Ono Masahiro
Department of Life Sciences, Imperial College London, London, SW7 2AZ, United Kingdom.
Joint Research Center for Human Retrovirus Infection, Kumamoto University, Kumamoto, 860-0811, Japan.
Biophys Physicobiol. 2024 Feb 16;21(Supplemental):e211010. doi: 10.2142/biophysico.bppb-v21.s010. eCollection 2024.
Understanding the temporal dynamics of T-cell transcription is crucial for insights into immune cell function and development. In this study, we show the features of the Timer-of-Cell-Kinetics-and-Activity (Tocky) system, which enables analysis of temporal dynamics of cell activities and differentiation, leveraging Fluorescent Timer protein, which spontaneously changes its emission spectrum from blue to red fluorescence in known kinetics, as reporters. The current study examines the properties of the Tocky system, highlighting the Timer-Angle approach, which is a core algorithm of Tocky analysis and converts Timer Blue and Red fluorescence into Timer Angle and Intensity by trigonometric transformation. Importantly, Tocky analyzes time-related events within individual cells by the two phases of measurements, distinguishing between (1) the temporal sequence of cellular activities and differentiation within the time domain, and (2) the transcription frequency within the frequency domain. The transition from time measurement to frequency analysis, particularly at the Persistent locus that bridges these domains, highlights that system's unique property in what is measured and analyzed by Tocky. Intriguingly, the sustained transcriptional activities observed in cells at the Persistent locus may have unique biological features as demonstrated in activated regulatory T-cells (Treg) and pathogenic T-cells, respectively, using Foxp3-Tocky and Nr4a3-Tocky models. In conclusion, the Tocky system can provide crucial data for advancing our understanding of T-cell dynamics and function.
了解T细胞转录的时间动态对于深入了解免疫细胞功能和发育至关重要。在本研究中,我们展示了细胞动力学与活性定时器(Tocky)系统的特点,该系统利用荧光定时器蛋白作为报告分子,能够分析细胞活动和分化的时间动态,荧光定时器蛋白会以已知的动力学方式自发地将其发射光谱从蓝色荧光转变为红色荧光。当前研究考察了Tocky系统的特性,重点介绍了定时器角度方法,这是Tocky分析的核心算法,通过三角变换将定时器蓝色和红色荧光转换为定时器角度和强度。重要的是,Tocky通过两个测量阶段分析单个细胞内与时间相关的事件,区分(1)时域内细胞活动和分化的时间顺序,以及(2)频域内的转录频率。从时间测量到频率分析的转变,特别是在连接这些域的持久位点处,突出了该系统在Tocky所测量和分析内容方面的独特属性。有趣的是,分别使用Foxp3-Tocky和Nr4a3-Tocky模型,在持久位点的细胞中观察到的持续转录活动可能具有独特的生物学特征,这在活化的调节性T细胞(Treg)和致病性T细胞中得到了证明。总之,Tocky系统可以为推进我们对T细胞动态和功能的理解提供关键数据。