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Synthese von α-Arylacrylamiden via Lewis Base vermitteltem Aryl/Wasserstoff-Austausch. 通过路易斯碱介导的芳基/氢交换合成 α-芳基丙烯酰胺。
Pub Date : 2022-10-04 Epub Date: 2022-08-29 DOI: 10.1002/ange.202207475
Miran Lemmerer, Haoqi Zhang, Anthony J Fernandes, Tobias Fischer, Marianne Mießkes, Yi Xiao, Nuno Maulide
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引用次数: 0
Transmembrane Shuttling of Photosynthetically Produced Electrons to Propel Extracellular Biocatalytic Redox Reactions in a Modular Fashion. 光合作用产生的电子跨膜穿梭,以模块化方式推动细胞外生物催化氧化还原反应。
Pub Date : 2022-10-04 Epub Date: 2022-08-29 DOI: 10.1002/ange.202207971
Valentina Jurkaš, Florian Weissensteiner, Piera De Santis, Stephan Vrabl, Frieda A Sorgenfrei, Sarah Bierbaumer, Selin Kara, Robert Kourist, Pramod P Wangikar, Christoph K Winkler, Wolfgang Kroutil

Many biocatalytic redox reactions depend on the cofactor NAD(P)H, which may be provided by dedicated recycling systems. Exploiting light and water for NADPH-regeneration as it is performed, e.g. by cyanobacteria, is conceptually very appealing due to its high atom economy. However, the current use of cyanobacteria is limited, e.g. by challenging and time-consuming heterologous enzyme expression in cyanobacteria as well as limitations of substrate or product transport through the cell wall. Here we establish a transmembrane electron shuttling system propelled by the cyanobacterial photosynthesis to drive extracellular NAD(P)H-dependent redox reactions. The modular photo-electron shuttling (MPS) overcomes the need for cloning and problems associated with enzyme- or substrate-toxicity and substrate uptake. The MPS was demonstrated on four classes of enzymes with 19 enzymes and various types of substrates, reaching conversions of up to 99 % and giving products with >99 % optical purity.

许多生物催化氧化还原反应都依赖于辅助因子 NAD(P)H,而 NAD(P)H 可由专门的回收系统提供。利用光和水进行 NADPH 再生(如蓝藻)在概念上非常吸引人,因为它具有高原子经济性。然而,目前对蓝藻的利用受到了限制,例如蓝藻中具有挑战性且耗时的异源酶表达,以及底物或产物通过细胞壁运输的限制。在这里,我们建立了一个由蓝藻光合作用推动的跨膜电子穿梭系统,以驱动细胞外依赖 NAD(P)H 的氧化还原反应。模块化光电子穿梭系统(MPS)克服了克隆的需要以及与酶或底物毒性和底物吸收相关的问题。该模块化光电子穿梭技术已在四类酶、19 种酶和各种底物上得到了验证,转化率高达 99%,产物的光学纯度大于 99%。
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引用次数: 0
Mass Spectrometry Detection and Imaging of a Non-Covalent Protein-Drug Complex in Tissue from Orally Dosed Rats. 口服大鼠组织中的非共价蛋白质-药物复合物的质谱检测与成像
Pub Date : 2022-09-05 Epub Date: 2022-07-13 DOI: 10.1002/ange.202202075
Eva Illes-Toth, Oliver J Hale, James W Hughes, Nicole Strittmatter, Jonathan Rose, Ben Clayton, Rebecca Sargeant, Stewart Jones, Andreas Dannhorn, Richard J A Goodwin, Helen J Cooper

Here, we demonstrate detection by mass spectrometry of an intact protein-drug complex directly from liver tissue from rats that had been orally dosed with the drug. The protein-drug complex comprised fatty acid binding protein 1, FABP1, non-covalently bound to the small molecule therapeutic bezafibrate. Moreover, we demonstrate spatial mapping of the [FABP1+bezafibrate] complex across a thin section of liver by targeted mass spectrometry imaging. This work is the first demonstration of in situ mass spectrometry analysis of a non-covalent protein-drug complex formed in vivo and has implications for early stage drug discovery by providing a route to target-drug characterization directly from the physiological environment.

在这里,我们展示了直接从口服药物的大鼠肝脏组织中通过质谱法检测到的完整蛋白质药物复合物。该蛋白-药物复合物由脂肪酸结合蛋白1(FABP1)与小分子治疗药物贝扎贝特(bezafibrate)非共价结合而成。此外,我们还通过靶向质谱成像技术展示了肝脏薄片上[FABP1+贝扎贝特]复合物的空间分布图。这项工作首次展示了对体内形成的非共价蛋白质-药物复合物的原位质谱分析,为早期药物发现提供了直接从生理环境进行靶向药物表征的途径,具有重要意义。
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引用次数: 0
A Ruthenium(II) Polypyridyl Complex Disrupts Actin Cytoskeleton Assembly and Blocks Cytokinesis. 一种钌(II)多吡啶络合物能破坏肌动蛋白细胞骨架的组装并阻断细胞分裂。
Pub Date : 2022-07-04 Epub Date: 2022-05-09 DOI: 10.1002/ange.202117449
Martin R Gill, Paul J Jarman, Vanessa Hearnden, Simon D Fairbanks, Marcella Bassetto, Hannes Maib, John Palmer, Kathryn R Ayscough, Jim A Thomas, Carl Smythe

The dinuclear RuII complex [(Ru(phen)2)2(tpphz)]4+ (phen=1,10-phenanthroline, tpphz=tetrapyridophenazine) "RuRuPhen" blocks the transformation of G-actin monomers to F-actin filaments with no disassembly of pre-formed F-actin. Molecular docking studies indicate multiple RuRuPhen molecules bind to the surface of G-actin but not the binding pockets of established actin polymerisation inhibitors. In cells, addition of RuRuPhen causes rapid disruption to actin stress fibre organisation, compromising actomyosin contractility and cell motility; due to this effect RuRuPhen interferes with late-stage cytokinesis. Immunofluorescent microscopy reveals that RuRuPhen causes cytokinetic abscission failure by interfering with endosomal sorting complexes required for transport (ESCRT) complex recruitment.

二核 RuII 复合物[(Ru(phen)2)2(tpphz)]4+(phen=1,10-菲罗啉,tpphz=四哒嗪)"RuRuPhen "能阻止 G-actin 单体向 F-actin 细丝的转化,而不会分解预先形成的 F-actin。分子对接研究表明,多个 RuRuPhen 分子能与 G-actin 表面结合,但不能与已有的肌动蛋白聚合抑制剂的结合口袋结合。在细胞中,加入 RuRuPhen 会迅速破坏肌动蛋白应力纤维组织,损害肌动蛋白收缩能力和细胞运动能力;由于这种影响,RuRuPhen 会干扰细胞分裂后期阶段。免疫荧光显微镜显示,RuRuPhen 通过干扰运输所需的内质体分拣复合物(ESCRT)复合物的招募,导致细胞运动脱落失败。
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引用次数: 0
Stabilisierung von Elektronentransferwegen erlaubt Stabilität von Biohybrid-Photoelektroden über Jahre. 稳定电子传递途径可使生物杂交光电电极长年保持稳定。
Pub Date : 2022-06-13 Epub Date: 2022-04-19 DOI: 10.1002/ange.202201148
Vincent M Friebe, Agata J Barszcz, Michael R Jones, Raoul N Frese
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引用次数: 0
Neutralizing Aptamers Block S/RBD-ACE2 Interactions and Prevent Host Cell Infection. 中和Aptamers能阻断S/RBD-ACE2相互作用并防止宿主细胞感染
Pub Date : 2021-04-26 Epub Date: 2021-03-22 DOI: 10.1002/ange.202100345
Xiaohui Liu, Yi-Ling Wang, Jacky Wu, Jianjun Qi, Zihua Zeng, Quanyuan Wan, Zhenghu Chen, Pragya Manandhar, Victoria S Cavener, Nina R Boyle, Xinping Fu, Eric Salazar, Suresh V Kuchipudi, Vivek Kapur, Xiaoliu Zhang, Michihisa Umetani, Mehmet Sen, Richard C Willson, Shu-Hsia Chen, Youli Zu

The receptor-binding domain (RBD) of the severe acute respiratory syndrome coronavirus 2 spike (S) protein plays a central role in mediating the first step of virus infection to cause disease: virus binding to angiotensin-converting enzyme 2 (ACE2) receptors on human host cells. Therefore, S/RBD is an ideal target for blocking and neutralization therapies to prevent and treat coronavirus disease 2019 (COVID-19). Using a target-based selection approach, we developed oligonucleotide aptamers containing a conserved sequence motif that specifically targets S/RBD. Synthetic aptamers had high binding affinity for S/RBD-coated virus mimics (K D≈7 nM) and also blocked interaction of S/RBD with ACE2 receptors (IC50≈5 nM). Importantly, aptamers were able to neutralize S protein-expressing viral particles and prevent host cell infection, suggesting a promising COVID-19 therapy strategy.

严重急性呼吸系统综合征冠状病毒2尖峰(S)蛋白的受体结合域(RBD)在介导病毒感染致病的第一步中发挥着核心作用:病毒与人类宿主细胞上的血管紧张素转换酶2(ACE2)受体结合。因此,S/RBD 是预防和治疗 2019 年冠状病毒病(COVID-19)的阻断和中和疗法的理想靶点。利用基于靶点的选择方法,我们开发出了含有特异性靶向 S/RBD 的保守序列基团的寡核苷酸适配体。合成的适配体与S/RBD包被病毒模拟物具有很高的结合亲和力(K D≈7 nM),还能阻断S/RBD与ACE2受体的相互作用(IC50≈5 nM)。重要的是,aptamers能够中和表达S蛋白的病毒颗粒并阻止宿主细胞感染,这表明COVID-19治疗策略大有可为。
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引用次数: 0
A SARS-CoV-2 Spike Binding DNA Aptamer that Inhibits Pseudovirus Infection by an RBD-Independent Mechanism. SARS-CoV-2刺突结合DNA适体通过rbd独立机制抑制假病毒感染
Pub Date : 2021-04-26 Epub Date: 2021-03-25 DOI: 10.1002/ange.202100316
Anton Schmitz, Anna Weber, Mehtap Bayin, Stefan Breuers, Volkmar Fieberg, Michael Famulok, Günter Mayer

The receptor binding domain (RBD) of the spike glycoprotein of the coronavirus SARS-CoV-2 (CoV2-S) binds to the human angiotensin-converting enzyme 2 (ACE2) representing the initial contact point for leveraging the infection cascade. We used an automated selection process and identified an aptamer that specifically interacts with CoV2-S. The aptamer does not bind to the RBD of CoV2-S and does not block the interaction of CoV2-S with ACE2. Nevertheless, infection studies revealed potent and specific inhibition of pseudoviral infection by the aptamer. The present study opens up new vistas in developing SARS-CoV2 infection inhibitors, independent of blocking the ACE2 interaction of the virus, and harnesses aptamers as potential drug candidates and tools to disentangle hitherto inaccessible infection modalities, which is of particular interest in light of the increasing number of escape mutants that are currently being reported.

冠状病毒严重急性呼吸系统综合征冠状病毒2型刺突糖蛋白(CoV2-S)的受体结合结构域(RBD)与人血管紧张素转化酶2(ACE2)结合,后者代表了利用感染级联反应的初始接触点。我们使用了自动选择过程,并鉴定了一种与CoV2-S特异性相互作用的适体。适体不与CoV2-S的RBD结合,也不阻断CoV2-S与ACE2的相互作用。然而,感染研究揭示了适体对假病毒感染的有效和特异性抑制作用。目前的研究为开发严重急性呼吸系统综合征冠状病毒2型感染抑制剂开辟了新的前景,该抑制剂独立于阻断病毒的ACE2相互作用,并利用适体作为潜在的候选药物和工具来解开迄今为止无法获得的感染模式,鉴于目前报道的逃逸突变体数量不断增加,这一点尤其令人感兴趣。
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引用次数: 5
[A facile method for producing selenocysteine-containing proteins]. [生产含硒半胱氨酸蛋白质的简便方法]。
Pub Date : 2018-06-11 Epub Date: 2018-04-06
Takahito Mukai, Anastasia Sevostyanova, Tateki Suzuki, Xian Fu, Dieter Söll
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引用次数: 0
X-ray Excited Optical Fluorescence and Diffraction Imaging of Reactivity and Crystallinity in a Zeolite Crystal: Crystallography and Molecular Spectroscopy in One. 沸石晶体反应性和结晶性的x射线激发光学荧光和衍射成像:晶体学和分子光谱学于一体。
Pub Date : 2016-06-20 Epub Date: 2016-05-04 DOI: 10.1002/ange.201601796
Zoran Ristanović, Jan P Hofmann, Marie-Ingrid Richard, Tao Jiang, Gilbert A Chahine, Tobias U Schülli, Florian Meirer, Bert M Weckhuysen

Structure-activity relationships in heterogeneous catalysis are challenging to be measured on a single-particle level. For the first time, one X-ray beam is used to determine the crystallographic structure and reactivity of a single zeolite crystal. The method generates μm-resolved X-ray diffraction (μ-XRD) and X-ray excited optical fluorescence (μ-XEOF) maps of the crystallinity and Brønsted reactivity of a zeolite crystal previously reacted with a styrene probe molecule. The local gradients in chemical reactivity (derived from μ-XEOF) were correlated with local crystallinity and framework Al content, determined by μ-XRD. Two distinctly different types of fluorescent species formed selectively, depending on the local zeolite crystallinity. The results illustrate the potential of this approach to resolve the crystallographic structure of a porous material and its reactivity in one experiment via X-ray induced fluorescence of organic molecules formed at the reactive centers.

在单粒子水平上测量多相催化的构效关系具有挑战性。首次利用单束x射线测定了单个沸石晶体的晶体结构和反应性。该方法生成了与苯乙烯探针分子反应的沸石晶体的结晶度和Brønsted反应性的μm分辨x射线衍射图(μ-XRD)和x射线激发光学荧光图(μ-XEOF)。化学反应性的局部梯度(源自μ-XEOF)与局部结晶度和框架Al含量(通过μ-XRD测定)相关。根据沸石的结晶度,有选择地形成两种明显不同类型的荧光物质。结果表明,这种方法的潜力,以解决晶体结构的多孔材料及其反应性,在一个实验中,通过x射线诱导荧光在反应中心形成的有机分子。
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引用次数: 3
Enzymatic Macrocyclization of 1,2,3-Triazole Peptide Mimetics. 1,2,3-三唑肽模拟物的酶促大环化。
Pub Date : 2016-05-04 Epub Date: 2016-04-05 DOI: 10.1002/ange.201601564
Emilia Oueis, Marcel Jaspars, Nicholas J Westwood, James H Naismith

The macrocyclization of linear peptides is very often accompanied by significant improvements in their stability and biological activity. Many strategies are available for their chemical macrocyclization, however, enzyme-mediated methods remain of great interest in terms of synthetic utility. To date, known macrocyclization enzymes have been shown to be active on both peptide and protein substrates. Here we show that the macrocyclization enzyme of the cyanobactin family, PatGmac, is capable of macrocyclizing substrates with one, two, or three 1,4-substituted 1,2,3-triazole moieties. The introduction of non-peptidic scaffolds into macrocycles is highly desirable in tuning the activity and physical properties of peptidic macrocycles. We have isolated and fully characterized nine non-natural triazole-containing cyclic peptides, a further ten molecules are also synthesized. PatGmac has now been shown to be an effective and versatile tool for the ring closure by peptide bond formation.

线性肽的大环化通常会显著提高其稳定性和生物活性。目前有许多化学大环化的方法,但酶介导的方法在合成方面仍有很大的用途。迄今为止,已知的大环化酶已被证明对多肽和蛋白质底物都有活性。在这里,我们展示了蓝藻菌素家族的大环化酶 PatGmac 能够大环化具有一个、两个或三个 1,4 取代的 1,2,3 三唑分子的底物。在大环中引入非肽支架对调整肽大环的活性和物理性质非常有帮助。我们已经分离出九种非天然含三唑的环肽并对其进行了全面鉴定,另外还合成了十种分子。现在,PatGmac 已被证明是一种通过肽键形成闭环的有效和多功能工具。
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引用次数: 0
期刊
Angewandte Chemie (Weinheim an der Bergstrasse, Germany)
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