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Amyloidogenic Propensities of Ribosomal S1 Proteins: Bioinformatics Screening and Experimental Checking

Structural S1 domains belong to the superfamily of oligosaccharide/oligonucleotide-binding fold domains, which are highly conserved from prokaryotes to higher eukaryotes and able to function in RNA binding. An important feature of this family is the presence of several copies of the structural domai...

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Autores principales: Grishin, Sergei Y., Deryusheva, Evgeniya I., Machulin, Andrey V., Selivanova, Olga M., Glyakina, Anna V., Gorbunova, Elena Y., Mustaeva, Leila G., Azev, Vyacheslav N., Rekstina, Valentina V., Kalebina, Tatyana S., Surin, Alexey K., Galzitskaya, Oxana V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7432502/
https://www.ncbi.nlm.nih.gov/pubmed/32707977
http://dx.doi.org/10.3390/ijms21155199
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author Grishin, Sergei Y.
Deryusheva, Evgeniya I.
Machulin, Andrey V.
Selivanova, Olga M.
Glyakina, Anna V.
Gorbunova, Elena Y.
Mustaeva, Leila G.
Azev, Vyacheslav N.
Rekstina, Valentina V.
Kalebina, Tatyana S.
Surin, Alexey K.
Galzitskaya, Oxana V.
author_facet Grishin, Sergei Y.
Deryusheva, Evgeniya I.
Machulin, Andrey V.
Selivanova, Olga M.
Glyakina, Anna V.
Gorbunova, Elena Y.
Mustaeva, Leila G.
Azev, Vyacheslav N.
Rekstina, Valentina V.
Kalebina, Tatyana S.
Surin, Alexey K.
Galzitskaya, Oxana V.
author_sort Grishin, Sergei Y.
collection PubMed
description Structural S1 domains belong to the superfamily of oligosaccharide/oligonucleotide-binding fold domains, which are highly conserved from prokaryotes to higher eukaryotes and able to function in RNA binding. An important feature of this family is the presence of several copies of the structural domain, the number of which is determined in a strictly limited range from one to six. Despite the strong tendency for the aggregation of several amyloidogenic regions in the family of the ribosomal S1 proteins, their fibril formation process is still poorly understood. Here, we combined computational and experimental approaches for studying some features of the amyloidogenic regions in this protein family. The FoldAmyloid, Waltz, PASTA 2.0 and Aggrescan programs were used to assess the amyloidogenic propensities in the ribosomal S1 proteins and to identify such regions in various structural domains. The thioflavin T fluorescence assay and electron microscopy were used to check the chosen amyloidogenic peptides’ ability to form fibrils. The bioinformatics tools were used to study the amyloidogenic propensities in 1331 ribosomal S1 proteins. We found that amyloidogenicity decreases with increasing sizes of proteins. Inside one domain, the amyloidogenicity is higher in the terminal parts. We selected and synthesized 11 amyloidogenic peptides from the Escherichia coli and Thermus thermophilus ribosomal S1 proteins and checked their ability to form amyloids using the thioflavin T fluorescence assay and electron microscopy. All 11 amyloidogenic peptides form amyloid-like fibrils. The described specific amyloidogenic regions are actually responsible for the fibrillogenesis process and may be potential targets for modulating the amyloid properties of bacterial ribosomal S1 proteins.
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spelling pubmed-74325022020-08-24 Amyloidogenic Propensities of Ribosomal S1 Proteins: Bioinformatics Screening and Experimental Checking Grishin, Sergei Y. Deryusheva, Evgeniya I. Machulin, Andrey V. Selivanova, Olga M. Glyakina, Anna V. Gorbunova, Elena Y. Mustaeva, Leila G. Azev, Vyacheslav N. Rekstina, Valentina V. Kalebina, Tatyana S. Surin, Alexey K. Galzitskaya, Oxana V. Int J Mol Sci Article Structural S1 domains belong to the superfamily of oligosaccharide/oligonucleotide-binding fold domains, which are highly conserved from prokaryotes to higher eukaryotes and able to function in RNA binding. An important feature of this family is the presence of several copies of the structural domain, the number of which is determined in a strictly limited range from one to six. Despite the strong tendency for the aggregation of several amyloidogenic regions in the family of the ribosomal S1 proteins, their fibril formation process is still poorly understood. Here, we combined computational and experimental approaches for studying some features of the amyloidogenic regions in this protein family. The FoldAmyloid, Waltz, PASTA 2.0 and Aggrescan programs were used to assess the amyloidogenic propensities in the ribosomal S1 proteins and to identify such regions in various structural domains. The thioflavin T fluorescence assay and electron microscopy were used to check the chosen amyloidogenic peptides’ ability to form fibrils. The bioinformatics tools were used to study the amyloidogenic propensities in 1331 ribosomal S1 proteins. We found that amyloidogenicity decreases with increasing sizes of proteins. Inside one domain, the amyloidogenicity is higher in the terminal parts. We selected and synthesized 11 amyloidogenic peptides from the Escherichia coli and Thermus thermophilus ribosomal S1 proteins and checked their ability to form amyloids using the thioflavin T fluorescence assay and electron microscopy. All 11 amyloidogenic peptides form amyloid-like fibrils. The described specific amyloidogenic regions are actually responsible for the fibrillogenesis process and may be potential targets for modulating the amyloid properties of bacterial ribosomal S1 proteins. MDPI 2020-07-22 /pmc/articles/PMC7432502/ /pubmed/32707977 http://dx.doi.org/10.3390/ijms21155199 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Grishin, Sergei Y.
Deryusheva, Evgeniya I.
Machulin, Andrey V.
Selivanova, Olga M.
Glyakina, Anna V.
Gorbunova, Elena Y.
Mustaeva, Leila G.
Azev, Vyacheslav N.
Rekstina, Valentina V.
Kalebina, Tatyana S.
Surin, Alexey K.
Galzitskaya, Oxana V.
Amyloidogenic Propensities of Ribosomal S1 Proteins: Bioinformatics Screening and Experimental Checking
title Amyloidogenic Propensities of Ribosomal S1 Proteins: Bioinformatics Screening and Experimental Checking
title_full Amyloidogenic Propensities of Ribosomal S1 Proteins: Bioinformatics Screening and Experimental Checking
title_fullStr Amyloidogenic Propensities of Ribosomal S1 Proteins: Bioinformatics Screening and Experimental Checking
title_full_unstemmed Amyloidogenic Propensities of Ribosomal S1 Proteins: Bioinformatics Screening and Experimental Checking
title_short Amyloidogenic Propensities of Ribosomal S1 Proteins: Bioinformatics Screening and Experimental Checking
title_sort amyloidogenic propensities of ribosomal s1 proteins: bioinformatics screening and experimental checking
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7432502/
https://www.ncbi.nlm.nih.gov/pubmed/32707977
http://dx.doi.org/10.3390/ijms21155199
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