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Exploring Transduction Mechanisms of Protein Transduction Domains (PTDs) in Living Cells Utilizing Single-Quantum Dot Tracking (SQT) Technology

机译:利用单量子点跟踪(SQT)技术探索活细胞中蛋白质转导域(PTD)的转导机制

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Specific protein domains known as protein transduction domains (PTDs) can permeate cell membranes and deliver proteins or bioactive materials into living cells. Various approaches have been applied for improving their transduction efficacy. It is, therefore, crucial to clarify the entry mechanisms and to identify the rate-limiting steps. Because of technical limitations for imaging PTD behavior on cells with conventional fluorescent-dyes, how PTDs enter the cells has been a topic of much debate. Utilizing quantum dots (QDs), we recently tracked the behavior of PTD that was derived from HIV-1 Tat (TatP) in living cells at the single-molecule level with 7-nm special precision. In this review article, we initially summarize the controversy on TatP entry mechanisms; thereafter, we will focus on our recent findings on single-TatP-QD tracking (SQT), to identify the major sequential steps of intracellular delivery in living cells and to discuss how SQT can easily provide direct information on TatP entry mechanisms. As a primer for SQT study, we also discuss the latest findings on single particle tracking of various molecules on the plasma membrane. Finally, we discuss the problems of QDs and the challenges for the future in utilizing currently available QD probes for SQT. In conclusion, direct identification of the rate-limiting steps of PTD entry with SQT should dramatically improve the methods for enhancing transduction efficiency.
机译:称为蛋白质转导结构域(PTD)的特定蛋白质结构域可以渗透细胞膜,并将蛋白质或生物活性物质输送到活细胞中。已经应用了各种方法来改善其转导功效。因此,至关重要的是弄清楚进入机制并确定限速步骤。由于使用常规荧光染料对细胞上的PTD行为进行成像的技术限制,PTD如何进入细胞已成为许多争论的话题。利用量子点(QDs),我们最近以7 nm的特殊精度跟踪了源自HIV-1 Tat(TatP)的PTD在活细胞中的单分子水平。在这篇评论文章中,我们首先总结了有关TatP进入机制的争议;此后,我们将重点关注我们在单TatP-QD跟踪(SQT)方面的最新发现,以确定活细胞内细胞内递送的主要顺序步骤,并讨论SQT如何轻松提供有关TatP进入机制的直接信息。作为SQT研究的引物,我们还将讨论关于质膜上各种分子的单粒子跟踪的最新发现。最后,我们讨论了利用现有的QD探针进行SQT时QD的问题以及未来的挑战。总之,直接识别SQT进入PTD的限速步骤将大大改善提高转导效率的方法。

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