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NanoLuc: A Small Luciferase Is Brightening Up the Field of Bioluminescence

机译:NanoLuc:一种小的萤光素酶正在照亮生物发光领域

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The biomedical field has greatly benefited from the discovery of bioluminescent proteins. Currently, scientists employ bioluminescent systems for numerous biomedical applications, ranging from highly sensitive cellular assays to bioluminescence based molecular imaging. Traditionally, these systems are based on Firefly and Renilla luciferases; however, the applicability of these enzymes is limited by their size, stability, and luminescence efficiency. NanoLuc (NLuc), a novel bioluminescence platform, offers several advantages over established systems, including enhanced stability, smaller size, and >150-fold increase in luminescence. In addition, the substrate for NLuc displays enhanced stability and lower background activity, opening up new possibilities in the field of bioluminescence imaging. The NLuc system is incredibly versatile and may be utilized for a wide array of applications. The increased sensitivity, high stability, and small size of the NLuc system have the potential to drastically change the field of reporter assays in the future. However, as with all such technology, NLuc has limitations (including a nonideal emission for in vivo applications and its unique substrate) which may cause it to find restricted use in certain areas of molecular biology. As this unique technology continues to broaden, NLuc may have a significant impact in both preclinical and clinical fields, with potential roles in disease detection, molecular imaging, and therapeutic monitoring. This review will present the NLuc technology to the scientific community in a nonbiased manner, allowing the audience to adopt their own views of this novel system.
机译:生物发光蛋白的发现极大地受益于生物医学领域。当前,科学家将生物发光系统用于众多生物医学应用,从高度敏感的细胞测定到基于生物发光的分子成像。传统上,这些系统基于萤火虫和海肾荧光素酶。但是,这些酶的适用性受到其大小,稳定性和发光效率的限制。 NanoLuc(NLuc)是一种新型的生物发光平台,与已建立的系统相比,具有多个优点,包括增强的稳定性,更小的尺寸以及发光增加150倍以上。此外,用于NLuc的基材显示出增强的稳定性和较低的背景活性,为生物发光成像领域开辟了新的可能性。 NLuc系统具有难以置信的通用性,可用于多种应用。 NLuc系统更高的灵敏度,更高的稳定性和更小的尺寸,有可能在未来极大地改变报告基因检测领域。但是,与所有此类技术一样,NLuc具有局限性(包括体内应用中的非理想发射及其独特的底物),这可能导致其在分子生物学的某些领域使用受限。随着这项独特技术的不断发展,NLuc可能在临床前和临床领域都产生重大影响,并在疾病检测,分子成像和治疗监测中发挥潜在作用。这篇评论将以无偏见的方式向科学界展示NLuc技术,使听众可以对这种新颖的系统采取自己的看法。

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