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降血压肽前体的设计和克隆及其在大肠埃希菌中的表达 被引量:3
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作者 饶胜其 徐珍珍 杨严俊 《医学研究生学报》 CAS 2010年第12期1236-1239,共4页
目的降血压肽(antihypertensive peptide,AP)是一类能降低人体血压的小分子肽,是血管紧张素转换酶抑制剂(angiotensin convering enzyme inhibitor,ACEI),可通过抑制体内血管紧张素Ⅱ的生成达到降低血压的目的。AP通常含有少数几个氨基... 目的降血压肽(antihypertensive peptide,AP)是一类能降低人体血压的小分子肽,是血管紧张素转换酶抑制剂(angiotensin convering enzyme inhibitor,ACEI),可通过抑制体内血管紧张素Ⅱ的生成达到降低血压的目的。AP通常含有少数几个氨基酸残基,难以直接表达,因此文中设计含多种降压活性肽段的AP前体(antihypertensive peptide precursor,APP),构建原核表达载体,并在所构建的基因工程菌进行表达。方法筛选多种已报道的具有高体内降压活性的AP,经胃肠消化酶酶切位点串联成APP。基于大肠埃希菌偏爱密码子,人工合成相应的多肽基因(app),PCR扩增,克隆至表达载体pET-22b,转化E.coliBL21感受态细胞。重组质粒经双酶切和DNA测序鉴定,并用异丙基-β-D-硫代半乳糖苷(sopropylβ-D-1-thiogalactopyr-anoside,IPTG)诱导表达重组APP。结果 APP基因正确克隆至表达载体pET-22b中。诱导表达产物经SDS-PAGE分析,显示在相对分子质量11000处出现条带,与预期的重组APP大小相符。结论人工设计的APP在大肠埃希菌中获得成功表达,为AP的工业化制备打下基础。 展开更多
关键词 高血压 降血压肽 降血压肽前体 表达
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Enhanced visible-light photocatalytic degradation and disinfection performance of oxidized nanoporous g-C3N4 via decoration with graphene oxide quantum dots 被引量:11
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作者 Jing Xu Jin Huang +1 位作者 Zhouping Wang Yongfa Zhu 《Chinese Journal of Catalysis》 SCIE EI CAS CSCD 北大核心 2020年第3期474-484,共11页
Oxidized nanoporous g-C3N4(PCNO)decorated with graphene oxide quantum dots(ox-GQDs)was successfully prepared by a facile self-assembly method.As co-catalysts,the ultrasmall zero-dimensional(0 D)ox-GQDs can achieve uni... Oxidized nanoporous g-C3N4(PCNO)decorated with graphene oxide quantum dots(ox-GQDs)was successfully prepared by a facile self-assembly method.As co-catalysts,the ultrasmall zero-dimensional(0 D)ox-GQDs can achieve uniform dispersion on the surface/inner channels of PCNO,as well as intimate contact with PCNO through hydrogen bonding,π-π,and chemical bonding interactions.In contrast with PCNO,the ox-GQDs/PCNO composite photocatalysts possessed improved light-harvesting ability,higher charge-transfer efficiency,enhanced photooxidation capacity,and increased amounts of reactive species due to the upconversion properties,strong electron capturing ability,and peroxidase-like activity of the ox-GQDs.Therefore,the visible-light photocatalytic degradation and disinfection performances of the ox-GQDs/PCNO composite were significantly enhanced.Remarkably,the composite with a 0.2 wt.% deposited amount of ox-GQDs(ox-GQDs-0.2%/PCNO)exhibited optimum amaranth photodegradation activity,with a corresponding rate about 3.1 times as high as that of PCNO.In addition,ox-GQDs-0.2%/PCNO could inactivate about 99.6%of Escherichia coli(E.coli)cells after 4 h of visible light irradiation,whereas only^31.9% of E.coli cells were killed by PCNO.Furthermore,h+,·O2-,and·OH were determined to be the reactive species generated in the photocatalytic process of the ox-GQDs/PCNO system;these species can thoroughly mineralize azo dyes and effectively inactivate pathogenic bacteria. 展开更多
关键词 Photocatalysis Oxidized nanoporous g-C3N4 Graphene oxide quantum dots Degradation DISINFECTION
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Recent advances in metabolic engineering of microorganisms for production of tyrosol and its derivatives 被引量:1
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作者 LIU Yingjie FU Changchun +4 位作者 ZHANG Xuepeng GU Bixuan HU Haitao YANG Ruijin LYU Xiaomei 《生物工程学报》 CAS CSCD 北大核心 2024年第8期2604-2625,共22页
Tyrosol is a natural phenolic compound with antioxidant,anti-inflammatory and other biological activities,serving as an important precursor of high-value products such as hydroxytyrosol and salidroside.Therefore,the g... Tyrosol is a natural phenolic compound with antioxidant,anti-inflammatory and other biological activities,serving as an important precursor of high-value products such as hydroxytyrosol and salidroside.Therefore,the green and efficient biosynthesis of tyrosol and its derivatives has become a research hotspot in recent years.Building cell factories by metabolic engineering of microorganisms is a potential industrial production way,which has low costs and environmental friendliness.This paper introduces the biosynthesis pathway of tyrosol and presents the key regulated nodes in the de novo synthesis of tyrosol in Escherichia coli and Saccharomyces cerevisiae.In addition,this paper reviews the recent advances in metabolic engineering for the production of hydroxytyrosol and salidroside.This review can provide a reference for engineering the strains for the high-yield production of tyrosol and its derivatives. 展开更多
关键词 TYROSOL metabolic engineering Escherichia coli Saccharomyces cerevisiae hydroxytyrosol SALIDROSIDE
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