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The effects of lidocaine and procaine on microRNA expression of adipocyte-derived adult stem cells

BACKGROUND: The microRNA (miRNA) pathway has emerged as one of the biologic pathways implicated in stem cell regulation. miRNA is a noncoding, single-stranded RNA consisting of 20-25 nucleotides that inhibits the protein production at the step of translation. The molecular effects of lidocaine and p...

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Autores principales: Sung, Sang Hoon, Lee, Jeong Gil, Yu, Soo Bong, Chang, Hee Kyung, Ryu, Sie Jeong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Korean Society of Anesthesiologists 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3384794/
https://www.ncbi.nlm.nih.gov/pubmed/22778892
http://dx.doi.org/10.4097/kjae.2012.62.6.552
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author Sung, Sang Hoon
Lee, Jeong Gil
Yu, Soo Bong
Chang, Hee Kyung
Ryu, Sie Jeong
author_facet Sung, Sang Hoon
Lee, Jeong Gil
Yu, Soo Bong
Chang, Hee Kyung
Ryu, Sie Jeong
author_sort Sung, Sang Hoon
collection PubMed
description BACKGROUND: The microRNA (miRNA) pathway has emerged as one of the biologic pathways implicated in stem cell regulation. miRNA is a noncoding, single-stranded RNA consisting of 20-25 nucleotides that inhibits the protein production at the step of translation. The molecular effects of lidocaine and procaine on adipose stem cells were investigated by examining RNA expression array. METHODS: Adipose stem cells were isolated from a prior abdominal liposuction procedure. The human adipose stem cells were cultured and then added to a mixture of 1 ml of culture medium plus 1 ml of 2% lidocaine or 2% procaine for the duration of 30 minutes. The expression levels of miRNAs were estimated by using peptide nucleic acid (PNA)-miRNA array analysis throughout the denaturation and hybridization processes after the isolation of miRNA. The miRNAs detected by microarray that either decreased by half fold or increased by 1.5 fold from the control level were interpreted as significant. RESULTS: According to microarray analysis there were 61 miRNAs in total, and no miRNA had decreased expression levels. The stem cells treatment with lidocaine showed 4 alteration of expression with miR-9a(*) (1.53 fold), miR-29a (1.64 fold), miR-296-5p (1.64 fold) and miR-373 (1.94 fold). The stem cells treated with procaine showed 32 miRNAs that were significantly up-regulated with a range of 1.5 to 2.06 fold. They were stem cell differentiation-related miRNAs, apoptosis and cell cycle-associated miRNAs, immunity-associated miRNAs and hormonal response-related miRNAs. CONCLUSIONS: Lidocaine and procaine affect the miRNA expression on adipose stem cells and the effect of procaine is more marked than that of lidocaine.
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spelling pubmed-33847942012-07-09 The effects of lidocaine and procaine on microRNA expression of adipocyte-derived adult stem cells Sung, Sang Hoon Lee, Jeong Gil Yu, Soo Bong Chang, Hee Kyung Ryu, Sie Jeong Korean J Anesthesiol Experimental Research Article BACKGROUND: The microRNA (miRNA) pathway has emerged as one of the biologic pathways implicated in stem cell regulation. miRNA is a noncoding, single-stranded RNA consisting of 20-25 nucleotides that inhibits the protein production at the step of translation. The molecular effects of lidocaine and procaine on adipose stem cells were investigated by examining RNA expression array. METHODS: Adipose stem cells were isolated from a prior abdominal liposuction procedure. The human adipose stem cells were cultured and then added to a mixture of 1 ml of culture medium plus 1 ml of 2% lidocaine or 2% procaine for the duration of 30 minutes. The expression levels of miRNAs were estimated by using peptide nucleic acid (PNA)-miRNA array analysis throughout the denaturation and hybridization processes after the isolation of miRNA. The miRNAs detected by microarray that either decreased by half fold or increased by 1.5 fold from the control level were interpreted as significant. RESULTS: According to microarray analysis there were 61 miRNAs in total, and no miRNA had decreased expression levels. The stem cells treatment with lidocaine showed 4 alteration of expression with miR-9a(*) (1.53 fold), miR-29a (1.64 fold), miR-296-5p (1.64 fold) and miR-373 (1.94 fold). The stem cells treated with procaine showed 32 miRNAs that were significantly up-regulated with a range of 1.5 to 2.06 fold. They were stem cell differentiation-related miRNAs, apoptosis and cell cycle-associated miRNAs, immunity-associated miRNAs and hormonal response-related miRNAs. CONCLUSIONS: Lidocaine and procaine affect the miRNA expression on adipose stem cells and the effect of procaine is more marked than that of lidocaine. The Korean Society of Anesthesiologists 2012-06 2012-06-19 /pmc/articles/PMC3384794/ /pubmed/22778892 http://dx.doi.org/10.4097/kjae.2012.62.6.552 Text en Copyright © the Korean Society of Anesthesiologists, 2012 http://creativecommons.org/licenses/by-nc/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/), which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Experimental Research Article
Sung, Sang Hoon
Lee, Jeong Gil
Yu, Soo Bong
Chang, Hee Kyung
Ryu, Sie Jeong
The effects of lidocaine and procaine on microRNA expression of adipocyte-derived adult stem cells
title The effects of lidocaine and procaine on microRNA expression of adipocyte-derived adult stem cells
title_full The effects of lidocaine and procaine on microRNA expression of adipocyte-derived adult stem cells
title_fullStr The effects of lidocaine and procaine on microRNA expression of adipocyte-derived adult stem cells
title_full_unstemmed The effects of lidocaine and procaine on microRNA expression of adipocyte-derived adult stem cells
title_short The effects of lidocaine and procaine on microRNA expression of adipocyte-derived adult stem cells
title_sort effects of lidocaine and procaine on microrna expression of adipocyte-derived adult stem cells
topic Experimental Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3384794/
https://www.ncbi.nlm.nih.gov/pubmed/22778892
http://dx.doi.org/10.4097/kjae.2012.62.6.552
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