Gene Expression Noise Facilitates Adaptation and Drug Resistance Independently of Mutation
arXiv:1110.6467 · doi:10.1103/PhysRevLett.107.218101
Abstract
We show that the effect of stress on the reproductive fitness of noisy cell populations can be modelled as first-passage time problem, and demonstrate that even relatively short-lived fluctuations in gene expression can ensure long-term survival of a drug-resistant population. We examine how this effect contributes to the development of drug-resistant cancer cells, and demonstrate that permanent immunity can arise independently of mutations.
5 pages, 3 figures
References in corpus (4)
- Colored extrinsic fluctuations and stochastic gene expression
- Intrinsic noise in stochastic models of gene expression with molecular memory and bursting
- Post-transcriptional regulation of noise in protein distributions during gene expression
- An Algorithm for the Stochastic Simulation of Gene Expression and Heterogeneous Population Dynamics
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- Analyzing the effect of cell rearrangement on Delta-Notch pattern formation
- Concentration of Empirical First-Passage Times