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Interplay between finite resources and local defect in an asymmetric simple exclusion process
When particle flux is regulated by multiple factors such as particle supply
and varying transport rate, it is important to identify the respective dominant
regimes. We extend the well-studied totally asymmetric simple exclusion model
to investigate the interplay between a controlled entrance and a local defect
site. The model mimics cellular transport phenomena where there is typically a
finite particle pool and non-uniform moving rates due to biochemical kinetics.
Our simulations reveal regions where, despite an increasing particle supply,
the current remains constant while particles redistribute in the system.
Exploiting a domain wall approach with mean-field approximation, we provide a
theoretical ground for our findings. The results in steady state current and
density profiles provide quantitative insights into the regulation of the
transcription and translation process in bacterial protein synthesis. We
investigate the totally asymmetric simple exclusion model with controlled
entrance and a defect site in the bulk to mimic the finite particle pool and
non-uniform moving rates in particle transport processes.Comment: 9 pages, 12 figures; v2: minor format changes; v3: major revision,
additional references; v4: minor format change to figures, additional
reference
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