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Boron-mediated aglycon delivery (BMAD) for the stereoselective synthesis of 1,2-cis glycosides. 硼介导的糖苷传递(BMAD)用于立体选择性合成1,2-顺式糖苷。
2区 化学 Q2 Chemistry Pub Date : 2022-01-01 DOI: 10.1016/bs.accb.2022.10.003
Daisuke Takahashi, Kazunobu Toshima

1,2-cis Glycosides are frequently found in biologically active natural products, pharmaceutical compounds, and highly functional materials. Therefore, elucidating the role of mechanism of their biological activities will help clarify the structure-activity relationships of these diverse compounds and create new lead compounds for pharmaceuticals by modifying their structures. However, unlike 1,2-trans glycosides, the stereoselective synthesis of 1,2-cis glycosides remains difficult due to the nonavailability of neighboring group participation from the 2-O-acyl functionalities of the glycosyl donors. In this context, we recently developed organoboron-catalyzed 1,2-cis-stereoselecitve glycosylations, called boron-mediated aglycon delivery (BMAD) methods. In this review article, we introduce the BMAD methods and several examples of their application to the synthesis of biologically active glycosides.

1,2-顺式糖苷经常存在于具有生物活性的天然产物、药物化合物和高功能材料中。因此,阐明其生物活性的作用机制将有助于厘清这些不同化合物的构效关系,并通过修饰其结构来创造新的药物先导化合物。然而,与1,2-反式糖苷不同,1,2-顺式糖苷的立体选择性合成仍然很困难,因为糖基供体的2- o -酰基官能团无法参与邻基的合成。在这种背景下,我们最近开发了有机硼催化的1,2-顺式立体选择性糖基化,称为硼介导的糖基传递(BMAD)方法。本文综述了BMAD方法及其在生物活性苷类化合物合成中的应用。
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引用次数: 0
A bacterial glycolipid essential for membrane protein integration. 一种对膜蛋白整合必不可少的细菌糖脂。
2区 化学 Q2 Chemistry Pub Date : 2022-01-01 DOI: 10.1016/bs.accb.2022.09.005
Kohki Fujikawa, Shoko Mori, Ken-Ichi Nishiyama, Keiko Shimamoto

The proper conformation and orientation of membrane protein integration in cells is an important biological event. Interestingly, a new factor named MPIase (membrane protein integrase) was proven essential in this process in Escherichia coli, besides proteinaceous factors, such as Sec translocons and an insertase YidC. A combination of spectroscopic analyses and synthetic work has revealed that MPIase is a glycolipid despite its enzyme-like activity. MPIase has a long glycan chain comprised of repeating trisaccharide units, a pyrophosphate linker, and a diacylglycerol anchor. In order to determine the mechanism of its activity, we synthesized a trisaccharyl pyrophospholipid termed mini-MPIase-3, a minimal unit of MPIase, and its derivatives. A significant activity of mini-MPIase-3 indicated that it involves an essential structure for membrane protein integration. We also analyzed intermolecular interactions of MPIase or its synthetic analogs with a model substrate protein using physicochemical methods. The structure-activity relationship studies demonstrated that the glycan part of MPIase prevents the aggregation of substrate proteins, and the 6-O-acetyl group on glucosamine and the phosphate of MPIase play important roles for interactions with substrate proteins. MPIase serves at an initial step in the Sec-independent integration, whereas YidC, proton motive force, and/or SecYEG cooperatively function(s) with MPIase at the following step in vivo. Furthermore, depletion of the biosynthetic enzyme demonstrated that MPIase is crucial for membrane protein integration and cell growth. Thus, we elucidated new biological functions of glycolipids using a combination of synthetic chemistry, biochemistry, physicochemical measurements, and molecular-biological approaches.

膜蛋白在细胞内整合的正确构象和取向是一项重要的生物学事件。有趣的是,除了Sec translocon和插入酶YidC等蛋白因子外,一种名为MPIase(膜蛋白整合酶)的新因子被证明在大肠杆菌的这一过程中必不可少。光谱分析和合成工作的结合表明,尽管MPIase具有酶样活性,但它是一种糖脂。MPIase具有由重复的三糖单元、焦磷酸连接体和二酰基甘油锚定组成的长聚糖链。为了确定其活性的机制,我们合成了一种名为mini-MPIase-3的三糖焦磷脂,它是MPIase的最小单位,以及它的衍生物。mini-MPIase-3的显著活性表明它参与了膜蛋白整合的必要结构。我们还使用物理化学方法分析了mpase或其合成类似物与模型底物蛋白的分子间相互作用。构效关系研究表明,MPIase的聚糖部分阻止了底物蛋白的聚集,葡萄糖胺和磷酸基上的6- o -乙酰基在与底物蛋白的相互作用中起重要作用。MPIase在独立于sec的整合过程中起初始作用,而YidC、质子动力和/或SecYEG在体内的后续步骤中与MPIase协同作用。此外,耗尽的生物合成酶表明,MPIase对膜蛋白整合和细胞生长至关重要。因此,我们利用合成化学、生物化学、物理化学测量和分子生物学方法的结合来阐明糖脂的新的生物学功能。
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引用次数: 0
Therapeutic in vivo synthetic chemistry using an artificial metalloenzyme with glycosylated human serum albumin. 用糖基化人血清白蛋白的人工金属酶进行治疗性体内合成化学。
2区 化学 Q2 Chemistry Pub Date : 2022-01-01 DOI: 10.1016/bs.accb.2022.10.001
Kenshiro Yamada, Kyohei Muguruma, Katsunori Tanaka

The concept of "therapeutic in vivo synthetic chemistry" refers to chemical synthesis in living systems using new-to-nature reactions for the treatment or diagnosis of diseases. This review summarizes our development of therapeutic in vivo synthetic chemistry using glycan-modified human serum albumin (glycoHSA) and utilizing the selective glycan-targeting and metal protective effects of metal catalysts. The four artificial metalloenzymes with glycoHSA provided good cancer treatment results based on on-site drug synthesis and selective cell-tagging strategies. Thus, we propose that therapeutic in vivo synthetic chemistry using glycoHSA as a new modality of therapy or diagnosis is applicable to a wide range of diseases.

“治疗性体内合成化学”的概念是指在生命系统中利用新的自然反应进行化学合成,以治疗或诊断疾病。本文综述了利用糖聚糖修饰的人血清白蛋白(glycoHSA),利用金属催化剂的选择性靶向和金属保护作用,在治疗性体内合成化学方面的研究进展。基于原位药物合成和选择性细胞标记策略,四种含糖hsa的人工金属酶提供了良好的肿瘤治疗效果。因此,我们建议使用糖蛋白sa作为一种新的治疗或诊断方式的体内合成化学治疗适用于广泛的疾病。
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引用次数: 0
Synthesis of homogeneous glycoproteins with diverse N-glycans. 具有不同n -聚糖的均质糖蛋白的合成。
2区 化学 Q2 Chemistry Pub Date : 2022-01-01 DOI: 10.1016/bs.accb.2022.09.004
Kota Nomura, Yanbo Liu, Yasuhiro Kajihara

In the post-genomic era, post- and co-translational modifications (P/C-TM) of proteins are known as the more essential elements for the activation of protein function. Among these protein modifications, glycosylation is one of the most abundant modifications in eukaryotic cells. The synthesis of glycoproteins with uniform glycan structures is essential for functional analysis of glycoproteins and biochemical research. For that purpose, chemical methods to synthesize glycoproteins with chemically uniform glycan structures have been developed. In this review, we highlight our recent advances in the preparation of homogeneous glycoproteins. Especially, we introduce both semi-synthesis and chemical synthesis of glycoproteins along with semi-synthesis of various complex-type N-glycans for the solid-phase synthesis of glycopeptide-thioesters.

在后基因组时代,蛋白质的后翻译修饰和共翻译修饰(P/C-TM)被认为是激活蛋白质功能的更重要的因素。在这些蛋白质修饰中,糖基化是真核细胞中最丰富的修饰之一。具有均匀糖基结构的糖蛋白的合成对于糖蛋白的功能分析和生物化学研究至关重要。为此,已经发展了化学方法来合成具有化学均匀聚糖结构的糖蛋白。本文综述了近年来均相糖蛋白制备的研究进展。特别地,我们介绍了糖蛋白的半合成和化学合成,以及各种配合型n -聚糖的半合成,用于糖肽硫酯的固相合成。
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引用次数: 1
Hidetoshi Yamada: His journey in the carbohydrate world. 山田秀敏:他在碳水化合物世界的旅程。
2区 化学 Q2 Chemistry Pub Date : 2022-01-01 DOI: 10.1016/bs.accb.2022.09.001
Yukishige Ito

Professor Hidetoshi Yamada, who demonstrated his creativity in various respects, passed away in November 2019. His research targets were highly diverse, including sweet saponins, ellagitannins, novel cyclodextrins, and conformationally distorted donors for stereoselective glycosylations. In memory of his creativity, this chapter highlights his prominent achievements in carbohydrate chemistry.

在各方面表现出创造力的山田秀敏教授于2019年11月去世。他的研究对象非常多样化,包括甜皂素、鞣花单宁、新型环糊精和立体选择性糖基化构象畸变供体。为了纪念他的创造性,本章重点介绍了他在碳水化合物化学方面的突出成就。
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引用次数: 0
Conformationally restricted donors for stereoselective glycosylation. 立体选择性糖基化构象受限供体。
2区 化学 Q2 Chemistry Pub Date : 2022-01-01 DOI: 10.1016/bs.accb.2022.10.005
Kaname Sasaki, Nanako Uesaki

In nucleophilic reactions using sugars as electrophiles, i.e., glycosyl donors, their conformation affects the generation rate or stability of the glycosyl cation intermediates and determines at which side of the SN2-SN1 borderline and at what rate the reaction occurs. In addition, changes in the conformation create the steric or stereoelectronic effects of the substituents, which also change the reaction rate and stereoselectivity. Bulky silyl protecting groups, uronic acid esters, and transannular structures have been utilized to change the conformation. Consequently, reactions with unique reactivities and stereoselectivities have been developed. In this chapter, a discussion of the reaction mechanisms relating stereoselectivity to conformation is provided.

在使用糖作为亲电试剂(即糖基供体)的亲核反应中,糖基的构象影响糖基阳离子中间体的生成速率或稳定性,并决定在SN2-SN1边界的哪一侧以及反应发生的速度。此外,构象的改变会产生取代基的立体或立体电子效应,从而改变反应速率和立体选择性。大量的硅基保护基团、脲酸酯和跨环结构被用来改变构象。因此,具有独特反应活性和立体选择性的反应被开发出来。本章讨论了立体选择性与构象之间的反应机理。
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引用次数: 0
Preface. 前言。
2区 化学 Q2 Chemistry Pub Date : 2022-01-01 DOI: 10.1016/S0065-2318(22)00032-4
David C Baker
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引用次数: 0
Yamada's carbohydrate chemistry. 山田碳水化合物化学。
2区 化学 Q2 Chemistry Pub Date : 2022-01-01 DOI: 10.1016/bs.accb.2022.09.002
Shinnosuke Wakamori

This chapter describes the 21-year history of research conducted by Professor Hidetoshi Yamada. Sugars often exist in a six-membered ring structure, and the equatorial-rich chair conformation is stable. In contrast, its pyranose ring in a biological glycosylation is easily deformed and changed by various factors. Therefore, controlling the steric conformation of the pyranose ring is a great starting point to influence the stereoselectivity of the glycosylation reaction. His research developed stereoselective glycosylation reactions by deforming the sugar ring from the most stable equatorial-rich chair conformation. Initially, the research began to restrict the pyranose ring into the axial-rich chair form. The evolution to the locked skew-boat system allowed highly selective glycosylation by bulky silyl-protected or o-xylylene-bridged glycosyl donors. Development of the 1,1'-(ethane-1,2-diyl)dibenzene-2,2'-bis(methylene) bridging group created that which is known as the supple conformation system, which when combined with an α-selective glycosylation, led to the remarkable synthesis of the smallest cyclodextrins on record. Professor Yamada's consistent research in these areas willfully contributed to the development of carbohydrate chemistry.

本章介绍山田英俊教授21年的研究历程。糖通常以六元环结构存在,而富赤道的椅子构象是稳定的。而在生物糖基化过程中,其吡喃糖环容易受到各种因素的变形和改变。因此,控制吡喃糖环的立体构象是影响糖基化反应立体选择性的重要起点。他的研究通过使最稳定的富赤道椅子构象的糖环变形,发展了立体选择性糖基化反应。最初,研究开始将吡喃环限制为富轴椅子形式。进化到锁定斜船系统允许大量的硅基保护或邻二甲苯桥接糖基供体进行高度选择性的糖基化。1,1'-(乙烷-1,2-二基)二苯-2,2'-双(亚甲基)桥接基团的发展创造了被称为柔性构象系统,当它与α-选择性糖基化结合时,导致了有史以来最小的环糊精的合成。山田教授在这些领域的持续研究为碳水化合物化学的发展做出了贡献。
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引用次数: 0
Chemical synthesis of sialoglyco-architectures. 唾液糖结构的化学合成。
2区 化学 Q2 Chemistry Pub Date : 2022-01-01 DOI: 10.1016/bs.accb.2022.09.003
Hiromune Ando, Naoko Komura, Hide-Nori Tanaka, Akihiro Imamura, Hideharu Ishida

The synthesis of sialic acid-containing molecules has posed a formidable challenge to carbohydrate chemists for over 50 years. Our research group has intensively searched for robust chemistry to enable the construction of a broad spectrum of sialic acid-containing molecules to advance the understanding and application of their biological functions. Herein, we describe our research findings on the development of sialic acid donors for α-selective glycosidation and the chemical synthesis of sialic acid- containing molecules, with a special focus on gangliosides and their fluorescent probes.

50多年来,含唾液酸分子的合成一直是碳水化合物化学家面临的一个巨大挑战。我们的研究小组已经深入研究了强大的化学,以便构建一个广谱的含唾液酸分子,以促进对其生物学功能的理解和应用。在此,我们描述了我们在α-选择性糖苷化唾液酸供体的开发和含唾液酸分子的化学合成方面的研究成果,特别关注神经节苷脂及其荧光探针。
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引用次数: 0
Towards one-pot selective synthesis of cyclic oligosaccharides. 环低聚糖的一锅选择性合成。
2区 化学 Q2 Chemistry Pub Date : 2022-01-01 DOI: 10.1016/bs.accb.2022.10.004
Toshiki Nokami

In this chapter are described electrochemical routes to cyclic oligosaccharides. While automated electrochemical methods have been used to prepare linear oligosaccharides, their conversion to cyclic oligosaccharides proved to be a complex process. The concept of polyglycosylation offers an interesting alternative, and the process which has been developed is that of a one-pot electrochemical polyglycosylation-isomerization-cyclization (ePIC) process.

在这一章描述了电化学途径环状低聚糖。虽然自动化电化学方法已被用于制备线性低聚糖,但将其转化为环状低聚糖是一个复杂的过程。多糖基化的概念提供了一种有趣的替代方法,已经开发的过程是一锅电化学多糖基化-异构化-环化(ePIC)过程。
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引用次数: 0
期刊
Advances in carbohydrate chemistry and biochemistry
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