Cargando…

Unraveling the Role of the Tyrosine Tetrad from the Binding Site of the Epigenetic Writer MLL3 in the Catalytic Mechanism and Methylation Multiplicity

MLL3, also known as KMT2C, is a lysine mono-methyltransferase in charge of the writing of an epigenetic mark on lysine 4 from histone 3. The catalytic site of MLL3 is composed of four tyrosines, namely, Y44, Y69, Y128, and Y130. Tyrosine residues are highly conserved among lysine methyltransferases’...

Descripción completa

Detalles Bibliográficos
Autores principales: Blanco-Esperguez, Kevin, Tuñón, Iñaki, Kästner, Johannes, Mendizábal, Fernando, Miranda-Rojas, Sebastián
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9499395/
https://www.ncbi.nlm.nih.gov/pubmed/36142254
http://dx.doi.org/10.3390/ijms231810339
_version_ 1784794981712527360
author Blanco-Esperguez, Kevin
Tuñón, Iñaki
Kästner, Johannes
Mendizábal, Fernando
Miranda-Rojas, Sebastián
author_facet Blanco-Esperguez, Kevin
Tuñón, Iñaki
Kästner, Johannes
Mendizábal, Fernando
Miranda-Rojas, Sebastián
author_sort Blanco-Esperguez, Kevin
collection PubMed
description MLL3, also known as KMT2C, is a lysine mono-methyltransferase in charge of the writing of an epigenetic mark on lysine 4 from histone 3. The catalytic site of MLL3 is composed of four tyrosines, namely, Y44, Y69, Y128, and Y130. Tyrosine residues are highly conserved among lysine methyltransferases’ catalytic sites, although their complete function is still unclear. The exploration of how modifications on these residues from the enzymatic machinery impact the enzymatic activity of MLL3 could shed light transversally into the inner functioning of enzymes with similar characteristics. Through the use of QMMM calculations, we focus on the effect of the mutation of each tyrosine from the catalytic site on the enzymatic activity and the product specificity in the current study. While we found that the mutations of Y44 and Y128 by phenylalanine inactivated the enzyme, the mutation of Y128 by alanine reactivated the enzymatic activity of MLL3. Moreover, according to our models, the Y128A mutant was even found to be capable of di- and tri-methylate lysine 4 from histone 3, what would represent a gain of function mutation, and could be responsible for the development of diseases. Finally, we were able to establish the inactivation mechanism, which involved the use of Y130 as a water occlusion structure, whose conformation, once perturbed by its mutation or Y128 mutant, allows the access of water molecules that sequester the electron pair from lysine 4 avoiding its methylation process and, thus, increasing the barrier height.
format Online
Article
Text
id pubmed-9499395
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-94993952022-09-23 Unraveling the Role of the Tyrosine Tetrad from the Binding Site of the Epigenetic Writer MLL3 in the Catalytic Mechanism and Methylation Multiplicity Blanco-Esperguez, Kevin Tuñón, Iñaki Kästner, Johannes Mendizábal, Fernando Miranda-Rojas, Sebastián Int J Mol Sci Article MLL3, also known as KMT2C, is a lysine mono-methyltransferase in charge of the writing of an epigenetic mark on lysine 4 from histone 3. The catalytic site of MLL3 is composed of four tyrosines, namely, Y44, Y69, Y128, and Y130. Tyrosine residues are highly conserved among lysine methyltransferases’ catalytic sites, although their complete function is still unclear. The exploration of how modifications on these residues from the enzymatic machinery impact the enzymatic activity of MLL3 could shed light transversally into the inner functioning of enzymes with similar characteristics. Through the use of QMMM calculations, we focus on the effect of the mutation of each tyrosine from the catalytic site on the enzymatic activity and the product specificity in the current study. While we found that the mutations of Y44 and Y128 by phenylalanine inactivated the enzyme, the mutation of Y128 by alanine reactivated the enzymatic activity of MLL3. Moreover, according to our models, the Y128A mutant was even found to be capable of di- and tri-methylate lysine 4 from histone 3, what would represent a gain of function mutation, and could be responsible for the development of diseases. Finally, we were able to establish the inactivation mechanism, which involved the use of Y130 as a water occlusion structure, whose conformation, once perturbed by its mutation or Y128 mutant, allows the access of water molecules that sequester the electron pair from lysine 4 avoiding its methylation process and, thus, increasing the barrier height. MDPI 2022-09-07 /pmc/articles/PMC9499395/ /pubmed/36142254 http://dx.doi.org/10.3390/ijms231810339 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Blanco-Esperguez, Kevin
Tuñón, Iñaki
Kästner, Johannes
Mendizábal, Fernando
Miranda-Rojas, Sebastián
Unraveling the Role of the Tyrosine Tetrad from the Binding Site of the Epigenetic Writer MLL3 in the Catalytic Mechanism and Methylation Multiplicity
title Unraveling the Role of the Tyrosine Tetrad from the Binding Site of the Epigenetic Writer MLL3 in the Catalytic Mechanism and Methylation Multiplicity
title_full Unraveling the Role of the Tyrosine Tetrad from the Binding Site of the Epigenetic Writer MLL3 in the Catalytic Mechanism and Methylation Multiplicity
title_fullStr Unraveling the Role of the Tyrosine Tetrad from the Binding Site of the Epigenetic Writer MLL3 in the Catalytic Mechanism and Methylation Multiplicity
title_full_unstemmed Unraveling the Role of the Tyrosine Tetrad from the Binding Site of the Epigenetic Writer MLL3 in the Catalytic Mechanism and Methylation Multiplicity
title_short Unraveling the Role of the Tyrosine Tetrad from the Binding Site of the Epigenetic Writer MLL3 in the Catalytic Mechanism and Methylation Multiplicity
title_sort unraveling the role of the tyrosine tetrad from the binding site of the epigenetic writer mll3 in the catalytic mechanism and methylation multiplicity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9499395/
https://www.ncbi.nlm.nih.gov/pubmed/36142254
http://dx.doi.org/10.3390/ijms231810339
work_keys_str_mv AT blancoesperguezkevin unravelingtheroleofthetyrosinetetradfromthebindingsiteoftheepigeneticwritermll3inthecatalyticmechanismandmethylationmultiplicity
AT tunoninaki unravelingtheroleofthetyrosinetetradfromthebindingsiteoftheepigeneticwritermll3inthecatalyticmechanismandmethylationmultiplicity
AT kastnerjohannes unravelingtheroleofthetyrosinetetradfromthebindingsiteoftheepigeneticwritermll3inthecatalyticmechanismandmethylationmultiplicity
AT mendizabalfernando unravelingtheroleofthetyrosinetetradfromthebindingsiteoftheepigeneticwritermll3inthecatalyticmechanismandmethylationmultiplicity
AT mirandarojassebastian unravelingtheroleofthetyrosinetetradfromthebindingsiteoftheepigeneticwritermll3inthecatalyticmechanismandmethylationmultiplicity