Coupled membrane transporters reduce noise

Molecular systems are inherently probabilistic and operate in a noisy environment, yet, despite all these uncertainties, molecular functions are surprisingly reliable and robust. The principles used by natural systems to deal with noise are still not well understood, especially in a nonhomogeneous e...

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Hlavní autoři: Cardelli, L, Laurenti, L, Csikasz-Nagy, A
Médium: Journal article
Vydáno: American Physical Society 2020
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author Cardelli, L
Laurenti, L
Csikasz-Nagy, A
author_facet Cardelli, L
Laurenti, L
Csikasz-Nagy, A
author_sort Cardelli, L
collection OXFORD
description Molecular systems are inherently probabilistic and operate in a noisy environment, yet, despite all these uncertainties, molecular functions are surprisingly reliable and robust. The principles used by natural systems to deal with noise are still not well understood, especially in a nonhomogeneous environment where molecules can diffuse across different compartments. In this paper we show that membrane transport mechanisms have very effective properties of noise reduction. In particular, we show that active transport mechanisms (those that can transport against a gradient of concentration by using energy or by means of the concentration gradient of other substances), such as symporters and antiporters, have surprising efficiency in noise reduction, which outperforms passive diffusion mechanisms and are well below Poisson levels. We link our results to the coupled transport of potassium, sodium, and glucose to show that the noise in internal glucose level can be greatly reduced. Our results show that compartmentalization can be a highly effective mechanism of noise reduction and suggests that membrane transport could give this extra benefit, contributing to the emergence of complex compartmentalization in eukaryotes.
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spelling oxford-uuid:97ea52de-2c2d-423b-938a-82424a2a00302022-03-27T00:03:14ZCoupled membrane transporters reduce noiseJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:97ea52de-2c2d-423b-938a-82424a2a0030Symplectic ElementsAmerican Physical Society2020Cardelli, LLaurenti, LCsikasz-Nagy, AMolecular systems are inherently probabilistic and operate in a noisy environment, yet, despite all these uncertainties, molecular functions are surprisingly reliable and robust. The principles used by natural systems to deal with noise are still not well understood, especially in a nonhomogeneous environment where molecules can diffuse across different compartments. In this paper we show that membrane transport mechanisms have very effective properties of noise reduction. In particular, we show that active transport mechanisms (those that can transport against a gradient of concentration by using energy or by means of the concentration gradient of other substances), such as symporters and antiporters, have surprising efficiency in noise reduction, which outperforms passive diffusion mechanisms and are well below Poisson levels. We link our results to the coupled transport of potassium, sodium, and glucose to show that the noise in internal glucose level can be greatly reduced. Our results show that compartmentalization can be a highly effective mechanism of noise reduction and suggests that membrane transport could give this extra benefit, contributing to the emergence of complex compartmentalization in eukaryotes.
spellingShingle Cardelli, L
Laurenti, L
Csikasz-Nagy, A
Coupled membrane transporters reduce noise
title Coupled membrane transporters reduce noise
title_full Coupled membrane transporters reduce noise
title_fullStr Coupled membrane transporters reduce noise
title_full_unstemmed Coupled membrane transporters reduce noise
title_short Coupled membrane transporters reduce noise
title_sort coupled membrane transporters reduce noise
work_keys_str_mv AT cardellil coupledmembranetransportersreducenoise
AT laurentil coupledmembranetransportersreducenoise
AT csikasznagya coupledmembranetransportersreducenoise