具有功能活性的合成 α-Helical 孔。

IF 16.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Accounts of Chemical Research Pub Date : 2024-06-14 DOI:10.1021/acs.accounts.4c00101
Smrithi Krishnan R, Neilah Firzan CA and Kozhinjampara R. Mahendran*, 
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引用次数: 0

摘要

Conspectus膜孔目前处于纳米生物技术、纳米孔化学和合成化学生物学研究的前沿。在过去几十年中,蛋白质工程方面的重要研究为重新设计膜蛋白孔铺平了道路,使其适合纳米生物技术中的特定应用。以前的大部分工作主要集中在以原子精度设计的天然 β 管孔上,用于核酸测序和生物大分子(包括蛋白质片段)的传感。对更高效单分子检测系统的需求推动了合成纳米孔的发展。例如,对通道进行工程设计以有选择地传导离子和生物分子,可以制造出精密的纳米孔传感器。此外,人们对合成孔隙的兴趣也在不断增加,这种孔隙可以制造,在设计复杂生物大分子的单分子传感结构和直径方面提供更多控制。在开发基于 DNA 的合成孔方面取得了令人瞩目的进展,但其在纳米孔技术中的应用还很有限。这促使人们开始转向构建合成跨膜 α 螺旋孔,这是一个相对欠开发的领域,提供了新的机遇。最近,人们利用计算工具来设计和构建具有确定结构和功能的α-螺旋桶。我们的研究重点是利用膜蛋白孔隙中天然存在的跨膜图案来构建合成α-螺旋孔。我们的实验室开发了基于天然孔蛋白 PorACj(源自 Corynebacterium jeikeium 的孔蛋白 A)的合成 α-helical 跨膜孔,这种孔可作为纳米孔传感器,用于阳离子环糊精和多肽的单分子传感。我们的突破在于首次创建了一个由短合成α-螺旋肽组成的功能性大型稳定合成跨膜孔。我们工作的主要亮点是,这些孔可以用简单的化学合成方法合成,因此可以很容易地加入各种功能基团进行修饰,从而建立电荷选择性的复杂孔。此外,我们还证明了可以用 D-氨基酸肽构建稳定的功能孔。在蛋白酶作用下对由 D-氨基酸和 L-氨基酸组成的孔隙进行的分析表明,只有 D-氨基酸孔隙具有高功能性和稳定性。这些孔的结构模型显示了不同的表面电荷构象和几何形状。由于其独特的结构、功能以及在纳米孔技术和化学生物学中的潜在应用,这些新的合成 α 螺旋孔类是具有普遍意义的高度原创性系统。我们强调,这些简化的跨膜孔有可能成为功能性纳米设备和治疗工具的组成部分。我们还认为,这种设计的肽可能是有价值的抗菌剂,并能靶向治疗癌细胞。本文将重点介绍组装α螺旋跨膜孔的演变,并强调其优势,包括结构和功能的多样性。
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Functionally Active Synthetic α-Helical Pores

Transmembrane pores are currently at the forefront of nanobiotechnology, nanopore chemistry, and synthetic chemical biology research. Over the past few decades, significant studies in protein engineering have paved the way for redesigning membrane protein pores tailored for specific applications in nanobiotechnology. Most previous efforts predominantly centered on natural β-barrel pores designed with atomic precision for nucleic acid sequencing and sensing of biomacromolecules, including protein fragments. The requirement for a more efficient single-molecule detection system has driven the development of synthetic nanopores. For example, engineering channels to conduct ions and biomolecules selectively could lead to sophisticated nanopore sensors. Also, there has been an increased interest in synthetic pores, which can be fabricated to provide more control in designing architecture and diameter for single-molecule sensing of complex biomacromolecules. There have been impressive advancements in developing synthetic DNA-based pores, although their application in nanopore technology is limited. This has prompted a significant shift toward building synthetic transmembrane α-helical pores, a relatively underexplored field offering novel opportunities. Recently, computational tools have been employed to design and construct α-helical barrels of defined structure and functionality.

We focus on building synthetic α-helical pores using naturally occurring transmembrane motifs of membrane protein pores. Our laboratory has developed synthetic α-helical transmembrane pores based on the natural porin PorACj (Porin A derived from Corynebacterium jeikeium) that function as nanopore sensors for single-molecule sensing of cationic cyclodextrins and polypeptides. Our breakthrough lies in being the first to create a functional and large stable synthetic transmembrane pore composed of short synthetic α-helical peptides. The key highlight of our work is that these pores can be synthesized using easy chemical synthesis, which permits its easy modification to include a variety of functional groups to build charge-selective sophisticated pores. Additionally, we have demonstrated that stable functional pores can be constructed from D-amino acid peptides. The analysis of pores composed of D- and L-amino acids in the presence of protease showed that only the D pores are highly functional and stable. The structural models of these pores revealed distinct surface charge conformation and geometry. These new classes of synthetic α-helical pores are highly original systems of general interest due to their unique architecture, functionality, and potential applications in nanopore technology and chemical biology. We emphasize that these simplified transmembrane pores have the potential to be components of functional nanodevices and therapeutic tools. We also suggest that such designed peptides might be valuable as antimicrobial agents and can be targeted to cancer cells. This article will focus on the evolutions in assembling α-helical transmembrane pores and highlight their advantages, including structural and functional versatility.

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来源期刊
Accounts of Chemical Research
Accounts of Chemical Research 化学-化学综合
CiteScore
31.40
自引率
1.10%
发文量
312
审稿时长
2 months
期刊介绍: Accounts of Chemical Research presents short, concise and critical articles offering easy-to-read overviews of basic research and applications in all areas of chemistry and biochemistry. These short reviews focus on research from the author’s own laboratory and are designed to teach the reader about a research project. In addition, Accounts of Chemical Research publishes commentaries that give an informed opinion on a current research problem. Special Issues online are devoted to a single topic of unusual activity and significance. Accounts of Chemical Research replaces the traditional article abstract with an article "Conspectus." These entries synopsize the research affording the reader a closer look at the content and significance of an article. Through this provision of a more detailed description of the article contents, the Conspectus enhances the article's discoverability by search engines and the exposure for the research.
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