS番号1332459-32-1の化合物で、(R)-乙基2-(ピロリジン-3-基)酢酸塩水和塩と呼ばれます。この...

1332459-32-1Ethyl (3R)-3-pyrroli...
化合物よくある質問

(2S)-{[(2-メチルエチルオキシ]カルボニル}アミノ)[2-(トリアフルオロメチルフェニル]エチカシック酸の物理化学的性質は何ですか?

(2S)-{[(2-メチルエチルオキシ]カルボニル}アミノ)[2-(トリアフルオロメチルフェニル]エチカシック酸のCAS番号は1203454-45-8です。この...

1203454-45-8(2S)-({[(2-Methyl-2-...
化合物よくある質問

2-ブロモ-1-(2-メチル-2-プロパニル)-4-ニトロベンゼンはどのように保存すればよいですか?

2-ブロモ-1-(2-メチル-2-プロパニル)-4-ニトロベンゼンは、直射日光を避けて暗所で、室温(約15℃〜25℃)、乾燥した場所に保存する必要があります。ま...

6310-17-42-Bromo-1-(2-methyl-...
化合物よくある質問

1-[(4-硝基フェニル)スルホニル]-1H-1,2,4-三唑の市場動向や研究トレンドはどうですか?

市場動向としては、1-[(4-硝基フェニル)スルホニル]-1H-1,2,4-三唑は主に農業用除草剤や合成化学製品の原料として利用されています。研究トレンドとして...

57777-84-11-[(4-Nitrophenyl)su...

掲載誌

Physical Chemistry Chemical Physics

Physical Chemistry Chemical Physics
CiteScore: 5.5
自己引用率: 10.3%
年間論文数: 3036

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.

おすすめサプライヤー

免責事項
このページに表示される学術雑誌情報は、参考および研究目的のみを目的としています。当社は雑誌出版社とは提携しておらず、投稿の取り扱いも行っておりません。出版に関するお問い合わせは、各雑誌出版社に直接ご連絡ください。
表示されている情報に誤りがある場合は、support@chemtradehub.com までご連絡ください。迅速に確認し、対応いたします。