AbstractUltrasensitive cascades often implement thresholding operations in cell signaling and gene regulatory networks, converting graded input signals into discrete all-or-none outputs. However, the biochemical and genetic reactions involved in such cascades are subject to random fluctuations, leading to noise in output signal levels. Here we prove that cascades operating near saturation have output signal fluctuations that are bounded in magnitude, even as the number of noisy cascade stages becomes large. We show that these fluctuation-bounded cascades can be used to attenuate the noise in an input signal, and we find the optimal cascade length required to achieve the best possible noise reduction. Cascades with ultrasensitive transfer fu...
We observe the phenomenon of stochastic resonant signaling in signal amplification enzyme cascades, ...
Living systems are inherently stochastic and operate in a noisy environment, yet despite all these u...
It is well known that noise is inevitable in gene regulatory networks due to the low-copy numbers of...
AbstractUltrasensitive cascades often implement thresholding operations in cell signaling and gene r...
Many biological processes are regulated by molecular devices that respond in an ultrasensitive fashi...
Series MAPK enzymatic cascades, ubiquitously found in signaling networks, act as signal amplifiers a...
ABSTRACT Understanding the information processing ability of signal transduction pathways is of grea...
Series MAPK enzymatic cascades, ubiquitously found in signaling networks, act as signal amplifiers a...
Ultrasensitive response motifs, capable of converting graded stimuli into binary responses, are well...
Ultrasensitive response motifs, capable of converting graded stimuli into binary responses, are well...
Fluctuations in the copy number of key regulatory macromolecules ("noise") may cause physiological h...
Fluctuations in the copy number of key regulatory macromolecules (‘‘noise’’) may cause physiological...
; ¶ These authors contributed equally to this work. Cells operate in noisy molecular environments vi...
Two distinct mechanisms for filtering noise in an input signal are identified in a class of adaptive...
A ubiquitous building block of signaling pathways is a cycle of covalent modification (e.g., phospho...
We observe the phenomenon of stochastic resonant signaling in signal amplification enzyme cascades, ...
Living systems are inherently stochastic and operate in a noisy environment, yet despite all these u...
It is well known that noise is inevitable in gene regulatory networks due to the low-copy numbers of...
AbstractUltrasensitive cascades often implement thresholding operations in cell signaling and gene r...
Many biological processes are regulated by molecular devices that respond in an ultrasensitive fashi...
Series MAPK enzymatic cascades, ubiquitously found in signaling networks, act as signal amplifiers a...
ABSTRACT Understanding the information processing ability of signal transduction pathways is of grea...
Series MAPK enzymatic cascades, ubiquitously found in signaling networks, act as signal amplifiers a...
Ultrasensitive response motifs, capable of converting graded stimuli into binary responses, are well...
Ultrasensitive response motifs, capable of converting graded stimuli into binary responses, are well...
Fluctuations in the copy number of key regulatory macromolecules ("noise") may cause physiological h...
Fluctuations in the copy number of key regulatory macromolecules (‘‘noise’’) may cause physiological...
; ¶ These authors contributed equally to this work. Cells operate in noisy molecular environments vi...
Two distinct mechanisms for filtering noise in an input signal are identified in a class of adaptive...
A ubiquitous building block of signaling pathways is a cycle of covalent modification (e.g., phospho...
We observe the phenomenon of stochastic resonant signaling in signal amplification enzyme cascades, ...
Living systems are inherently stochastic and operate in a noisy environment, yet despite all these u...
It is well known that noise is inevitable in gene regulatory networks due to the low-copy numbers of...