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Glycan processing in the Golgi as optimal information coding that constrains cisternal number and enzyme specificity

Many proteins that undergo sequential enzymatic modification in the Golgi cisternae are displayed at the plasma membrane as cell identity markers. The modified proteins, called glycans, represent a molecular code. The fidelity of this glycan code is measured by how accurately the glycan synthesis ma...

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Autores principales: Yadav, Alkesh, Vagne, Quentin, Sens, Pierre, Iyengar, Garud, Rao, Madan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9154746/
https://www.ncbi.nlm.nih.gov/pubmed/35175197
http://dx.doi.org/10.7554/eLife.76757
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author Yadav, Alkesh
Vagne, Quentin
Sens, Pierre
Iyengar, Garud
Rao, Madan
author_facet Yadav, Alkesh
Vagne, Quentin
Sens, Pierre
Iyengar, Garud
Rao, Madan
author_sort Yadav, Alkesh
collection PubMed
description Many proteins that undergo sequential enzymatic modification in the Golgi cisternae are displayed at the plasma membrane as cell identity markers. The modified proteins, called glycans, represent a molecular code. The fidelity of this glycan code is measured by how accurately the glycan synthesis machinery realizes the desired target glycan distribution for a particular cell type and niche. In this article, we construct a simplified chemical synthesis model to quantitatively analyse the trade-offs between the number of cisternae, and the number and specificity of enzymes, required to synthesize a prescribed target glycan distribution of a certain complexity to within a given fidelity. We find that to synthesize complex distributions, such as those observed in real cells, one needs to have multiple cisternae and precise enzyme partitioning in the Golgi. Additionally, for a fixed number of enzymes and cisternae, there is an optimal level of specificity (promiscuity) of enzymes that achieves the target distribution with high fidelity. The geometry of the fidelity landscape in the multidimensional space of the number and specificity of enzymes, inter-cisternal transfer rates, and number of cisternae provides a measure for robustness and identifies stiff and sloppy directions. Our results show how the complexity of the target glycan distribution and number of glycosylation enzymes places functional constraints on the Golgi cisternal number and enzyme specificity.
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spelling pubmed-91547462022-06-01 Glycan processing in the Golgi as optimal information coding that constrains cisternal number and enzyme specificity Yadav, Alkesh Vagne, Quentin Sens, Pierre Iyengar, Garud Rao, Madan eLife Physics of Living Systems Many proteins that undergo sequential enzymatic modification in the Golgi cisternae are displayed at the plasma membrane as cell identity markers. The modified proteins, called glycans, represent a molecular code. The fidelity of this glycan code is measured by how accurately the glycan synthesis machinery realizes the desired target glycan distribution for a particular cell type and niche. In this article, we construct a simplified chemical synthesis model to quantitatively analyse the trade-offs between the number of cisternae, and the number and specificity of enzymes, required to synthesize a prescribed target glycan distribution of a certain complexity to within a given fidelity. We find that to synthesize complex distributions, such as those observed in real cells, one needs to have multiple cisternae and precise enzyme partitioning in the Golgi. Additionally, for a fixed number of enzymes and cisternae, there is an optimal level of specificity (promiscuity) of enzymes that achieves the target distribution with high fidelity. The geometry of the fidelity landscape in the multidimensional space of the number and specificity of enzymes, inter-cisternal transfer rates, and number of cisternae provides a measure for robustness and identifies stiff and sloppy directions. Our results show how the complexity of the target glycan distribution and number of glycosylation enzymes places functional constraints on the Golgi cisternal number and enzyme specificity. eLife Sciences Publications, Ltd 2022-02-17 /pmc/articles/PMC9154746/ /pubmed/35175197 http://dx.doi.org/10.7554/eLife.76757 Text en © 2022, Yadav et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Physics of Living Systems
Yadav, Alkesh
Vagne, Quentin
Sens, Pierre
Iyengar, Garud
Rao, Madan
Glycan processing in the Golgi as optimal information coding that constrains cisternal number and enzyme specificity
title Glycan processing in the Golgi as optimal information coding that constrains cisternal number and enzyme specificity
title_full Glycan processing in the Golgi as optimal information coding that constrains cisternal number and enzyme specificity
title_fullStr Glycan processing in the Golgi as optimal information coding that constrains cisternal number and enzyme specificity
title_full_unstemmed Glycan processing in the Golgi as optimal information coding that constrains cisternal number and enzyme specificity
title_short Glycan processing in the Golgi as optimal information coding that constrains cisternal number and enzyme specificity
title_sort glycan processing in the golgi as optimal information coding that constrains cisternal number and enzyme specificity
topic Physics of Living Systems
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9154746/
https://www.ncbi.nlm.nih.gov/pubmed/35175197
http://dx.doi.org/10.7554/eLife.76757
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