Department of Physics, University of Gothenburg, SE-41296 Gothenburg, Sweden.
Department of Biochemistry, Stellenbosch University, SA-7602 Matieland, South Africa.
FEBS Lett. 2014 Jan 3;588(1):3-7. doi: 10.1016/j.febslet.2013.11.028. Epub 2013 Nov 28.
There are many examples of oscillations in biological systems and one of the most investigated is glycolytic oscillations in yeast. These oscillations have been studied since the 1950s in dense, synchronized populations and in cell-free extracts, but it has for long been unknown whether a high cell density is a requirement for oscillations to be induced, or if individual cells can oscillate also in isolation without synchronization. Here we present an experimental method and a detailed kinetic model for studying glycolytic oscillations in individual, isolated yeast cells and compare them to previously reported studies of single-cell oscillations. The importance of single-cell studies of this phenomenon and relevant future research questions are also discussed.
生物系统中有许多振荡的例子,其中研究最多的是酵母中的糖酵解振荡。自 20 世纪 50 年代以来,人们一直在密集、同步的群体和无细胞提取物中研究这些振荡,但长期以来,人们一直不知道高细胞密度是否是诱导振荡的必要条件,或者单个细胞是否可以在没有同步的情况下也在隔离中振荡。在这里,我们提出了一种实验方法和一个详细的动力学模型,用于研究单个分离的酵母细胞中的糖酵解振荡,并将其与之前报道的单细胞振荡研究进行比较。还讨论了这种现象的单细胞研究的重要性和相关的未来研究问题。