Zou Ke, Ren Diana S, Ou-Yang Qi, Li Hao, Zheng Jiashun
The State Key Laboratory for Artificial Microstructures and Mesoscopic Physics, School of Physics, Peking University; Department of Biochemistry and Biophysics, University of California, San Francisco.
Department of Biochemistry and Biophysics, University of California, San Francisco.
J Vis Exp. 2017 Mar 30(121):55412. doi: 10.3791/55412.
Budding yeast Saccharomyces cerevisiae is an important model organism in aging research. Genetic studies have revealed many genes with conserved effects on the lifespan across species. However, the molecular causes of aging and death remain elusive. To gain a systematic understanding of the molecular mechanisms underlying yeast aging, we need high-throughput methods to measure lifespan and to quantify various cellular and molecular phenotypes in single cells. Previously, we developed microfluidic devices to track budding yeast mother cells throughout their lifespan while flushing away newborn daughter cells. This article presents a method for preparing microfluidic chips and for setting up microfluidic experiments. Multiple channels can be used to simultaneously track cells under different conditions or from different yeast strains. A typical setup can track hundreds of cells per channel and allow for high-resolution microscope imaging throughout the lifespan of the cells. Our method also allows detailed characterization of the lifespan, molecular markers, cell morphology, and the cell cycle dynamics of single cells. In addition, our microfluidic device is able to trap a significant amount of fresh mother cells that can be identified by downstream image analysis, making it possible to measure the lifespan with higher accuracy.
出芽酵母酿酒酵母是衰老研究中的一种重要模式生物。遗传学研究已经揭示了许多对物种寿命具有保守影响的基因。然而,衰老和死亡的分子原因仍然难以捉摸。为了系统地了解酵母衰老的分子机制,我们需要高通量方法来测量寿命并量化单个细胞中的各种细胞和分子表型。此前,我们开发了微流控装置,用于在冲洗掉新生子细胞的同时跟踪出芽酵母母细胞的整个寿命。本文介绍了一种制备微流控芯片和设置微流控实验的方法。多个通道可用于同时跟踪不同条件下或来自不同酵母菌株的细胞。一个典型的设置可以每个通道跟踪数百个细胞,并允许在细胞的整个寿命期间进行高分辨率显微镜成像。我们的方法还允许对单个细胞的寿命、分子标记、细胞形态和细胞周期动力学进行详细表征。此外,我们的微流控装置能够捕获大量可通过下游图像分析识别的新鲜母细胞,从而有可能更准确地测量寿命。