Finding the last bits of positional information.

PRX life Pub Date : 2024-01-01 Epub Date: 2024-03-26 DOI:10.1103/prxlife.2.013016
Lauren McGough, Helena Casademunt, Miloš Nikolić, Zoe Aridor, Mariela D Petkova, Thomas Gregor, William Bialek
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Abstract

In a developing embryo, information about the position of cells is encoded in the concentrations of morphogen molecules. In the fruit fly, the local concentrations of just a handful of proteins encoded by the gap genes are sufficient to specify position with a precision comparable to the spacing between cells along the anterior-posterior axis. This matches the precision of downstream events such as the striped patterns of expression in the pair-rule genes, but is not quite sufficient to define unique identities for individual cells. We demonstrate theoretically that this information gap can be bridged if positional errors are spatially correlated, with correlation lengths ~ 20% of the embryo length. We then show experimentally that these correlations are present, with the required strength, in the fluctuating positions of the pair-rule stripes, and this can be traced back to the gap genes. Taking account of these correlations, the available information matches the information needed for unique cellular specification, within error bars of ~ 2%. These observation support a precisionist view of information flow through the underlying genetic networks, in which accurate signals are available from the start and preserved as they are transformed into the final spatial patterns.

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找到最后的位置信息。
在发育中的胚胎中,关于细胞位置的信息被编码在形态形成分子的浓度中。在果蝇中,由间隙基因编码的少量蛋白质的局部浓度足以精确地确定位置,其精度与沿前后轴的细胞间距相当。这与下游事件的准确性相匹配,例如成对规则基因中的条纹表达模式,但还不足以定义单个细胞的独特身份。我们从理论上证明,如果位置误差是空间相关的,相关长度约为胚胎长度的20%,则可以弥合这种信息差距。然后,我们通过实验证明,在成对规则条纹的波动位置中,这些相关性以所需的强度存在,这可以追溯到间隙基因。考虑到这些相关性,可用信息与唯一蜂窝规格所需的信息相匹配,误差在~ 2%的范围内。这些观察结果支持了一种通过潜在遗传网络的信息流的精确主义观点,在这种观点中,精确的信号从一开始就可用,并在转化为最终的空间模式时被保存下来。
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Gene Expression Tradeoffs Determine Bacterial Survival and Adaptation to Antibiotic Stress. Local and Global Variability in Developing Human T-Cell Repertoires. Finding the last bits of positional information.
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