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用于位点特异性生物共轭应用的带有酪氨酸连接子的高斯荧光素酶截短变体

Truncated Variants of Gaussia Luciferase with Tyrosine Linker for Site-Specific Bioconjugate Applications.

作者信息

Hunt Eric A, Moutsiopoulou Angeliki, Ioannou Stephanie, Ahern Katelyn, Woodward Kristen, Dikici Emre, Daunert Sylvia, Deo Sapna K

机构信息

University of Miami, Leonard M. Miller School of Medicine, Department of Biochemistry &Molecular Biology, Miami, 33136, USA.

University of Miami, Department of Chemistry, Coral Gables, 33146, USA.

出版信息

Sci Rep. 2016 Jun 8;6:26814. doi: 10.1038/srep26814.

Abstract

Gaussia luciferase (Gluc)-with its many favorable traits such as small size, bright emission, and exceptional stability-has become a prominent reporter protein for a wide range of bioluminescence-based detection applications. The ten internal cysteine residues crucial to functional structure formation, however, make expression of high quantities of soluble protein in bacterial systems difficult. In addition to this challenge, the current lack of structural data further complicates the use of Gluc for in vitro applications, such as biosensors, or cellular delivery, both of which rely heavily on robust and reproducible bioconjugation techniques. While Gluc is already appreciably small for a luciferase, a reduction in size that still retains significant bioluminescent activity, in conjunction with a more reproducible bioorthogonal method of chemical modification and facile expression in bacteria, would be very beneficial in biosensor design and cellular transport studies. We have developed truncated variants of Gluc, which maintain attractive bioluminescent features, and have characterized their spectral and kinetic properties. These variants were purified in high quantities from a bacterial system. Additionally, a C-terminal linker has been incorporated into these variants that can be used for reliable, specific modification through tyrosine-based bioconjugation techniques, which leave the sensitive network of cysteine residues undisturbed.

摘要

高斯荧光素酶(Gluc)具有许多优良特性,如体积小、发光明亮和稳定性极佳,已成为广泛用于多种基于生物发光检测应用的重要报告蛋白。然而,对功能结构形成至关重要的十个内部半胱氨酸残基使得在细菌系统中大量表达可溶性蛋白变得困难。除了这一挑战外,目前缺乏结构数据进一步使Gluc在体外应用(如生物传感器或细胞递送)中的使用变得复杂,这两者都严重依赖于强大且可重复的生物共轭技术。虽然对于荧光素酶来说,Gluc已经相当小了,但在保持显著生物发光活性的同时减小尺寸,结合更可重复的化学修饰生物正交方法以及在细菌中的简便表达,将对生物传感器设计和细胞转运研究非常有益。我们已经开发了Gluc的截短变体,它们保持了吸引人的生物发光特性,并对其光谱和动力学性质进行了表征。这些变体从细菌系统中大量纯化出来。此外,已将一个C末端接头引入这些变体中,可通过基于酪氨酸的生物共轭技术用于可靠、特异性修饰,而不会干扰敏感的半胱氨酸残基网络。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e32d/4897649/27fbd6f88c6d/srep26814-f1.jpg

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