RB1 in cancer: Different mechanisms of RB1 inactivation and alterations of pRb pathway in tumorigenesis
JOURNAL OF CELLULAR PHYSIOLOGY
Authors: Di Fiore, Riccardo; D'Anneo, Antonella; Tesoriere, Giovanni; Vento, Renza
Abstract
Loss of RB1 gene is considered either a causal or an accelerating event in retinoblastoma. A variety of mechanisms inactivates RB1 gene, including intragenic mutations, loss of expression by methylation and chromosomal deletions, with effects which are speciesand cell type-specific. RB1 deletion can even lead to aneuploidy thus greatly increasing cancer risk. The RB1gene is part of a larger gene family that includes RBL1 and RBL2, each of the three encoding structurally related proteins indicated as pRb, p107, and p130, respectively. The great interest in these genes and proteins springs from their ability to slow down neoplastic growth. pRb can associate with various proteins by which it can regulate a great number of cellular activities. In particular, its association with the E2F transcription factor family allows the control of the main pRb functions, while the loss of these interactions greatly enhances cancer development. As RB1 gene, also pRb can be functionally inactivated through disparate mechanisms which are often tissue specific and dependent on the scenario of the involved tumor suppressors and oncogenes. The critical role of the context is complicated by the different functions played by the RB proteins and the E2F family members. In this review, we want to emphasize the importance of the mechanisms of RB1/pRb inactivation in inducing cancer cell development. The review is divided in three chapters describing in succession the mechanisms of RB1 inactivation in cancer cells, the alterations of pRb pathway in tumorigenesis and the RB protein and E2F family in cancer. J. Cell. Physiol. 228: 16761687, 2013. (c) 2013 Wiley Periodicals, Inc.
Deregulation of hsa-miR-20b expression in TNF-alpha-induced premature senescence of human pulmonary microvascular endothelial cells
MICROVASCULAR RESEARCH
Authors: Wong, Pooi-Fong; Jamal, Juliana; Tong, Kind-Leng; Khor, Eng-Soon; Yeap, Chia-Earn; Jong, Hui-Lan; Lee, Sui-Ting; Mustafa, Mohd Rais; Abubakar, Sazaly
Abstract
miRNAs are important regulators of cellular senescence yet the extent of their involvement remains to be investigated. We sought to identify miRNAs that are involved in cytokine-induced premature senescence (CIPS) in endothelial cells. CIPS was established in young human pulmonary microvascular endothelial cells (HMVEC-Ls) following treatment with a sublethal dose (20 ng/ml) of tumor necrosis factor alpha (TNF-alpha) for 15 days. In parallel, HMVEC-Ls were grown and routinely passaged until the onset of replicative senescence (RS). Differential expression analysis following miRNA microarray profiling revealed an overlapped of eight deregulated miRNAs in both the miRNA profiles of RS and TNF-alpha-induced premature senescence cells. Amongst the deregulated miRNAs were members of the miR 17-92 cluster which are known regulators of angiogenesis. The role of hsa-miR-20b in TNF-alpha-induced premature senescence, a paralog member of the miR 17-92 cluster, was further investigated. Biotin-labeled hsa-miR-20b captured the enriched transcripts of retinoblastoma-like 1 (RBL1), indicating that RBL1 is a target of hsa-miR-20b. Knockdown of hsa-miR-20b attenuated premature senescence in the TNF-alpha-treated HMVEC-Ls as evidenced by increased cell proliferation, increased RBL1 mRNA expression level but decreased protein expression of p16(INK4a), a cellular senescence marker. These findings provide an early insight into the role of hsa-miR-20b in endothelial senescence. (C) 2017 Elsevier Inc. All rights reserved.