Cargando…

The Global Relationship between Chromatin Physical Topology, Fractal Structure, and Gene Expression

Most of what we know about gene transcription comes from the view of cells as molecular machines: focusing on the role of molecular modifications to the proteins carrying out transcriptional reactions at a loci-by-loci basis. This view ignores a critical reality: biological reactions do not happen i...

Descripción completa

Detalles Bibliográficos
Autores principales: Almassalha, L. M., Tiwari, A., Ruhoff, P. T., Stypula-Cyrus, Y., Cherkezyan, L., Matsuda, H., Dela Cruz, M. A., Chandler, J. E., White, C., Maneval, C., Subramanian, H., Szleifer, I., Roy, H. K., Backman, V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5259786/
https://www.ncbi.nlm.nih.gov/pubmed/28117353
http://dx.doi.org/10.1038/srep41061
_version_ 1782499274225876992
author Almassalha, L. M.
Tiwari, A.
Ruhoff, P. T.
Stypula-Cyrus, Y.
Cherkezyan, L.
Matsuda, H.
Dela Cruz, M. A.
Chandler, J. E.
White, C.
Maneval, C.
Subramanian, H.
Szleifer, I.
Roy, H. K.
Backman, V.
author_facet Almassalha, L. M.
Tiwari, A.
Ruhoff, P. T.
Stypula-Cyrus, Y.
Cherkezyan, L.
Matsuda, H.
Dela Cruz, M. A.
Chandler, J. E.
White, C.
Maneval, C.
Subramanian, H.
Szleifer, I.
Roy, H. K.
Backman, V.
author_sort Almassalha, L. M.
collection PubMed
description Most of what we know about gene transcription comes from the view of cells as molecular machines: focusing on the role of molecular modifications to the proteins carrying out transcriptional reactions at a loci-by-loci basis. This view ignores a critical reality: biological reactions do not happen in an empty space, but in a highly complex, interrelated, and dense nanoenvironment that profoundly influences chemical interactions. We explored the relationship between the physical nanoenvironment of chromatin and gene transcription in vitro. We analytically show that changes in the fractal dimension, D, of chromatin correspond to simultaneous increases in chromatin accessibility and compaction heterogeneity. Using these predictions, we demonstrate experimentally that nanoscopic changes to chromatin D within thirty minutes correlate with concomitant enhancement and suppression of transcription. Further, we show that the increased heterogeneity of physical structure of chromatin due to increase in fractal dimension correlates with increased heterogeneity of gene networks. These findings indicate that the higher order folding of chromatin topology may act as a molecular-pathway independent code regulating global patterns of gene expression. Since physical organization of chromatin is frequently altered in oncogenesis, this work provides evidence pairing molecular function to physical structure for processes frequently altered during tumorigenesis.
format Online
Article
Text
id pubmed-5259786
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher Nature Publishing Group
record_format MEDLINE/PubMed
spelling pubmed-52597862017-01-25 The Global Relationship between Chromatin Physical Topology, Fractal Structure, and Gene Expression Almassalha, L. M. Tiwari, A. Ruhoff, P. T. Stypula-Cyrus, Y. Cherkezyan, L. Matsuda, H. Dela Cruz, M. A. Chandler, J. E. White, C. Maneval, C. Subramanian, H. Szleifer, I. Roy, H. K. Backman, V. Sci Rep Article Most of what we know about gene transcription comes from the view of cells as molecular machines: focusing on the role of molecular modifications to the proteins carrying out transcriptional reactions at a loci-by-loci basis. This view ignores a critical reality: biological reactions do not happen in an empty space, but in a highly complex, interrelated, and dense nanoenvironment that profoundly influences chemical interactions. We explored the relationship between the physical nanoenvironment of chromatin and gene transcription in vitro. We analytically show that changes in the fractal dimension, D, of chromatin correspond to simultaneous increases in chromatin accessibility and compaction heterogeneity. Using these predictions, we demonstrate experimentally that nanoscopic changes to chromatin D within thirty minutes correlate with concomitant enhancement and suppression of transcription. Further, we show that the increased heterogeneity of physical structure of chromatin due to increase in fractal dimension correlates with increased heterogeneity of gene networks. These findings indicate that the higher order folding of chromatin topology may act as a molecular-pathway independent code regulating global patterns of gene expression. Since physical organization of chromatin is frequently altered in oncogenesis, this work provides evidence pairing molecular function to physical structure for processes frequently altered during tumorigenesis. Nature Publishing Group 2017-01-24 /pmc/articles/PMC5259786/ /pubmed/28117353 http://dx.doi.org/10.1038/srep41061 Text en Copyright © 2017, The Author(s) http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Almassalha, L. M.
Tiwari, A.
Ruhoff, P. T.
Stypula-Cyrus, Y.
Cherkezyan, L.
Matsuda, H.
Dela Cruz, M. A.
Chandler, J. E.
White, C.
Maneval, C.
Subramanian, H.
Szleifer, I.
Roy, H. K.
Backman, V.
The Global Relationship between Chromatin Physical Topology, Fractal Structure, and Gene Expression
title The Global Relationship between Chromatin Physical Topology, Fractal Structure, and Gene Expression
title_full The Global Relationship between Chromatin Physical Topology, Fractal Structure, and Gene Expression
title_fullStr The Global Relationship between Chromatin Physical Topology, Fractal Structure, and Gene Expression
title_full_unstemmed The Global Relationship between Chromatin Physical Topology, Fractal Structure, and Gene Expression
title_short The Global Relationship between Chromatin Physical Topology, Fractal Structure, and Gene Expression
title_sort global relationship between chromatin physical topology, fractal structure, and gene expression
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5259786/
https://www.ncbi.nlm.nih.gov/pubmed/28117353
http://dx.doi.org/10.1038/srep41061
work_keys_str_mv AT almassalhalm theglobalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT tiwaria theglobalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT ruhoffpt theglobalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT stypulacyrusy theglobalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT cherkezyanl theglobalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT matsudah theglobalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT delacruzma theglobalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT chandlerje theglobalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT whitec theglobalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT manevalc theglobalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT subramanianh theglobalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT szleiferi theglobalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT royhk theglobalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT backmanv theglobalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT almassalhalm globalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT tiwaria globalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT ruhoffpt globalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT stypulacyrusy globalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT cherkezyanl globalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT matsudah globalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT delacruzma globalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT chandlerje globalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT whitec globalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT manevalc globalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT subramanianh globalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT szleiferi globalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT royhk globalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression
AT backmanv globalrelationshipbetweenchromatinphysicaltopologyfractalstructureandgeneexpression