MIL-CELL: a tool for multi-scale simulation of yeast replication and prion transmission

IF 2.2 4区 生物学 Q3 BIOPHYSICS European Biophysics Journal Pub Date : 2023-09-05 DOI:10.1007/s00249-023-01679-4
Damien Hall
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Abstract

The single-celled baker’s yeast, Saccharomyces cerevisiae, can sustain a number of amyloid-based prions, the three most prominent examples being [URE3], [PSI+], and [PIN+]. In the laboratory, haploid S. cerevisiae cells of a single mating type can acquire an amyloid prion in one of two ways (i) spontaneous nucleation of the prion within the yeast cell, and (ii) receipt via mother-to-daughter transmission during the cell division cycle. Similarly, prions can be lost due to (i) dissolution of the prion amyloid by its breakage into non-amyloid monomeric units, or (ii) preferential donation/retention of prions between the mother and daughter during cell division. Here we present a computational tool (Monitoring Induction and Loss of prions in Cells; MIL-CELL) for modelling these four general processes using a multiscale approach describing both spatial and kinetic aspects of the yeast life cycle and the amyloid-prion behavior. We describe the workings of the model, assumptions upon which it is based and some interesting simulation results pertaining to the wave-like spread of the epigenetic prion elements through the yeast population. MIL-CELL is provided as a stand-alone GUI executable program for free download with the paper. MIL-CELL is equipped with a relational database allowing all simulated properties to be searched, collated and graphed. Its ability to incorporate variation in heritable properties means MIL-CELL is also capable of simulating loss of the isogenic nature of a cell population over time. The capability to monitor both chronological and reproductive age also makes MIL-CELL potentially useful in studies of cell aging.

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MIL-CELL:用于酵母复制和朊病毒传播的多尺度模拟工具。
单细胞面包酵母(Saccharomyces cerevisiae)可以维持许多淀粉样蛋白朊病毒,其中最突出的三个例子是[URE3]、[PSI+]和[PIN+]。在实验室中,单一交配类型的单倍体酿酒酵母细胞可以通过两种方式之一获得淀粉样朊病毒(i)朊病毒在酵母细胞内自发成核,以及(ii)在细胞分裂周期中通过母亲向女儿传播获得。同样,朊病毒也可能由于(i)朊病毒淀粉样蛋白被分解成非淀粉样单体单位而丢失,或(ii)在细胞分裂期间,母体和子代之间优先捐赠/保留朊病毒。在这里,我们提出了一个计算工具(监测细胞中朊病毒的诱导和丢失;MIL-CELL)利用多尺度方法描述酵母生命周期和淀粉样蛋白-朊病毒行为的空间和动力学方面,对这四个一般过程进行建模。我们描述了模型的工作原理,它所基于的假设和一些有趣的模拟结果,这些结果与表观遗传朊病毒元素在酵母群体中的波状传播有关。MIL-CELL作为一个独立的GUI可执行程序提供,与论文一起免费下载。MIL-CELL配备了一个关系数据库,允许对所有模拟属性进行搜索、整理和绘图。MIL-CELL结合可遗传特性变化的能力意味着它也能够模拟细胞群随着时间的推移而丧失等基因特性。MIL-CELL能够同时监测实际年龄和生育年龄,这也使得它在细胞衰老研究中具有潜在的应用价值。
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来源期刊
European Biophysics Journal
European Biophysics Journal 生物-生物物理
CiteScore
4.30
自引率
0.00%
发文量
43
审稿时长
6-12 weeks
期刊介绍: The journal publishes papers in the field of biophysics, which is defined as the study of biological phenomena by using physical methods and concepts. Original papers, reviews and Biophysics letters are published. The primary goal of this journal is to advance the understanding of biological structure and function by application of the principles of physical science, and by presenting the work in a biophysical context. Papers employing a distinctively biophysical approach at all levels of biological organisation will be considered, as will both experimental and theoretical studies. The criteria for acceptance are scientific content, originality and relevance to biological systems of current interest and importance. Principal areas of interest include: - Structure and dynamics of biological macromolecules - Membrane biophysics and ion channels - Cell biophysics and organisation - Macromolecular assemblies - Biophysical methods and instrumentation - Advanced microscopics - System dynamics.
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