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dc.contributor.author Grolmusz Vince Kornél
dc.contributor.author Tóth Eszter Angéla
dc.contributor.author Baghy Kornélia
dc.contributor.author Liko István
dc.contributor.author Darvasi Ottó
dc.contributor.author Kovalszky Ilona
dc.contributor.author Matkó János
dc.contributor.author Rácz Károly
dc.contributor.author Patócs Attila
dc.date.accessioned 2016-05-31T09:42:33Z
dc.date.available 2016-05-31T09:42:33Z
dc.date.issued 2016
dc.identifier.citation pagination= Paper 412, 16 pages; journalVolume=17; journalIssueNumber=1; journalTitle=BMC GENOMICS;
dc.identifier.uri http://repo.lib.semmelweis.hu//handle/123456789/3418
dc.identifier.uri doi:10.1186/s12864-016-2747-6
dc.description.abstract BACKGROUND: Previously, drug-based synchronization procedures were used for characterizing the cell cycle dependent transcriptional program. However, these synchronization methods result in growth imbalance and alteration of the cell cycle machinery. DNA content-based fluorescence activated cell sorting (FACS) is able to sort the different cell cycle phases without perturbing the cell cycle. MiRNAs are key transcriptional regulators of the cell cycle, however, their expression dynamics during cell cycle has not been explored. METHODS: Following an optimized FACS, a complex initiative of high throughput platforms (microarray, Taqman Low Density Array, small RNA sequencing) were performed to study gene and miRNA expression profiles of cell cycle sorted human cells originating from different tissues. Validation of high throughput data was performed using quantitative real time PCR. Protein expression was detected by Western blot. Complex statistics and pathway analysis were also applied. RESULTS: Beyond confirming the previously described cell cycle transcriptional program, cell cycle dependently expressed genes showed a higher expression independently from the cell cycle phase and a lower amplitude of dynamic changes in cancer cells as compared to untransformed fibroblasts. Contrary to mRNA changes, miRNA expression was stable throughout the cell cycle. CONCLUSIONS: Cell cycle sorting is a synchronization-free method for the proper analysis of cell cycle dynamics. Altered dynamic expression of universal cell cycle genes in cancer cells reflects the transformed cell cycle machinery. Stable miRNA expression during cell cycle progression may suggest that dynamical miRNA-dependent regulation may be of less importance in short term regulations during the cell cycle.
dc.relation.ispartof urn:issn:1471-2164
dc.title Fluorescence activated cell sorting followed by small RNA sequencing reveals stable microRNA expression during cell cycle progression.
dc.type Journal Article
dc.date.updated 2016-05-31T09:40:56Z
dc.language.rfc3066 en
dc.identifier.mtmt 3072016
dc.identifier.pubmed 27234232
dc.contributor.department SE/AOK/K/II. Sz. Belgyógyászati Klinika
dc.contributor.department SE/AOK/K/IISZBK/MTA-SE Lendület Örökletes Endokrin Daganatok Kutatócsoport
dc.contributor.department SE/AOK/K/IISZBK/MTA-SE Molekuláris Medicina Kutatócsoport (2006-ig: MTA-SE Gastroenterológiai és Endocrinológiai Kutatócsoport)
dc.contributor.department SE/AOK/I/Laboratóriumi Medicina Intézet
dc.contributor.department SE/AOK/I/I. Sz. Patológiai és Kísérleti Rákkutató Intézet
dc.contributor.institution Semmelweis Egyetem
dc.mtmt.swordnote PMC PMC4884355


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