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Structural Analyses on the Deamidation of N-Terminal Asn in the Human N-Degron Pathway

The N-degron pathway is a proteolytic system in which a single N-terminal amino acid acts as a determinant of protein degradation. Especially, degradation signaling of N-terminal asparagine (Nt-Asn) in eukaryotes is initiated from its deamidation by N-terminal asparagine amidohydrolase 1 (NTAN1) int...

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Autores principales: Park, Joon Sung, Lee, Jae-Young, Nguyen, Yen Thi Kim, Kang, Nae-Won, Oh, Eun Kyung, Jang, Dong Man, Kim, Hyun-Jung, Kim, Dae-Duk, Han, Byung Woo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7022378/
https://www.ncbi.nlm.nih.gov/pubmed/31968674
http://dx.doi.org/10.3390/biom10010163
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author Park, Joon Sung
Lee, Jae-Young
Nguyen, Yen Thi Kim
Kang, Nae-Won
Oh, Eun Kyung
Jang, Dong Man
Kim, Hyun-Jung
Kim, Dae-Duk
Han, Byung Woo
author_facet Park, Joon Sung
Lee, Jae-Young
Nguyen, Yen Thi Kim
Kang, Nae-Won
Oh, Eun Kyung
Jang, Dong Man
Kim, Hyun-Jung
Kim, Dae-Duk
Han, Byung Woo
author_sort Park, Joon Sung
collection PubMed
description The N-degron pathway is a proteolytic system in which a single N-terminal amino acid acts as a determinant of protein degradation. Especially, degradation signaling of N-terminal asparagine (Nt-Asn) in eukaryotes is initiated from its deamidation by N-terminal asparagine amidohydrolase 1 (NTAN1) into aspartate. Here, we have elucidated structural principles of deamidation by human NTAN1. NTAN1 adopts the characteristic scaffold of CNF1/YfiH-like cysteine hydrolases that features an α-β-β sandwich structure and a catalytic triad comprising Cys, His, and Ser. In vitro deamidation assays using model peptide substrates with varying lengths and sequences showed that NTAN1 prefers hydrophobic residues at the second-position. The structures of NTAN1-peptide complexes further revealed that the recognition of Nt-Asn is sufficiently organized to produce high specificity, and the side chain of the second-position residue is accommodated in a hydrophobic pocket adjacent to the active site of NTAN1. Collectively, our structural and biochemical analyses of the substrate specificity of NTAN1 contribute to understanding the structural basis of all three amidases in the eukaryotic N-degron pathway.
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spelling pubmed-70223782020-03-09 Structural Analyses on the Deamidation of N-Terminal Asn in the Human N-Degron Pathway Park, Joon Sung Lee, Jae-Young Nguyen, Yen Thi Kim Kang, Nae-Won Oh, Eun Kyung Jang, Dong Man Kim, Hyun-Jung Kim, Dae-Duk Han, Byung Woo Biomolecules Article The N-degron pathway is a proteolytic system in which a single N-terminal amino acid acts as a determinant of protein degradation. Especially, degradation signaling of N-terminal asparagine (Nt-Asn) in eukaryotes is initiated from its deamidation by N-terminal asparagine amidohydrolase 1 (NTAN1) into aspartate. Here, we have elucidated structural principles of deamidation by human NTAN1. NTAN1 adopts the characteristic scaffold of CNF1/YfiH-like cysteine hydrolases that features an α-β-β sandwich structure and a catalytic triad comprising Cys, His, and Ser. In vitro deamidation assays using model peptide substrates with varying lengths and sequences showed that NTAN1 prefers hydrophobic residues at the second-position. The structures of NTAN1-peptide complexes further revealed that the recognition of Nt-Asn is sufficiently organized to produce high specificity, and the side chain of the second-position residue is accommodated in a hydrophobic pocket adjacent to the active site of NTAN1. Collectively, our structural and biochemical analyses of the substrate specificity of NTAN1 contribute to understanding the structural basis of all three amidases in the eukaryotic N-degron pathway. MDPI 2020-01-20 /pmc/articles/PMC7022378/ /pubmed/31968674 http://dx.doi.org/10.3390/biom10010163 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
Park, Joon Sung
Lee, Jae-Young
Nguyen, Yen Thi Kim
Kang, Nae-Won
Oh, Eun Kyung
Jang, Dong Man
Kim, Hyun-Jung
Kim, Dae-Duk
Han, Byung Woo
Structural Analyses on the Deamidation of N-Terminal Asn in the Human N-Degron Pathway
title Structural Analyses on the Deamidation of N-Terminal Asn in the Human N-Degron Pathway
title_full Structural Analyses on the Deamidation of N-Terminal Asn in the Human N-Degron Pathway
title_fullStr Structural Analyses on the Deamidation of N-Terminal Asn in the Human N-Degron Pathway
title_full_unstemmed Structural Analyses on the Deamidation of N-Terminal Asn in the Human N-Degron Pathway
title_short Structural Analyses on the Deamidation of N-Terminal Asn in the Human N-Degron Pathway
title_sort structural analyses on the deamidation of n-terminal asn in the human n-degron pathway
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7022378/
https://www.ncbi.nlm.nih.gov/pubmed/31968674
http://dx.doi.org/10.3390/biom10010163
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