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首页> 外文期刊>Cryobiology: International Journal of Low Temperature Biology and Medicine >Curve fitting approach for measurement of cellular osmotic properties by the electrical sensing zone method. I. Osmotically inactive volume.
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Curve fitting approach for measurement of cellular osmotic properties by the electrical sensing zone method. I. Osmotically inactive volume.

机译:通过电感应区方法测量细胞渗透特性的曲线拟合方法。 I.渗透无效的音量。

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摘要

We have investigated the confounding effects of dynamic range limitations on measurement of the osmotically inactive volume using electrical sensing zone instruments (e.g., Coulter counters), and propose an improved approach to parameter estimation. The conventional approach for analysis of cell size distributions measured by such particle sizing instruments requires data truncation: the mean cell volume is computed after exclusion of data below a specified lower bound (typically chosen to remove artifacts due to small-volume noise) and above an upper bound (typically governed by instrument limitations). The osmotically inactive volume is then estimated from a Boyle-van't Hoff plot of the averaged volume data obtained after exposure to various solution osmolalities. We demonstrate that systematic exclusion of data in the conventional approach introduces bias that results in erroneously high estimates of the osmotically inactive volume fraction. To minimize this source of error, we have devised a new algorithm based on fitting a bimodal distribution model to the non-truncated volume data. In experiments with mouse insulinoma (MIN6) cells, the osmotically inactive volume fraction was estimated to be 0.15+/-0.01 using the new method, which was significantly smaller than the estimate of 0.37+/-0.02 obtained using the conventional method (p<0.05). In silico experiments indicated that the parameter estimate obtained by the new method was accurate within 5%, whereas the error associated with the conventional approach was approximately 150%. Parametric analysis was used to elucidate the sensitivity of errors to variations in instrument dynamic range and cell volume distribution width.
机译:我们已经研究了动态范围限制对使用电感应区域仪器(例如Coulter计数器)测量非活动体积的混杂影响,并提出了一种改进的参数估计方法。用这种粒度测量仪器测量细胞大小分布的常规方法需要数据截断:平均细胞体积是在排除低于指定下限(通常选择以消除由于小体积噪声造成的伪影)和高于指定下限的数据后计算得出的上限(通常受乐器限制)。然后从暴露于各种溶液重量摩尔渗透压浓度后获得的平均体积数据的博伊尔-范霍夫图(Boyle-van't Hoff plot)估计渗透活性的体积。我们证明,在传统方法中系统地排除数据会引入偏差,从而导致对渗透无效体积分数的错误高估。为了最大程度地减少这种错误源,我们基于将双峰分布模型拟合到非截断的体数据设计了一种新算法。在使用小鼠胰岛素瘤(MIN6)细胞的实验中,使用新方法估计的无渗透活性的体积分数为0.15 +/- 0.01,这明显小于使用常规方法获得的估计值0.37 +/- 0.02(p < 0.05)。在计算机实验中,通过新方法获得的参数估计准确度在5%以内,而与常规方法相关的误差约为150%。使用参数分析来阐明误差对仪器动态范围和细胞体积分布宽度变化的敏感性。

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