| Literature DB >> 22905260 |
Shiri Weinstein1, Rafi Emmanuel, Ashley M Jacobi, Avigdor Abraham, Mark A Behlke, Andrew G Sprague, Tatiana I Novobrantseva, Arnon Nagler, Dan Peer.
Abstract
Mantle cell lymphoma is characterized by a genetic translocation results in aberrant overexpression of the CCND1 gene, which encodes cyclin D1. This protein functions as a regulator of the cell cycle progression, hence is considered to play an important role in the pathogenesis of the disease. In this study, we used RNA interference strategies to examine whether cyclin D1 might serve as a therapeutic target for mantle cell lymphoma. Knocking down cyclin D1 resulted in significant growth retardation, cell cycle arrest, and most importantly, induction of apoptosis. These results mark cyclin D1 as a target for mantle cell lymphoma and emphasize the therapeutic potential hidden in its silencing.Entities:
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Year: 2012 PMID: 22905260 PMCID: PMC3419170 DOI: 10.1371/journal.pone.0043343
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Figure 1CCND1/cycD1 down regulation.
(A) RT-qPCR analysis of CCND1 mRNA levels 48 h post electroporation in Granta-519 and Jeko-1 cells. Expression was normalized to both house keeping genes eIF3a and eIF3c and depicted as mRNA concentration relative to siLuc electroporated cells. Data are demonstrated as the mean ± SEM of three independent experiments. Significance strength was evaluated using one tailed ANOVA. * indicates p value <0.001. (B) Representative Western Blot analysis of cycD1 expression 48 h post electroporation. α-Tubulin was used as a loading control. § indicates cycD1b isoform.
Figure 2Effects of cycD1 down regulation on cell growth, cell cycle and apoptosis.
(A) Proliferation rates of the untreated (mock), siLuc, siD1 and dsD1 electroporated Granta-519 and Jeko-1 cells as determined by the XTT cell proliferation assay, 7d post 1st electroporation (5d post the 2nd one). The results are demonstrated as percentage of cell growth in comparison to the siLuc electroporated cells. (B–C) Cell cycle distribution of mock, siLuc, siD1 and dsD1 electroporated Granta-519 (B) and Jeko-1 (C) cells, 72 h post 1st electroporation (48 h post the 2nd one). (i) Representative cell cycle histograms analysis, applied with the Dean-Jett-Fox model, using FlowJo™ software. (ii) Cell cycle distribution, demonstrated as percentage of cells in each phase. (D–E) apoptosis of mock, siLuc, siD1 and dsD1 electroporated Granta-519 (D) and Jeko-1 (E) cells, 8d post the 1st electroporation (6d post the 2nd one). (i) Representative dot-blot analysis using FlowJo™ software. Early apoptosis is demonstrated on cells labeled with Annexin V, while late apoptosis is demonstrated by Annexin V and PI labeled cells. (ii) Percentage of total apoptotic cells (divided into early and late fractions). All data are represented as the mean ± SEM of three independent experiments. Significance was evaluated using one tailed ANOVA. * indicates p value <0.001.