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Studying the Protein Quality Control System of D. discoideum Using Temperature-controlled Live Cell Imaging

机译:利用温控活细胞成像技术研究圆盘菌的蛋白质质量控​​制系统

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摘要

The complex lifestyle of the social amoebae Dictyostelium discoideum makes it a valuable model for the study of various biological processes. Recently, we showed that D. discoideum is remarkably resilient to protein aggregation and can be used to gain insights into the cellular protein quality control system. However, the use of D. discoideum as a model system poses several challenges to microscopy-based experimental approaches, such as the high motility of the cells and their susceptibility to photo-toxicity. The latter proves to be especially challenging when studying protein homeostasis, as the phototoxic effects can induce a cellular stress response and thus alter to behavior of the protein quality control system. Temperature increase is a commonly used way to induce cellular stress. Here, we describe a temperature-controllable imaging protocol, which allows observing temperature-induced perturbations in D. discoideum. Moreover, when applied at normal growth temperature, this imaging protocol can also noticeably reduce photo-toxicity, thus allowing imaging with higher intensities. This can be particularly useful when imaging proteins with very low expression levels. Moreover, the high mobility of the cells often requires the acquisition of multiple fields of view to follow individual cells, and the number of fields needs to be balanced against the desired time interval and exposure time.
机译:变形虫小球藻柄状盘菌的复杂生活方式使其成为研究各种生物过程的有价值的模型。最近,我们表明D. discoideum对蛋白质聚集具有显着的回弹力,可用于深入了解细胞蛋白质质量控​​制系统。然而,使用迪斯科舞毒杆菌作为模型系统对基于显微镜的实验方法提出了一些挑战,例如细胞的高运动性及其对光毒性的敏感性。当研究蛋白质稳态时,后者被证明是特别具有挑战性的,因为光毒性作用可以诱导细胞应激反应,从而改变蛋白质质量控​​制系统的行为。温度升高是引起细胞应激的常用方法。在这里,我们描述了一种温度可控的成像协议,该协议允许观察D. Discoideum中的温度诱导的扰动。此外,当在正常生长温度下使用时,该成像方案还可以显着降低光毒性,从而可以进行更高强度的成像。当对表达水平非常低的蛋白质进行成像时,这尤其有用。而且,单元的高迁移率通常需要获取多个视野以跟随单个单元,并且场的数量需要与期望的时间间隔和曝光时间平衡。

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