Alkali metals (Li, Na, and K) in methyl phosphodiester hydrolysis
文献情報
Rahul V. Pinjari, Shreyas S. Kaptan, Shridhar P. Gejji
The phosphodiester linkage central to biological systems has been modeled by methyl phosphodiester (MPDE) in various theoretical and experimental studies. Under physiological conditions, hydrolysis of the phosphodiester is negligible, however this process can be catalyzed in the presence of metal ions. To understand the role of alkali metals in MPDE hydrolysis and, in particular, how it influences the reaction pathway and the associated energetics, density functional calculations employing the 6-31+G(d,p) basis set have been carried out. Different pathways that include the reactant, intermediates and the products have been investigated for MPDE hydrolysis catalyzed by one or two lithium ions, characterized as stationary point geometries on the potential energy surface. The pathways A and B incorporate a single lithium ion bonded to different oxygens of the diester functionality. In pathway C, a six-membered ring was noticed wherein the nucleophile bridges two lithium ions interacting with different oxygens of the phosphoryl group. Furthermore, in the pathway (D) incorporating two lithium ions, one of the lithium ions interacts with the hydroxyl group and another with the methoxy oxygen; both metal ions are coordinated by the same phosphoryl oxygen. In addition to this, yet another pathway (E), where the metal ions are bound to different oxygens of the phosphoryl group, has also been dealt with. The calculations have shown that the A and B pathways lead to a single step reaction. A three-step mechanism including the nucleophilic (hydroxyl) attack, rotation of a methyl group and, finally, departure of the methoxy group has been predicted for the D and E profiles. Both D and E pathways are favored equally (with a marginal difference of 0.3 kJ mol−1 in their activation energies) in the gas phase and a transition state corresponding to nucleophilic attack with an energy barrier of 32.5 kJ mol−1 was located when lithium was used. A penta-coordinated phosphorous intermediate on the potential energy surface was characterized along these pathways. MPDE hydrolysis yielded a lower energy barrier for lithium than those for the remaining alkali metal ions. This agrees well with the experimentally observed trend for the hydrolysis rates: Li > Na > K. Self consistent reaction field (SCRF) calculations reveal the lower energy barrier between the reactant and the transition state for the nucleophilic attack in nonpolar solvents. The extent of bond formation (or cleavage) in different stationary point structures along the reaction path as estimated from the electron density at the bond critical point in the molecular electron density topography, has proven useful in distinguishing the associative or dissociative reaction pathways.
おすすめジャーナル

Journal of Natural Medicines

Russian Journal of Bioorganic Chemistry

Nature Medicine

Russian Journal of Organic Chemistry

Journal of Peptide Science

Organic Process Research & Development

Current Opinion in Colloid & Interface Science

Chemistry Education Research and Practice

Current Opinion in Solid State & Materials Science

Saudi Pharmaceutical Journal
関連文献
Synthesis of K[B3H7NH2BH2NH2B3H7] for a K-ion solid-state electrolyte
Xi-Meng Chen, Si-Han Jia, Jia-Xin Kang, Yichun Zhang, Yubin Ma, Yiming Ma, Xin Jiang, Xing-Chao Yu, Pengtao Qiu
DOI: 10.1039/D2CC00408A
Conversion of glucose and cellulose into value-added products in water and ionic liquids
Jinliang Song, Honglei Fan, Jun Ma, Buxing Han
DOI: 10.1039/C3GC41141A
Dinuclear osmium complexes as mitochondrion-targeting antitumor photothermal agents in vivo
Meng-Fan Wang, Yu-Ang Deng, Qing-Fang Li, Shi-Jie Tang, Rong Yang, Run-Yu Zhao, Fu-Dan Liu, Xiaoxia Ren, Dan Zhang, Feng Gao
DOI: 10.1039/D2CC05230J
Dispersion of PM and VOC pollutants from open burning of municipal solid wastes on host communities: emission inventory estimation and dispersion modelling study
Adewemimo Oluwakunmi Popoola, Lukuman Adekilekun Jimoda, Olusesan Abel Olu-Arotiowa, Oyetola Ogunkunle, Opeyeolu Timothy Laseinde, Sunday Adekunle Adebanjo, Wuraola Abake Raji
DOI: 10.1039/D3EA00041A
Phosphaacene as a structural analogue of thienoacenes for organic semiconductors
Kyohei Matsuo, Rina Okumura, Hironobu Hayashi, Naoki Aratani, Seihou Jinnai, Yutaka Ie, Akinori Saeki, Hiroko Yamada
DOI: 10.1039/D2CC05122B
In situ modification of metal electrode by integrated microbial corrosion and microbial mineralization using Shewanella oneidensis for efficient oxygen evolution
Yang-Chun Yong, Jian-Li Mi
DOI: 10.1039/D2CY01981G
A new MCM-41 supported HPF6 catalyst for the library synthesis of highly substituted 1,4-dihydropyridines and oxidation to pyridines: report of one-dimensional packing towards LMSOMs and studies on their photophysical properties
Suman Ray, Mike Brown, Asim Bhaumik, Arghya Dutta, Chhanda Mukhopadhyay
DOI: 10.1039/C3GC40441B
Co-doped MoS2 nanosheet: a stable and pH-universal electrocatalyst for an efficient hydrogen evolution reaction
Xiaojie Tan, Depeng Zhao, Yuchen Sun, Zhongxin Duan, Xiaowei Wang
DOI: 10.1039/D2CE00951J
Facile access to 2-hydroxy-2-substituted indole-3-ones via a copper-catalyzed oxidative cyclization of 2-arylethynylanilines
Weiqiang Sun, Xueli Cui, Jing Qu, Xiaojia Cai, Jinhui Hu, Zhuang Xiong, Suqin Guo, Wen-Hua Chen, Jia-Qiang Wu
DOI: 10.1039/D3CC01390A
Growing Co–Ni–Se nanosheets on 3D carbon frameworks as advanced dual functional electrodes for supercapacitors and sodium ion batteries
Mingyue Gao, Yanchun Xue, Yutang Zhang, Chengxing Zhu, Haiwei Yu, Xingmei Guo, Shasha Sun, Shenglin Xiong, Qinghong Kong, Junhao Zhang
DOI: 10.1039/D2QI00695B
こちらもおすすめ
N-乙酰基-L-精氨酸はどのように合成されますか?
N-乙酰基-L-精氨酸は、L-精氨酸をエタノールと酸化アクリル酸で反応させて得られます。この合成過程では、酸化アクリル酸がL-精氨酸のN-アミノグループに結合す...
カウウェルパリミタートを含む廃棄物はどのように処理すべきですか?
カウウェルパリミタートの廃棄物は、化学廃棄物として適切に収集し、専門的な廃棄処理業者に委託します。処理には、有害物質の除去と環境への影響最小化が重要です。温度は...
タテライル1,4,8,11-テトラエチルアセートの代替品はありますか?
タテライル1,4,8,11-テトラエチルアセートの代替品として、他のエチルエステル化合物や、有機窒素化合物が考えられます。ただし、代替品の選択は目的や使用条件に...
異丁卡因を取り扱う際の実験室安全事項は何ですか?
異丁卡因は毒性があり、皮膚や目を刺激する可能性があります。作業中は保護目鏡、防護手袋、防護マスクを使用し、ドラフトチャンバーで扱うべきです。漏えいした場合、その...
4-氯-2-丙基吡啶を取り扱う際の実験室安全事項は何ですか?
4-氯-2-丙基吡啶は有毒で、吸入や皮膚接触を避けることが重要です。PPEとしてゴーグル、マスク、長袖のガウン、手袋を使用し、ドラフトチャンバーを用いて操作しま...
9,10-脱水阿霉素について適用される法規ガイドラインは何ですか?
CAS番号80996-23-2の9,10-脱水阿霉素は、GHS分類においては第3類毒性物質に分類され、REACH規則においてはカテゴリー1の急性毒性物質とされて...
4-(3-溴苯基)噻唑-2-甲酸の物理化学的性質は何ですか?
4-(3-溴苯基)噻唑-2-甲酸の分子量は265.01です。この化合物は水に微溶です。反応性は中程度で、酸性やアルカリ性の条件下で分解する可能性があります。
3-(4-塩素フェニル)-3-オキセタニアミン塩酸塩はどの業界で使用されていますか?
3-(4-塩素フェニル)-3-オキセタニアミン塩酸塩は、医薬業界、ポリマー業界、センサー業界、半導体業界などで使用されています。この化合物は薬物開発の一部として...
氮卓斯汀杂质Eを取り扱う際の実験室安全事項は何ですか?
氮卓斯汀杂质E(CAS番号: 20526-97-0)を扱う際は、ゴーグルとシールド付きの手袋を使用し、漏洩がある場合はドラフトチャンバーを使用して処理することを...
デシシボチル-n-ブチルボルテゾミブはどのように保存すればよいですか?
デシシボチル-n-ブチルボルテゾミブは室温で保管し、直日光から遠ざけて密栓容器に保管することが推奨されます。
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.

![N-[(9Z)-9-Octadecen-1-yl]-1,3-propanediamine structure N-[(9Z)-9-Octadecen-1-yl]-1,3-propanediamine structure](https://static.chemtradehub.com/structs/717/7173-62-8-d43e.webp)

![Sodium 4-{[(2R,3R)-2-[(dichloroacetyl)amino]-3-hydroxy-3-(4-nitrophenyl)propyl]oxy}-4-oxobutanoate structure Sodium 4-{[(2R,3R)-2-[(dichloroacetyl)amino]-3-hydroxy-3-(4-nitrophenyl)propyl]oxy}-4-oxobutanoate structure](https://static.chemtradehub.com/structs/982/982-57-0-e747.webp)
