磷酸二酯酶7和4(phosphodiesterase 7 and 4,PDE7 and PDE4)作为特异性水解第二信使3',5'-环腺苷酸的蛋白酶,是治疗炎症等相关疾病的重要靶点。本文以37个噻吩并嘧啶酮类PDE7和PDE4双重抑制剂为研究对象,采用比较分子相似性指...磷酸二酯酶7和4(phosphodiesterase 7 and 4,PDE7 and PDE4)作为特异性水解第二信使3',5'-环腺苷酸的蛋白酶,是治疗炎症等相关疾病的重要靶点。本文以37个噻吩并嘧啶酮类PDE7和PDE4双重抑制剂为研究对象,采用比较分子相似性指数分析(Co MSIA),研究其影响化合物抑制活性的特征结构信息。结果表明,这两类抑制剂的Co MSIA的预测能力较强(Rpre2≥0.80)。其影响分子生物活性的共同特征结构主要是:(1)噻吩环上的R_2取代基为疏水场的敏感区域;(2)嘧啶酮环和R_3取代基的链接基益于采用含氢键供体的亲水性基团;(3)噻吩环所在区域益于引入包含氢键供体的基团。研究还发现,PDE7抑制剂的R_1和R_2取代基,分别适宜结合小体积的亲水性基团和大体积的基团。PDE4抑制剂的嘧啶酮环和R3取代基的链接基益于结合正电基团。本研究所得的模型和信息,可为后续新型抑制剂的设计开发提供理论指导。展开更多
In the pursuit of stable,high performance Ni-based oxygen evolution reaction(OER)electrocatalysts,modifying the local chemical compositions or fabricating hybrid nanostructures to generate abundant interfaces for impr...In the pursuit of stable,high performance Ni-based oxygen evolution reaction(OER)electrocatalysts,modifying the local chemical compositions or fabricating hybrid nanostructures to generate abundant interfaces for improving the water oxidation activity of electrocatalysts has emerged as an effective strategy.Herein,we report the facile development of a Ni_(3)S_(2)-CeO_(2)hybrid nanostructure via an electrodeposition method.Benefiting from the strong interfacial interaction between Ni_(3)S_(2)and CeO_(2),the electron transfer is notably improved and the water oxidation activity of Ni_(3)S_(2)nanosheets is significantly enhanced.In 1.0 M KOH,the Ni_(3)S_(2)-CeO_(2)electrocatalyst achieves a current density of 20 mA cm-2 at a low overpotential of 264 mV,which is 92 mV lower than that of Ni_(3)S_(2).Moreover,Ni_(3)S_(2)-CeO_(2)exhibits superior electrochemical stability.Density functional theory calculations demonstrate that the enhanced OER electrocatalytic performance of Ni_(3)S_(2)-CeO_(2)can be ascribed to an increase in the binding strength of the reaction intermediates at the Ni_(3)S_(2)-CeO_(2)interface.展开更多
Polyoxometalates(POMs),as a class of multinuclear clusters,are polymerized of oxygen and early high-valent transition metals(e.g.,Mo,W,V and Nb).Based on the geometry of heteroatoms and the ratio of heteroatoms to coo...Polyoxometalates(POMs),as a class of multinuclear clusters,are polymerized of oxygen and early high-valent transition metals(e.g.,Mo,W,V and Nb).Based on the geometry of heteroatoms and the ratio of heteroatoms to coordination atoms,POMs can be classified into six classical configurations including Keggin-type,Dawson-type,Anderson-type,Waugh-type,Silverton-type,and Lindqvist-type.They exhibit the diverse structures and versatile properties,which enrich their applications in catalysis,medicine,electrochemistry,magnetism,and so on.The chemistry of POMs is an important branch of inorganic chemistry with a history of more than 200 years.It intersects with physical chemistry,analytical chemistry,structural chemistry,biochemistry,environmental chemistry,material chemistry and many other fields.Modern chemistry of POMs has developed from single POMs synthesis to controllable molecular design synthesis,from simple POMs monomer to high-dimensional,high-core and other novel structure clusters constructed with POMs as building units.Especially,POMs are considered as electron stores due to their strong ability to bear and release electrons,indicating they have redox properties.Therefore,POMs have received increasing attentions as redox heterogeneous catalysts.To resolve the problem of the high solubility of POMs,the design synthesis and performance research of functional complexes with POMs as inorganic ligands or non-coordination templates have become one of hot spots.The encapsulation of POMs into the crystalline architecture results in multifunctional hybrid materials,which combine the merits of POMs and the organic frameworks to achieve specific properties.With the increase of consciousness for environmental protection,green oxidants such as hydrogen peroxide and oxygen are utilized as main oxidants for the oxidation.The combination of POMs-based materials with environment friendly oxidants can efficiently catalyze various oxidation reactions,such as epoxidation of olefin,oxidation of sulfurcontaining compounds,oxidation of alcohols,oxidation of alkanes and so on.In this paper,an overview of recent advances of POMs in catalytic oxidation was presented.展开更多
文摘磷酸二酯酶7和4(phosphodiesterase 7 and 4,PDE7 and PDE4)作为特异性水解第二信使3',5'-环腺苷酸的蛋白酶,是治疗炎症等相关疾病的重要靶点。本文以37个噻吩并嘧啶酮类PDE7和PDE4双重抑制剂为研究对象,采用比较分子相似性指数分析(Co MSIA),研究其影响化合物抑制活性的特征结构信息。结果表明,这两类抑制剂的Co MSIA的预测能力较强(Rpre2≥0.80)。其影响分子生物活性的共同特征结构主要是:(1)噻吩环上的R_2取代基为疏水场的敏感区域;(2)嘧啶酮环和R_3取代基的链接基益于采用含氢键供体的亲水性基团;(3)噻吩环所在区域益于引入包含氢键供体的基团。研究还发现,PDE7抑制剂的R_1和R_2取代基,分别适宜结合小体积的亲水性基团和大体积的基团。PDE4抑制剂的嘧啶酮环和R3取代基的链接基益于结合正电基团。本研究所得的模型和信息,可为后续新型抑制剂的设计开发提供理论指导。
文摘In the pursuit of stable,high performance Ni-based oxygen evolution reaction(OER)electrocatalysts,modifying the local chemical compositions or fabricating hybrid nanostructures to generate abundant interfaces for improving the water oxidation activity of electrocatalysts has emerged as an effective strategy.Herein,we report the facile development of a Ni_(3)S_(2)-CeO_(2)hybrid nanostructure via an electrodeposition method.Benefiting from the strong interfacial interaction between Ni_(3)S_(2)and CeO_(2),the electron transfer is notably improved and the water oxidation activity of Ni_(3)S_(2)nanosheets is significantly enhanced.In 1.0 M KOH,the Ni_(3)S_(2)-CeO_(2)electrocatalyst achieves a current density of 20 mA cm-2 at a low overpotential of 264 mV,which is 92 mV lower than that of Ni_(3)S_(2).Moreover,Ni_(3)S_(2)-CeO_(2)exhibits superior electrochemical stability.Density functional theory calculations demonstrate that the enhanced OER electrocatalytic performance of Ni_(3)S_(2)-CeO_(2)can be ascribed to an increase in the binding strength of the reaction intermediates at the Ni_(3)S_(2)-CeO_(2)interface.
基金supported by the Doctoral Scientific Research Foundation of Weifang University(2023BS13)the Project of Weifang Science and Technology Development Program(2022GX 020 and 2022GX021)+1 种基金the National Natural Science Foundation of China(22001032)the Doctoral Scientific Research Foundation of Weifang Vocational College(Preparation and electrochemical properties of high performance polyoxometallatebased lithium-ion battery anode materials)
文摘Polyoxometalates(POMs),as a class of multinuclear clusters,are polymerized of oxygen and early high-valent transition metals(e.g.,Mo,W,V and Nb).Based on the geometry of heteroatoms and the ratio of heteroatoms to coordination atoms,POMs can be classified into six classical configurations including Keggin-type,Dawson-type,Anderson-type,Waugh-type,Silverton-type,and Lindqvist-type.They exhibit the diverse structures and versatile properties,which enrich their applications in catalysis,medicine,electrochemistry,magnetism,and so on.The chemistry of POMs is an important branch of inorganic chemistry with a history of more than 200 years.It intersects with physical chemistry,analytical chemistry,structural chemistry,biochemistry,environmental chemistry,material chemistry and many other fields.Modern chemistry of POMs has developed from single POMs synthesis to controllable molecular design synthesis,from simple POMs monomer to high-dimensional,high-core and other novel structure clusters constructed with POMs as building units.Especially,POMs are considered as electron stores due to their strong ability to bear and release electrons,indicating they have redox properties.Therefore,POMs have received increasing attentions as redox heterogeneous catalysts.To resolve the problem of the high solubility of POMs,the design synthesis and performance research of functional complexes with POMs as inorganic ligands or non-coordination templates have become one of hot spots.The encapsulation of POMs into the crystalline architecture results in multifunctional hybrid materials,which combine the merits of POMs and the organic frameworks to achieve specific properties.With the increase of consciousness for environmental protection,green oxidants such as hydrogen peroxide and oxygen are utilized as main oxidants for the oxidation.The combination of POMs-based materials with environment friendly oxidants can efficiently catalyze various oxidation reactions,such as epoxidation of olefin,oxidation of sulfurcontaining compounds,oxidation of alcohols,oxidation of alkanes and so on.In this paper,an overview of recent advances of POMs in catalytic oxidation was presented.