首页> 外文期刊>The Analyst: The Analytical Journal of the Royal Society of Chemistry: A Monthly International Publication Dealing with All Branches of Analytical Chemistry >The Boolean logic tree of molecular self-assembly system based on cobalt oxyhydroxide nanoflakes for three-state logic computation, sensing and imaging of pyrophosphate in living cells and in vivo
【24h】

The Boolean logic tree of molecular self-assembly system based on cobalt oxyhydroxide nanoflakes for three-state logic computation, sensing and imaging of pyrophosphate in living cells and in vivo

机译:基于钴羟基氧化物纳米蛋白的分子自组装系统的布尔逻辑树,用于活细胞和体内焦磷酸盐的三态逻辑计算,感应和成像

获取原文
获取原文并翻译 | 示例
           

摘要

Sensing of pyrophosphate (PPi) is helpful to better understand many life processes and diagnose various early-stage diseases. However, many traditional reported methods based on artificial receptors for sensing of PPi exhibit some disadvantages including difficulties in designing appropriate binding sites and complicated multi-step assembly/functionalization. Thus, it is significantly important and a big challenge to know how to use a simple molecular self-assembly or an interaction system to solve the above-mentioned limits to achieve the quantitative analysis of specific substances in the system. Based on the natural connection and similarity (such as stimulus responsiveness) between sensing and logic computing, in this study, the Boolean logic tree of molecular self-assembly system based on the cobalt oxyhydroxide (CoOOH) nanoplatform is constructed and applied to organize and connect plug and play molecular events (fluorescent dye, acridine orange and anion, PPi). By using molecules as inputs and the corresponding fluorescence signal as the output, the CoOOH-based molecular self-assembly system can be programmed for three-input fluorescent Boolean logic computation, fluorescent three-state logic computation, detection of PPi (linear range from 50 to 6400 nM with a detection limit of 20 nM) and even for imaging in living cancer cells and in vivo (in systems such as Zebrafish and Carassius auratus). Our approach adds a new dimension for expanding molecular logic computing and sensing systems, which will not only provide more opportunities for developing novel logic computing paradigms, but also be helpful in promoting the development and applications of intelligent molecular computing and sensing systems.
机译:焦磷酸盐(PPI)的感测有助于更好地了解许多生命过程并诊断各种早期疾病。然而,许多基于人工受体的传统报告方法,用于检测PPI,表现出一些缺点,包括设计适当的结合位点和复杂的多步组装/官能化的困难。因此,了解如何使用简单的分子自组装或相互作用系统来解决上述限度是显着的,并且是一个重要的挑战,以实现系统中特定物质的定量分析。基于感测和逻辑计算之间的自然连接和相似性(如刺激响应性),在本研究中,基于羟基氧化钴(CoOOH)纳米甲板的分子自组装系统的布尔逻辑树构造并应用于组织和连接插头和播放分子事件(荧光染料,吖啶橙和阴离子,PPI)。通过将分子作为输入和相应的荧光信号作为输出,基于CoOOH的分子自组装系统可以编程为三输入荧光布尔逻辑计算,荧光三态逻辑计算,检测PPI(线性范围从50对于6400nm,具有20nm的检测限,甚至用于在生物癌细胞和体内成像(在斑马鱼和Carassius auratus等系统中)。我们的方法为扩大分子逻辑计算和传感系统增加了一个新的维度,这不仅为开发新颖的逻辑计算范例提供了更多的机会,而且还有助于促进智能分子计算和传感系统的开发和应用。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号