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One physiology does not fit all: a path from data variability to physiogenetics?

机译:一种生理学不能适应所有情况:从数据可变性到生理遗传学的路径?

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摘要

Data variability is a costly complication of biomedical experimentation because the same experiment must be repeated a sufficient number of times so that the sample mean becomes a credible representation of the entire population. Since sampling is ideally done randomly in populations normalized for environmental and genetic backgrounds, data variability is viewed as a purely statistical issue reflecting the distribution in the population and captured as the standard deviation of the sampled data. The factors contributing to data variability are not analyzed by statistical methods; for want of a better explanation, data scatter is simply attributed to random noise and/or methodological limitations. In this commentary, evidence is discussed that documents an important role of interindividual biological diversity as a cause for data variability based on studies in which repeated sampling in the same individual permitted statistical comparisons between individuals in the same sample. Significant differences were found for proximal fluid reabsorption and plasma renin concentration between sample means of individuals of the same population. Furthermore, arterial blood pressure varied significantly between individual mice independently of strain and sex. Recognition of the extent of interindividual variability has important implications for data reproducibility, data collection, and data presentation in physiological research. Such nonrandom data variability may have different causes, but DNA modifications by genetic or epigenetic mechanisms could generate phenotype variants without being associated with disease symptoms. Exploration of the heritability of phenotypical diversity in physiology may be defined as “physiogenetics,” and it would thus be the physiological corollary of pharmacogenetics and pharmacogenomics.
机译:数据可变性是生物医学实验的代价高昂的复杂性,因为同一实验必须重复足够的次数,以使样本均值成为整个人群的可靠代表。由于理想情况下,抽样是在针对环境和遗传背景标准化的种群中随机进行的,因此数据可变性被视为反映种群分布的纯统计问题,并被视为抽样数据的标准偏差。没有通过统计方法分析导致数据可变性的因素;为了缺乏更好的解释,数据分散只是归因于随机噪声和/或方法学限制。在此评论中,讨论了证据,这些证据证明了个体间生物多样性作为导致数据可变性的重要作用,该研究基于以下研究:对同一个人的重复采样允许对同一样本中的个体进行统计比较。在相同人群的样本平均值之间发现近端液体重吸收和血浆肾素浓度存在显着差异。此外,独立于品系和性别,个体小鼠之间的动脉血压显着变化。个体间差异程度的识别对于生理研究中的数据再现性,数据收集和数据表示具有重要意义。这种非随机数据的可变性可能有不同的原因,但是通过遗传或表观遗传机制进行的DNA修饰可以产生表型变异,而与疾病症状无关。在生理学中对表型多样性的遗传力的探索可被定义为“生理遗传学”,因此它将成为药物遗传学和药物基因组学的生理推论。

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