A genome-wide screening and SNPs-to-genes approach to identify novel genetic risk factors associated with frontotemporal dementia
NEUROBIOLOGY OF AGING
Authors: Ferrari, Raffaele; Grassi, Mario; Salvi, Erika; Borroni, Barbara; Palluzzi, Fernando; Pepe, Daniele; D'Avila, Francesca; Padovani, Alessandro; Archetti, Silvana; Rainero, Innocenzo; Rubino, Elisa; Pinessi, Lorenzo; Benussi, Luisa; Binetti, Giuliano; Ghidoni, Roberta; Galimberti, Daniela; Scarpini, Elio; Serpente, Maria; Rossi, Giacomina; Giaccone, Giorgio; Tagliavini, Fabrizio; Nacmias, Benedetta; Piaceri, Irene; Bagnoli, Silvia; Bruni, Amalia C.; Maletta, Raffaele G.; Bernardi, Livia; Postiglione, Alfredo; Milan, Graziella; Franceschi, Massimo; Puca, Annibale A.; Novelli, Valeria; Barlassina, Cristina; Glorioso, Nicola; Manunta, Paolo; Singleton, Andrew; Cusi, Daniele; Hardy, John; Momeni, Parastoo
Abstract
Frontotemporal dementia (FTD) is the second most prevalent form of early onset dementia after Alzheimer's disease (AD). We performed a case-control association study in an Italian FTD cohort (n = 530) followed by the novel single nucleotide polymorphisms (SNPs)-to-genes approach and functional annotation analysis. We identified 2 novel potential loci for FTD. Suggestive SNPs reached p-values similar to 10(-7) and odds ratio >2.5 (2p16.3) and 1.5 (17q25.3). Suggestive alleles at 17q25.3 identified a disease-associated haplotype causing decreased expression of ecis genes such as RFNG and AATK involved in neuronal genesis and differentiation and axon outgrowth, respectively. We replicated this locus through the SNPs-to-genes approach. Our functional annotation analysis indicated significant enrichment for functions of the brain (neuronal genesis, differentiation, and maturation), the synapse (neurotransmission and synapse plasticity), and elements of the immune system, the latter supporting our recent international FTD-genome-wide association study. This is the largest genome-wide study in Italian FTD to date. Although our results are not conclusive, we set the basis for future replication studies and identification of susceptible molecular mechanisms involved in FTD pathogenesis. (C) 2015 The Authors. Published by Elsevier Inc.
Epigenetic silencing ofAATKin acinar to ductal metaplasia in murine model of pancreatic cancer
CLINICAL EPIGENETICS
Authors: Ding, Li-Yun; Hou, Ya-Chin; Kuo, I-Ying; Hsu, Ting-Yi; Tsai, Tsung-Ching; Chang, Hsiu-Wei; Hsu, Wei-Yu; Tsao, Chih-Chieh; Tian, Chung-Chen; Wang, Po-Shun; Wang, Hao-Chen; Lee, Chung-Ta; Wang, Yi-Ching; Lin, Sheng-Hsiang; Hughes, Michael W.; Chuang, Woei-Jer; Lu, Pei-Jung; Shan, Yan-Shen; Huang, Po-Hsien
Abstract
Background Cancer subtype switching, which involves unclear cancer cell origin, cell fate decision, and transdifferentiation of cells within a confined tumor microenvironment, remains a major problem in pancreatic cancer (PDA). Results By analyzing PDA subtypes in The Cancer Genome Atlas, we identified that epigenetic silencing of apoptosis-associated tyrosine kinase (AATK) inversely was correlated with mRNA expression and was enriched in the quasi-mesenchymal cancer subtype. By comparing early mouse pancreatic lesions, the non-invasive regions showed AATK co-expression in cells with acinar-to-ductal metaplasia, nuclear VAV1 localization, and cell cycle suppression; but the invasive lesions conversely revealed diminished AATK expression in those with poorly differentiated histology, cytosolic VAV1 localization, and co-expression of p63 and HNF1 alpha. Transiently activated AATK initiates acinar differentiation into a ductal cell fate to establish apical-basal polarization in acinar-to-ductal metaplasia. Silenced AATK and ectopically expressed p63 and HNF1 alpha allow the proliferation of ductal PanINs in mice. Conclusion Epigenetic silencing ofAATKregulates the cellular transdifferentiation, proliferation, and cell cycle progression in converting PDA-subtypes.