Cargando…

Physiological Environment Induces Quick Response – Slow Exhaustion Reactions

In vivo environments are highly crowded and inhomogeneous, which may affect reaction processes in cells. In this study we examined the effects of intracellular crowding and an inhomogeneity on the behavior of in vivo reactions by calculating the spectral dimension (d(s)), which can be translated int...

Descripción completa

Detalles Bibliográficos
Autores principales: Hiroi, Noriko, Lu, James, Iba, Keisuke, Tabira, Akito, Yamashita, Shuji, Okada, Yasunori, Flamm, Christoph, Oka, Kotaro, Köhler, Gottfried, Funahashi, Akira
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Research Foundation 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3177084/
https://www.ncbi.nlm.nih.gov/pubmed/21960972
http://dx.doi.org/10.3389/fphys.2011.00050
_version_ 1782212268482625536
author Hiroi, Noriko
Lu, James
Iba, Keisuke
Tabira, Akito
Yamashita, Shuji
Okada, Yasunori
Flamm, Christoph
Oka, Kotaro
Köhler, Gottfried
Funahashi, Akira
author_facet Hiroi, Noriko
Lu, James
Iba, Keisuke
Tabira, Akito
Yamashita, Shuji
Okada, Yasunori
Flamm, Christoph
Oka, Kotaro
Köhler, Gottfried
Funahashi, Akira
author_sort Hiroi, Noriko
collection PubMed
description In vivo environments are highly crowded and inhomogeneous, which may affect reaction processes in cells. In this study we examined the effects of intracellular crowding and an inhomogeneity on the behavior of in vivo reactions by calculating the spectral dimension (d(s)), which can be translated into the reaction rate function. We compared estimates of anomaly parameters obtained from fluorescence correlation spectroscopy (FCS) data with fractal dimensions derived from transmission electron microscopy (TEM) image analysis. FCS analysis indicated that the anomalous property was linked to physiological structure. Subsequent TEM analysis provided an in vivo illustration; soluble molecules likely percolate between intracellular clusters, which are constructed in a self-organizing manner. We estimated a cytoplasmic spectral dimension d(s) to be 1.39 ± 0.084. This result suggests that in vivo reactions initially run faster than the same reactions in a homogeneous space; this conclusion is consistent with the anomalous character indicated by FCS analysis. We further showed that these results were compatible with our Monte-Carlo simulation in which the anomalous behavior of mobile molecules correlates with the intracellular environment, leading to description as a percolation cluster, as demonstrated using TEM analysis. We confirmed by the simulation that the above-mentioned in vivo like properties are different from those of homogeneously concentrated environments. Additionally, simulation results indicated that crowding level of an environment might affect diffusion rate of reactant. Such knowledge of the spatial information enables us to construct realistic models for in vivo diffusion and reaction systems.
format Online
Article
Text
id pubmed-3177084
institution National Center for Biotechnology Information
language English
publishDate 2011
publisher Frontiers Research Foundation
record_format MEDLINE/PubMed
spelling pubmed-31770842011-09-29 Physiological Environment Induces Quick Response – Slow Exhaustion Reactions Hiroi, Noriko Lu, James Iba, Keisuke Tabira, Akito Yamashita, Shuji Okada, Yasunori Flamm, Christoph Oka, Kotaro Köhler, Gottfried Funahashi, Akira Front Physiol Physiology In vivo environments are highly crowded and inhomogeneous, which may affect reaction processes in cells. In this study we examined the effects of intracellular crowding and an inhomogeneity on the behavior of in vivo reactions by calculating the spectral dimension (d(s)), which can be translated into the reaction rate function. We compared estimates of anomaly parameters obtained from fluorescence correlation spectroscopy (FCS) data with fractal dimensions derived from transmission electron microscopy (TEM) image analysis. FCS analysis indicated that the anomalous property was linked to physiological structure. Subsequent TEM analysis provided an in vivo illustration; soluble molecules likely percolate between intracellular clusters, which are constructed in a self-organizing manner. We estimated a cytoplasmic spectral dimension d(s) to be 1.39 ± 0.084. This result suggests that in vivo reactions initially run faster than the same reactions in a homogeneous space; this conclusion is consistent with the anomalous character indicated by FCS analysis. We further showed that these results were compatible with our Monte-Carlo simulation in which the anomalous behavior of mobile molecules correlates with the intracellular environment, leading to description as a percolation cluster, as demonstrated using TEM analysis. We confirmed by the simulation that the above-mentioned in vivo like properties are different from those of homogeneously concentrated environments. Additionally, simulation results indicated that crowding level of an environment might affect diffusion rate of reactant. Such knowledge of the spatial information enables us to construct realistic models for in vivo diffusion and reaction systems. Frontiers Research Foundation 2011-09-21 /pmc/articles/PMC3177084/ /pubmed/21960972 http://dx.doi.org/10.3389/fphys.2011.00050 Text en Copyright © 2011 Hiroi, Lu, Iba, Tabira, Yamashita, Okada, Flamm, Oka, Köhler and Funahashi. http://www.frontiersin.org/licenseagreement This is an open-access article subject to a non-exclusive license between the authors and Frontiers Media SA, which permits use, distribution and reproduction in other forums, provided the original authors and source are credited and other Frontiers conditions are complied with.
spellingShingle Physiology
Hiroi, Noriko
Lu, James
Iba, Keisuke
Tabira, Akito
Yamashita, Shuji
Okada, Yasunori
Flamm, Christoph
Oka, Kotaro
Köhler, Gottfried
Funahashi, Akira
Physiological Environment Induces Quick Response – Slow Exhaustion Reactions
title Physiological Environment Induces Quick Response – Slow Exhaustion Reactions
title_full Physiological Environment Induces Quick Response – Slow Exhaustion Reactions
title_fullStr Physiological Environment Induces Quick Response – Slow Exhaustion Reactions
title_full_unstemmed Physiological Environment Induces Quick Response – Slow Exhaustion Reactions
title_short Physiological Environment Induces Quick Response – Slow Exhaustion Reactions
title_sort physiological environment induces quick response – slow exhaustion reactions
topic Physiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3177084/
https://www.ncbi.nlm.nih.gov/pubmed/21960972
http://dx.doi.org/10.3389/fphys.2011.00050
work_keys_str_mv AT hiroinoriko physiologicalenvironmentinducesquickresponseslowexhaustionreactions
AT lujames physiologicalenvironmentinducesquickresponseslowexhaustionreactions
AT ibakeisuke physiologicalenvironmentinducesquickresponseslowexhaustionreactions
AT tabiraakito physiologicalenvironmentinducesquickresponseslowexhaustionreactions
AT yamashitashuji physiologicalenvironmentinducesquickresponseslowexhaustionreactions
AT okadayasunori physiologicalenvironmentinducesquickresponseslowexhaustionreactions
AT flammchristoph physiologicalenvironmentinducesquickresponseslowexhaustionreactions
AT okakotaro physiologicalenvironmentinducesquickresponseslowexhaustionreactions
AT kohlergottfried physiologicalenvironmentinducesquickresponseslowexhaustionreactions
AT funahashiakira physiologicalenvironmentinducesquickresponseslowexhaustionreactions