• 제목/요약/키워드: Binding geometry

검색결과 41건 처리시간 0.02초

Computational Study of 3-Aminophenol·(CO2)1 Cluster: CO2 Capture Ability of 3-Aminophenol

  • Sohn, Woon-Yong;Kim, Min-Ho;Kim, Sang-Su;Kang, Hyuk
    • Bulletin of the Korean Chemical Society
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    • 제31권10호
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    • pp.2806-2808
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    • 2010
  • The structure of 3-aminophenol $(CO_2)_1$ cluster was computationally studied both in the ground and the lowest singlet excited electronic states. The ground state structure and binding energy of the cluster was investigated using the second-order M$\ddoot{o}$ller-Plesset perturbation theory (MP2) at the complete basis set (CBS) limit. The excited state geometry of the cluster was obtained at the second-order approximate coupled cluster (CC2) level with cc-pVDZ basis set, and the $S_0-S_1$ absorption spectrum was simulated by calculating Franck-Condon overlap integral. The ground state geometry of the global minimum with a very high binding energy of 4.3 kcal/mol was found for the cluster, due to the interaction between amino group and $CO_2$ in addition to the strong $\pi-\pi$ interaction between the aromatic ring and $CO_2$. The excited state geometry shows a very big shift in the position of $CO_2$ compared to the ground state geometry, which results in low intensity and broad envelope in the Franck-Condon simulation.

Theoretical Approach for the Structures, Energetics and Spectroscopic Properties of (H2O3)n (n = 1-5) Clusters

  • Seo, Hyun-Il;Bahng, Jin-Ah;Kim, Yeon-Cheol;Kim, Seung-Joon
    • Bulletin of the Korean Chemical Society
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    • 제33권9호
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    • pp.3017-3024
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    • 2012
  • The geometrical parameters, vibrational frequencies, and binding energies for $(H_2O_3)_n$ (n = 1-5) have been investigated using various quantum mechanical techniques. The possible structures of the clusters (n = 2-5) are fully optimized and the binding energies are predicted using energy differences at each optimized geometry. The harmonic vibrational frequencies are also determined and zero-point vibrational energies (ZPVEs) are considered for the better prediction of the binding energy. The best estimation of the binding energy for the dimer is 8.65 kcal/mol. For n = 2 and 3, linear structures with all trans forms of the HOOOH monomers are predicted to be the lowest conformations in energy, while the cyclic structures with all cis-HOOOH monomers are preferable structures for n = 4 and 5.

Substituent Effects on the Binding Energies of Benzyl Alcohol-H2O Clusters: Ab initio Study

  • Ahn, Doo-Sik;Lee, Sung-Yul
    • Bulletin of the Korean Chemical Society
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    • 제23권2호
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    • pp.262-266
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    • 2002
  • Computations are presented for the ortho- and para-substituted benzyl alcohol-$H_2O$ clusters. A variety of conformers are predicted, and their relative energies are compared. Binding energies of the clusters are computed, and detailed analysis is presented on the effects of substitution on the strength of the hydrogen bond in the clusters. F- and $NH_2-$ substituted clusters are studied to analyze the effects of electron-withdrawing and electron-pushing groups. In para-substituted clusters, the inductive effects are dominant, affecting the binding energies in opposite way depending on whether the hydroxyl group is proton-donating or -accepting. For ortho-substituted clusters, more direct involvement of the substituting group and the resulting geometry change of the hydrogen bond should be invoked to elucidate complicated pattern of the binding energy of the clusters.

Contribution of Second Metal Binding Site for Metal Specificity of D-Xylose Isomerase

  • Cha, Jae-Ho
    • Journal of Microbiology and Biotechnology
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    • 제9권6호
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    • pp.757-763
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    • 1999
  • The metal specificity of D-xylose isomerase from Streptomyces rubiginosus was examined by site-directed mutagenesis. The activation constants for metal ion ($Mg^{2+},{\;}Mn^{2+},{\;}or{\;}Co^{2+}$) of wild-type and mutant enzymes were determined by titrating the metal ion-free enzyme with $Mg^{2+},{\;}Mn^{2+},{\;}and{\;}Co^{2+}$, respectively. Substitutions of amino acids either on coordinated or around the M2 site (His-22O, Asn-185, Glu-186, and Glu-221) dramatically affected the activation constants as well as activity. A decrease of metal binding affinity was most significant in the presence of $Mg^{2+}$. When compared with the wild-type enzymes, the binding affinity of H220S and Nl85K for Mg^{2+} was decreased by 10-15-fold, while the affinity for $Mn^{2+}{\;}or{\;}Co^{2+}$ only decreased by 3-5-fold. All the mutations close to the M2 site changed their metal preference from $Mg^{2+}{\;}to{\;}Mn^{2+}{\;}or{\;}Co^{2+}$. These altered metal preferences may be caused by a relatively weak binding affinity of $Mg^{2+}$ to the enzyme. Thermal inactivation studies of mutants at the M2 site also support the importance of the M2 site geometry for metal specificity as well as the thermostability of the enzyme. Mutations of other important groups hardly affected the metal preference, although pronounced effects on the kinetic parameters were sometimes observed. This study proposes that the metal specificity of D-xylose isomerase can be altered by the perturbation of the M2 site geometry, and that the different metal preference of Group I and GroupII D-xylose isomerases may be caused by nonconserved amino acid residues around the M2 site.

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A Theoretical Study of the Formation of Benzene Excimer: Effects of Geometry Relaxation and Spin-state Dependence

  • Kim, Dongwook
    • Bulletin of the Korean Chemical Society
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    • 제35권9호
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    • pp.2738-2742
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    • 2014
  • Geometry relaxation effects on the formation of benzene excimer were investigated by means of ab initio calculation at SOS-CIS($D_0$)/aug-cc-pVDZ level. In the case of T-shaped dimer configuration, intermolecular interactions in the excited states are found to be nearly the same as those in the ground state and structural deformations are limited within a single molecule; the geometry relaxation effects are then negligible and singlet-triplet energy gap remains constant. As for face-to-face eclipsed dimer, on the other hand, both molecules undergo structural change. As a result, intermolecular interactions in the excited states are significantly different than those in the ground state. Although the intermolecular distances obtained from potential energy curve calculation with frozen molecular structures are in qualitative agreement, the excited-state binding energies are notably overestimated with respect to those at optimized structures. In particular, the effects are calculated to be larger in $T_1$ state and hence singlet-triplet energy gap, which reduces markedly in this configuration, is underestimated without relaxation.

Poly$[d(A-T)_2]$, Poly$[d(G-C)_2]$와 스퍼민의 결합 형태에 관한 연구 (Binding Site of Spermine at Poly$[d(A-T)_2]$ and Poly$[d(G-C)_2]$)

  • 윤병화;전선희;송영대;조태섭;김석규
    • 대한화학회지
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    • 제42권5호
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    • pp.506-511
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    • 1998
  • 생체 내에서 양이온을 가지는 폴리아민류인 스퍼민이 DNA에 결합할 경우 안정화도를 증가시킴과 동시에 구조적인 변환(B형태→Z형태 변환)을 유발하는 것으로 알려져 있다. 그러나, 스퍼민의 분광학적 비활성 때문에 DNA에 대한 정확한 결합 위치를 분광학적으로 결정하는 것은 불가능했으므로 그 결합메커니즘에 관한 구체적인 보고는 없다. 본 실험에서는 스퍼민에 대한 탐침 작용을 할 수 있는 물질로 분광 활성이 있으며 결합 자리를 잘 알고 있는 DAPI를 사용하였다. 합성 DNA에서 스퍼민의 결합 자리와 염기 선택성을 연구한 결과, 스퍼민의 농도가 커질수록 아데닌-티민 염기쌍이 교대로 나선을 이루는 $poly[d(A-T)_{2}]$ 에서는 스퍼민이 DNA의 작은 홈 주위의 인산기 뼈대에 걸쳐지면 DAPI의 소수성 환경을 증가시켜 형광스펙트럼의 세기를 급격히 증가시킨다. 구아닌-시토신 염기쌍이 교대로 반복되며 만들어진 $poly[d(G-C)_{2}]$에서는 스퍼민이 DNA의 큰 홈 속에 결합하면서 큰 홈에 걸쳐 있으면서 부분적으로 염기쌍사이에 삽입된 DAPI를 밀어내는 것으로 생각할 수 있다. 이 두 가지의 경우에 스퍼민이 염기쌍에 대해 특별한 선택성을 보이지 않았다.

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소분자 도킹에서의 평가함수의 개발 동향 (Recent Development of Scoring Functions on Small Molecular Docking)

  • 정환원;조승주
    • 통합자연과학논문집
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    • 제3권1호
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    • pp.49-53
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    • 2010
  • Molecular docking is a critical event which mostly forms Van der waals complex in molecular recognition. Since the majority of developed drugs are small molecules, docking them into proteins has been a prime concern in drug discovery community. Since the binding pose space is too vast to cover completely, many search algorithms such as genetic algorithm, Monte Carlo, simulated annealing, distance geometry have been developed. Proper evaluation of the quality of binding is an essential problem. Scoring functions derived from force fields handle the ligand binding prediction with the use of potential energies and sometimes in combination with solvation and entropy contributions. Knowledge-based scoring functions are based on atom pair potentials derived from structural databases. Forces and potentials are collected from known protein-ligand complexes to get a score for their binding affinities (e.g. PME). Empirical scoring functions are derived from training sets of protein-ligand complexes with determined affinity data. Because non of any single scoring function performs generally better than others, some other approaches have been tried. Although numerous scoring functions have been developed to locate the correct binding poses, it still remains a major hurdle to derive an accurate scoring function for general targets. Recently, consensus scoring functions and target specific scoring functions have been studied to overcome the current limitations.

Electron Redistribution of Clavalanate on Binding to a $\beta$-Lactamase

  • Sang-Hyun Park;Hojing Kim
    • Bulletin of the Korean Chemical Society
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    • 제14권4호
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    • pp.491-496
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    • 1993
  • A class A ${\beta}$-lactamase from Staphylococcus aureus PC1 complexed with 3R,5R-clavulanate is studied. The starting geometry for the computation is the crystal structure of the ${\beta}$-lactamase. Docking of the clavulanate to the enzyme is done exploiting the requirements of electrostatic and shape complementarity between the enzyme and clavulanate. This structure is then hydrated by water molecules and refined by energy minimization and short molecular dynamics simulation. In the energy refined structure of this complex, the carboxyl group of the clavulanate is hydrogen bonded to Lys-234, and the the carbonyl carbon atom of the clavulanate is adjacent to the $O_{\gamma}$ of Ser-70. It is found that a crystallographic water molecule initially located at the oxyanion hole, which is formed by the two -NH group of Ser-70 and Gln-237, is replaced by the carbonyl oxygen atom of the 3R,5R-clavulanate after docking and energy reginement. The crystallographic water molecules are proved to be important in ligand binding. Glu-166 residue is found to be repulsive to the binding of clavulanate, which is in agreement with experimental observation. Arg-244 residue is found to be important to the binding of clavulanate as well as to interaction with C2 side chain of the clavulanate. The electron density redistribution of the clavulanate on binding to the ${\beta}$-lactamase in studied by an ab initio quantum-mechanical calculation. A significant redistribution of electron density of the clavulanate is induced by the enzyme, toward the enzyme, toward the transition state of the enzymatic reaction.

Ab initio Studies on Acene Tetramers: Herringbone Structure

  • Park, Young-Hee;Yang, Ki-Yull;Kim, Yun-Hi;Kwon, Soon-Ki
    • Bulletin of the Korean Chemical Society
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    • 제28권8호
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    • pp.1358-1362
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    • 2007
  • The structures, energetics and transfer integrals of the acene tetramers up to pentacene are investigated with the ab initio molecular orbital method at the level of second-order Møller-Plesset perturbation theory (MP2). Calculated geometries for the herringbone-style structures found in the crystal structure were characterized as local minima, however the geometrical discrepancy between crystal and MP2 theoretical structure is reasonably small. The binding energy of pentacene tetramer was calculated up to 40 kcal/mol (MP2/6-31G(d)) and about 90 kcal/mol (MP2/aug-cc-pVDZ), and the latter seems to be too much overestimated. The tendency of the hole transfer integrals computed with ab initio MP2/3-21G(d) geometry is well agreement with those estimated with crystal structure with some discrepancy, and the gradual increment of the transfer integrals at the crystal geometry is attributed to mainly packing structure rather than the intrinsic property of acene such as a size of acene.

치환 티아졸의 양성자 친화도에 대한 Ab Initio 연구 (Ab Initio Studies on Proton Affinities of Substituted Thiazoles)

  • 이갑용;이현미
    • 대한화학회지
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    • 제42권1호
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    • pp.1-8
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    • 1998
  • 티아졸 고리를 포함하는 lexitroposin에서, DNA minor groove의 염기쌍과 결합하는 부분인 티아졸의 분자정전기전위를 ab initio계산을 통해 구하였으며 protonate된 티아졸의 두 가지 가능한 형태에 대해 MNDO 및 ab initio방법으로 기하학적 구조를 최적화 하였다. 최적화된 구조에 대해 6-31G및 6-31G* basis set을 사용하여 양성자 친화도를 구하였으며 아울러 티아졸의 양성자 친화도에 미치는 치환기 효과를 알아보기 위해 전자를 주는 기와 전자를 끄는 기를 치환시킨 여러 치환 치아졸에 대해 양성자 친화도를 조사하였다. 그 결과 티아졸의 질소 원자가 DNA minor groove 쪽으로 배향되고 전자를 주는 기가 치환될 때 양성자 친화도가 증가됨을 알 수 있었다.

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