Saar Kadi-Liis, Yates Emma V, Müller Thomas, Saunier Séverine, Dobson Christopher M, Knowles Tuomas P J
Department of Chemistry, University of Cambridge, Cambridge, United Kingdom.
Department of Chemistry, University of Cambridge, Cambridge, United Kingdom.
Biophys J. 2016 Feb 2;110(3):555-560. doi: 10.1016/j.bpj.2015.11.3523.
Increasingly prevalent neurodegenerative diseases are associated with the formation of nanoscale amyloid aggregates from normally soluble peptides and proteins. A widely used strategy for following the aggregation process and defining its kinetics involves the use of extrinsic dyes that undergo a spectral shift when bound to β-sheet-rich aggregates. An attractive route to carry out such studies is to perform ex situ assays, where the dye molecules are not present in the reaction mixture, but instead are only introduced into aliquots taken from the reaction at regular time intervals to avoid the possibility that the dye molecules interfere with the aggregation process. However, such ex situ measurements are time-consuming to perform, require large sample volumes, and do not provide for real-time observation of aggregation phenomena. To overcome these limitations, here we have designed and fabricated microfluidic devices that offer continuous and automated real-time ex situ tracking of the protein aggregation process. This device allows us to improve the time resolution of ex situ aggregation assays relative to conventional assays by more than one order of magnitude. The availability of an automated system for tracking the progress of protein aggregation reactions without the presence of marker molecules in the reaction mixtures opens up the possibility of routine noninvasive study of protein aggregation phenomena.
日益普遍的神经退行性疾病与由通常可溶的肽和蛋白质形成纳米级淀粉样聚集体有关。一种广泛用于跟踪聚集过程并确定其动力学的策略涉及使用外在染料,这些染料在与富含β-折叠的聚集体结合时会发生光谱位移。进行此类研究的一个有吸引力的途径是进行非原位测定,即染料分子不存在于反应混合物中,而是仅在固定时间间隔从反应中取出的等分试样中引入,以避免染料分子干扰聚集过程的可能性。然而,这种非原位测量执行起来耗时,需要大量样品体积,并且不能实时观察聚集现象。为了克服这些限制,我们在此设计并制造了微流控装置,该装置可对蛋白质聚集过程进行连续且自动的实时非原位跟踪。该装置使我们能够将非原位聚集测定的时间分辨率相对于传统测定提高一个多数量级。在反应混合物中不存在标记分子的情况下,有一个用于跟踪蛋白质聚集反应进程的自动化系统,这为蛋白质聚集现象的常规非侵入性研究开辟了可能性。