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Deep simulated annealing for the discovery of novel dental anesthetics with local anesthesia and anti-inflammatory properties
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作者 Yihang Hao Haofan Wang +17 位作者 Xianggen Liu Wenrui Gai Shilong Hu Wencheng Liu Zhuang Miao yu Gan xianghua yu Rongjia Shi Yongzhen Tan Ting Kang Ao Hai Yi Zhao Yihang Fu Yaling Tang Ling Ye Jin Liu Xinhua Liang Bowen Ke 《Acta Pharmaceutica Sinica B》 SCIE CAS CSCD 2024年第7期3086-3109,共24页
Multifunctional therapeutics have emerged as a solution to the constraints imposed by drugs with singular or insufficient therapeutic effects.The primary challenge is to integrate diverse pharmacophores within a singl... Multifunctional therapeutics have emerged as a solution to the constraints imposed by drugs with singular or insufficient therapeutic effects.The primary challenge is to integrate diverse pharmacophores within a single-molecule framework.To address this,we introduced DeepSA,a novel edit-based generative framework that utilizes deep simulated annealing for the modification of articaine,a wellknown local anesthetic.DeepSA integrates deep neural networks into metaheuristics,effectively constraining molecular space during compound generation.This framework employs a sophisticated objective function that accounts for scaffold preservation,anti-inflammatory properties,and covalent constraints.Through a sequence of local editing to navigate the molecular space,DeepSA successfully identified AT-17,a derivative exhibiting potent analgesic properties and significant anti-inflammatory activity in various animal models.Mechanistic insights into AT-17 revealed its dual mode of action:selective inhibition of NaV1.7 and 1.8 channels,contributing to its prolonged local anesthetic effects,and suppression of inflammatory mediators via modulation of the NLRP3 inflammasome pathway.These findings not only highlight the efficacy of AT-17 as a multifunctional drug candidate but also highlight the potential of DeepSA in facilitating AI-enhanced drug discovery,particularly within stringent chemical constraints. 展开更多
关键词 Multifunctional drugs Deep simulated annealing Molecule generation Articaine derivatives AI-enhanced drug discovery
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成长记录袋评价法提升细胞工程课堂教学质量 被引量:2
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作者 余响华 邵金华 +2 位作者 刘小文 张永 廖阳 《生物工程学报》 CAS CSCD 北大核心 2021年第4期1443-1449,共7页
首次将成长记录袋评价法引入到高等院校生物类专业课程《细胞工程》的课堂教学改革中,构建了较为完备的课堂评价体系,将成长记录袋课堂评价体系的建立分为4个阶段,即准备阶段、演练阶段、实施阶段和作品展示阶段。并从实施成长记录袋评... 首次将成长记录袋评价法引入到高等院校生物类专业课程《细胞工程》的课堂教学改革中,构建了较为完备的课堂评价体系,将成长记录袋课堂评价体系的建立分为4个阶段,即准备阶段、演练阶段、实施阶段和作品展示阶段。并从实施成长记录袋评价法的可行性与必要性、评价体系的构建、执行过程中应注意的要点及事项分别展开论述。结果表明:通过该评价法的施行,不仅活跃了课堂气氛,增强了学生学习的主动性和自主性,还提高了学生分析、解决与细胞工程技术相关的专业问题的能力,执行效果良好。本课程课堂教学改革的实施,可为高校同类性质的其他专业课程提供借鉴与参考。 展开更多
关键词 成长记录袋评价 细胞工程 课堂教学质量 教学改革
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