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Experimental and Modeling Approaches for Understanding the Effect of Gene Expression Noise in Biological Development

机译:理解基因表达噪声对生物发育的影响的实验和建模方法

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Biological development involves numerous chemical and physical processes which must act in concert to reliably produce a cell, a tissue, or a body. To be successful, the developing organism must be robust to variability at many levels, such as the environment (e.g. temperature, moisture), upstream information (such as long-range positional information gradients), or intrinsic noise due to the stochastic nature of low concentration chemical kinetics. The latter is especially relevant to the regulation of gene expression in cell differentiation. The temporal stochasticity of gene expression has been studied in single celled organisms for nearly two decades, but only recently have techniques become available to gather temporally-resolved data across spatially-distributed gene expression patterns in developing multicellular organisms. These demonstrate temporal noisy a??burstinga?? in the number of gene transcripts per cell, raising the question of how the transcript number defining a particular cell type is produced, such that one cell type can reliably be distinguished from a neighbouring cell of different type along a tissue boundary. Stochastic spatio-temporal modelling of tissue-wide expression patterns can identify signatures for specific types of gene regulation, which can be used to extract regulatory mechanism information from experimental time series. This Perspective focuses on using this type of approach to study gene expression noise during the anterior-posterior segmentation of the fruit fly embryo. Advances in experimental and theoretical techniques will lead to an increasing quantification of expression noise that can be used to understand how regulatory mechanisms contribute to embryonic robustness across a range of developmental processes.
机译:生物发展涉及许多化学和物理过程,必须协同作用才能可靠地产生细胞,组织或身体。为了取得成功,发展中的生物必须对多种水平的变异具有鲁棒性,例如环境(例如温度,湿度),上游信息(例如远程位置信息梯度)或由于噪声的随机性而产生的固有噪声浓度化学动力学。后者与细胞分化中基因表达的调节特别相关。在单细胞生物中研究基因表达的时间随机性已有近二十年的历史,但是直到最近,才有技术可以用来收集发育中的多细胞生物中跨空间分布的基因表达模式的时间分辨数据。这些证明了时间上的嘈杂?在每个细胞的基因转录物数目方面,提出了一个问题,即如何产生定义特定细胞类型的转录物数目,从而可以沿组织边界可靠地将一种细胞类型与不同类型的相邻细胞区分开。组织范围表达模式的随机时空建模可以识别特定类型基因调控的特征,可用于从实验时间序列中提取调控机制信息。本观点着眼于使用这种类型的方法来研究果蝇胚胎的前后分割过程中的基因表达噪声。实验和理论技术的进步将导致表达噪声的量化提高,可用于理解调节机制如何在一系列发育过程中促进胚胎的健壮性。

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