Cargando…

Matrix Metalloproteinase Genes (MMP1, MMP10, MMP12) on Chromosome 11q22 and the Risk of Non-Contact Anterior Cruciate Ligament Ruptures

Background: Sequence variants within the matrix metalloproteinases genes remain plausible biological candidates for further investigation of anterior cruciate ligament (ACL) rupture risk. The aim of the present study was to establish whether variants within the MMP1 (rs1799750, ->G), MMP10 (rs486...

Descripción completa

Detalles Bibliográficos
Autores principales: Lulińska, Ewelina, Gibbon, Andrea, Kaczmarczyk, Mariusz, Maciejewska-Skrendo, Agnieszka, Ficek, Krzysztof, Leońska-Duniec, Agata, Wilk, Michał, Leźnicka, Katarzyna, Michałowska-Sawczyn, Monika, Humińska-Lisowska, Kinga, Buryta, Rafał, Cięszczyk, Paweł, Maculewicz, Ewelina, Czarny, Wojciech, September, Alison V., Sawczuk, Marek
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7397146/
https://www.ncbi.nlm.nih.gov/pubmed/32650441
http://dx.doi.org/10.3390/genes11070766
_version_ 1783565713534877696
author Lulińska, Ewelina
Gibbon, Andrea
Kaczmarczyk, Mariusz
Maciejewska-Skrendo, Agnieszka
Ficek, Krzysztof
Leońska-Duniec, Agata
Wilk, Michał
Leźnicka, Katarzyna
Michałowska-Sawczyn, Monika
Humińska-Lisowska, Kinga
Buryta, Rafał
Cięszczyk, Paweł
Maculewicz, Ewelina
Czarny, Wojciech
September, Alison V.
Sawczuk, Marek
author_facet Lulińska, Ewelina
Gibbon, Andrea
Kaczmarczyk, Mariusz
Maciejewska-Skrendo, Agnieszka
Ficek, Krzysztof
Leońska-Duniec, Agata
Wilk, Michał
Leźnicka, Katarzyna
Michałowska-Sawczyn, Monika
Humińska-Lisowska, Kinga
Buryta, Rafał
Cięszczyk, Paweł
Maculewicz, Ewelina
Czarny, Wojciech
September, Alison V.
Sawczuk, Marek
author_sort Lulińska, Ewelina
collection PubMed
description Background: Sequence variants within the matrix metalloproteinases genes remain plausible biological candidates for further investigation of anterior cruciate ligament (ACL) rupture risk. The aim of the present study was to establish whether variants within the MMP1 (rs1799750, ->G), MMP10 (rs486055, C > T) and MMP12 (rs2276109, T > C) genes were associated with non-contact ACL rupture in a Polish cohort. Methods: The unrelated, self-reported Polish Caucasian participants consisted of 228 (157 male) individuals with primary non-contact ACL rupture and 202 (117 male) participants without any history of ACL rupture. All samples were genotyped in duplicate using the Applied Biosystems TaqMan(®) methodology. The statistical analyses were involved in determining the distribution of genotype and allele frequencies for the investigated polymorphisms between the diagnostic groups. Furthermore, pseudo-haplotypes were constructed to assess possible gene–gene interactions. Results: All genotype frequencies in the ACL rupture and control groups conformed to Hardy Weinberg Equilibrium expectations. None of the polymorphisms were associated with risk of non-contact ACL rupture under the codominant, dominant, recessive and over-dominant genetic models. Likewise, no genotype–genotype combinations inferred as “haplotypes” as a proxy of gene–gene interactions were associated with the risk of non-contact ACL ruptures. Conclusions: Despite the fact that the current study did not support existing evidence suggesting that variants within the MMP1, MMP10, and MMP12 genes influence non-contact ACL rupture risk, future work should include high-throughput sequencing technologies to identify potential targeted polymorphisms to fully characterize the 11q22 region with susceptibility to non-contact ACL rupture susceptibility in a Polish cohort.
format Online
Article
Text
id pubmed-7397146
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-73971462020-08-05 Matrix Metalloproteinase Genes (MMP1, MMP10, MMP12) on Chromosome 11q22 and the Risk of Non-Contact Anterior Cruciate Ligament Ruptures Lulińska, Ewelina Gibbon, Andrea Kaczmarczyk, Mariusz Maciejewska-Skrendo, Agnieszka Ficek, Krzysztof Leońska-Duniec, Agata Wilk, Michał Leźnicka, Katarzyna Michałowska-Sawczyn, Monika Humińska-Lisowska, Kinga Buryta, Rafał Cięszczyk, Paweł Maculewicz, Ewelina Czarny, Wojciech September, Alison V. Sawczuk, Marek Genes (Basel) Article Background: Sequence variants within the matrix metalloproteinases genes remain plausible biological candidates for further investigation of anterior cruciate ligament (ACL) rupture risk. The aim of the present study was to establish whether variants within the MMP1 (rs1799750, ->G), MMP10 (rs486055, C > T) and MMP12 (rs2276109, T > C) genes were associated with non-contact ACL rupture in a Polish cohort. Methods: The unrelated, self-reported Polish Caucasian participants consisted of 228 (157 male) individuals with primary non-contact ACL rupture and 202 (117 male) participants without any history of ACL rupture. All samples were genotyped in duplicate using the Applied Biosystems TaqMan(®) methodology. The statistical analyses were involved in determining the distribution of genotype and allele frequencies for the investigated polymorphisms between the diagnostic groups. Furthermore, pseudo-haplotypes were constructed to assess possible gene–gene interactions. Results: All genotype frequencies in the ACL rupture and control groups conformed to Hardy Weinberg Equilibrium expectations. None of the polymorphisms were associated with risk of non-contact ACL rupture under the codominant, dominant, recessive and over-dominant genetic models. Likewise, no genotype–genotype combinations inferred as “haplotypes” as a proxy of gene–gene interactions were associated with the risk of non-contact ACL ruptures. Conclusions: Despite the fact that the current study did not support existing evidence suggesting that variants within the MMP1, MMP10, and MMP12 genes influence non-contact ACL rupture risk, future work should include high-throughput sequencing technologies to identify potential targeted polymorphisms to fully characterize the 11q22 region with susceptibility to non-contact ACL rupture susceptibility in a Polish cohort. MDPI 2020-07-08 /pmc/articles/PMC7397146/ /pubmed/32650441 http://dx.doi.org/10.3390/genes11070766 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
Lulińska, Ewelina
Gibbon, Andrea
Kaczmarczyk, Mariusz
Maciejewska-Skrendo, Agnieszka
Ficek, Krzysztof
Leońska-Duniec, Agata
Wilk, Michał
Leźnicka, Katarzyna
Michałowska-Sawczyn, Monika
Humińska-Lisowska, Kinga
Buryta, Rafał
Cięszczyk, Paweł
Maculewicz, Ewelina
Czarny, Wojciech
September, Alison V.
Sawczuk, Marek
Matrix Metalloproteinase Genes (MMP1, MMP10, MMP12) on Chromosome 11q22 and the Risk of Non-Contact Anterior Cruciate Ligament Ruptures
title Matrix Metalloproteinase Genes (MMP1, MMP10, MMP12) on Chromosome 11q22 and the Risk of Non-Contact Anterior Cruciate Ligament Ruptures
title_full Matrix Metalloproteinase Genes (MMP1, MMP10, MMP12) on Chromosome 11q22 and the Risk of Non-Contact Anterior Cruciate Ligament Ruptures
title_fullStr Matrix Metalloproteinase Genes (MMP1, MMP10, MMP12) on Chromosome 11q22 and the Risk of Non-Contact Anterior Cruciate Ligament Ruptures
title_full_unstemmed Matrix Metalloproteinase Genes (MMP1, MMP10, MMP12) on Chromosome 11q22 and the Risk of Non-Contact Anterior Cruciate Ligament Ruptures
title_short Matrix Metalloproteinase Genes (MMP1, MMP10, MMP12) on Chromosome 11q22 and the Risk of Non-Contact Anterior Cruciate Ligament Ruptures
title_sort matrix metalloproteinase genes (mmp1, mmp10, mmp12) on chromosome 11q22 and the risk of non-contact anterior cruciate ligament ruptures
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7397146/
https://www.ncbi.nlm.nih.gov/pubmed/32650441
http://dx.doi.org/10.3390/genes11070766
work_keys_str_mv AT lulinskaewelina matrixmetalloproteinasegenesmmp1mmp10mmp12onchromosome11q22andtheriskofnoncontactanteriorcruciateligamentruptures
AT gibbonandrea matrixmetalloproteinasegenesmmp1mmp10mmp12onchromosome11q22andtheriskofnoncontactanteriorcruciateligamentruptures
AT kaczmarczykmariusz matrixmetalloproteinasegenesmmp1mmp10mmp12onchromosome11q22andtheriskofnoncontactanteriorcruciateligamentruptures
AT maciejewskaskrendoagnieszka matrixmetalloproteinasegenesmmp1mmp10mmp12onchromosome11q22andtheriskofnoncontactanteriorcruciateligamentruptures
AT ficekkrzysztof matrixmetalloproteinasegenesmmp1mmp10mmp12onchromosome11q22andtheriskofnoncontactanteriorcruciateligamentruptures
AT leonskaduniecagata matrixmetalloproteinasegenesmmp1mmp10mmp12onchromosome11q22andtheriskofnoncontactanteriorcruciateligamentruptures
AT wilkmichał matrixmetalloproteinasegenesmmp1mmp10mmp12onchromosome11q22andtheriskofnoncontactanteriorcruciateligamentruptures
AT leznickakatarzyna matrixmetalloproteinasegenesmmp1mmp10mmp12onchromosome11q22andtheriskofnoncontactanteriorcruciateligamentruptures
AT michałowskasawczynmonika matrixmetalloproteinasegenesmmp1mmp10mmp12onchromosome11q22andtheriskofnoncontactanteriorcruciateligamentruptures
AT huminskalisowskakinga matrixmetalloproteinasegenesmmp1mmp10mmp12onchromosome11q22andtheriskofnoncontactanteriorcruciateligamentruptures
AT burytarafał matrixmetalloproteinasegenesmmp1mmp10mmp12onchromosome11q22andtheriskofnoncontactanteriorcruciateligamentruptures
AT cieszczykpaweł matrixmetalloproteinasegenesmmp1mmp10mmp12onchromosome11q22andtheriskofnoncontactanteriorcruciateligamentruptures
AT maculewiczewelina matrixmetalloproteinasegenesmmp1mmp10mmp12onchromosome11q22andtheriskofnoncontactanteriorcruciateligamentruptures
AT czarnywojciech matrixmetalloproteinasegenesmmp1mmp10mmp12onchromosome11q22andtheriskofnoncontactanteriorcruciateligamentruptures
AT septemberalisonv matrixmetalloproteinasegenesmmp1mmp10mmp12onchromosome11q22andtheriskofnoncontactanteriorcruciateligamentruptures
AT sawczukmarek matrixmetalloproteinasegenesmmp1mmp10mmp12onchromosome11q22andtheriskofnoncontactanteriorcruciateligamentruptures