TY - JOUR
T1 - Precision of tissue patterning is controlled by dynamical properties of gene regulatory networks
AU - Exelby, Katherine
AU - Herrera-Delgado, Edgar
AU - Perez, Lorena Garcia
AU - Perez-Carrasco, Ruben
AU - Sagner, Andreas
AU - Metzis, Vicki
AU - Sollich, Peter
AU - Briscoe, James
N1 - © 2021. Published by The Company of Biologists Ltd.
PY - 2021/2/25
Y1 - 2021/2/25
N2 - During development, gene regulatory networks allocate cell fates by partitioning tissues into spatially organised domains of gene expression. How the sharp boundaries that delineate these gene expression patterns arise, despite the stochasticity associated with gene regulation, is poorly understood. We show, in the vertebrate neural tube, using perturbations of coding and regulatory regions, that the structure of the regulatory network contributes to boundary precision. This is achieved, not by reducing noise in individual genes, but by the configuration of the network modulating the ability of stochastic fluctuations to initiate gene expression changes. We use a computational screen to identify network properties that influence boundary precision, revealing two dynamical mechanisms by which small gene circuits attenuate the effect of noise in order to increase patterning precision. These results highlight design principles of gene regulatory networks that produce precise patterns of gene expression.
AB - During development, gene regulatory networks allocate cell fates by partitioning tissues into spatially organised domains of gene expression. How the sharp boundaries that delineate these gene expression patterns arise, despite the stochasticity associated with gene regulation, is poorly understood. We show, in the vertebrate neural tube, using perturbations of coding and regulatory regions, that the structure of the regulatory network contributes to boundary precision. This is achieved, not by reducing noise in individual genes, but by the configuration of the network modulating the ability of stochastic fluctuations to initiate gene expression changes. We use a computational screen to identify network properties that influence boundary precision, revealing two dynamical mechanisms by which small gene circuits attenuate the effect of noise in order to increase patterning precision. These results highlight design principles of gene regulatory networks that produce precise patterns of gene expression.
U2 - 10.1242/dev.197566
DO - 10.1242/dev.197566
M3 - Article
C2 - 33547135
SN - 0950-1991
VL - 148
JO - Development
JF - Development
IS - 4
M1 - 197566
ER -