Ras-Mediated Deregulation of the Circadian Clock in Cancer
PLOS GENETICS
Authors: Relogio, Angela; Thomas, Philippe; Medina-Perez, Paula; Reischl, Silke; Bervoets, Sander; Gloc, Ewa; Riemer, Pamela; Mang-Fatehi, Shila; Maier, Bert; Schaefer, Reinhold; Leser, Ulf; Herzel, Hanspeter; Kramer, Achim; Sers, Christine
Abstract
Circadian rhythms are essential to the temporal regulation of molecular processes in living systems and as such to life itself. Deregulation of these rhythms leads to failures in biological processes and eventually to the manifestation of pathological phenotypes including cancer. To address the questions as to what are the elicitors of a disrupted clock in cancer, we applied a systems biology approach to correlate experimental, bioinformatics and modelling data from several cell line models for colorectal and skin cancer. We found strong and weak circadian oscillators within the same type of cancer and identified a set of genes, which allows the discrimination between the two oscillator-types. Among those genes are IFNGR2, PITX2, RFWD2, PPAR gamma, LOXL2, Rab6 and SPARC, all involved in cancer-related pathways. Using a bioinformatics approach, we extended the core-clock network and present its interconnection to the discriminative set of genes. Interestingly, such gene signatures link the clock to oncogenic pathways like the RAS/MAPK pathway. To investigate the potential impact of the RAS/MAPK pathway - a major driver of colorectal carcinogenesis - on the circadian clock, we used a computational model which predicted that perturbation of BMAL1-mediated transcription can generate the circadian phenotypes similar to those observed in metastatic cell lines. Using an inducible RAS expression system, we show that overexpression of RAS disrupts the circadian clock and leads to an increase of the circadian period while RAS inhibition causes a shortening of period length, as predicted by our mathematical simulations. Together, our data demonstrate that perturbations induced by a single oncogene are sufficient to deregulate the mammalian circadian clock.
Autism genome-wide copy number variation reveals ubiquitin and neuronal genes
NATURE
Authors: Glessner, Joseph T.; Wang, Kai; Cai, Guiqing; Korvatska, Olena; Kim, Cecilia E.; Wood, Shawn; Zhang, Haitao; Estes, Annette; Brune, Camille W.; Bradfield, Jonathan P.; Imielinski, Marcin; Frackelton, Edward C.; Reichert, Jennifer; Crawford, Emily L.; Munson, Jeffrey; Sleiman, Patrick M. A.; Chiavacci, Rosetta; Annaiah, Kiran; Thomas, Kelly; Hou, Cuiping; Glaberson, Wendy; Flory, James; Otieno, Frederick; Garris, Maria; Soorya, Latha; Klei, Lambertus; Piven, Joseph; Meyer, Kacie J.; Anagnostou, Evdokia; Sakurai, Takeshi; Game, Rachel M.; Rudd, Danielle S.; Zurawiecki, Danielle; McDougle, Christopher J.; Davis, Lea K.; Miller, Judith; Posey, David J.; Michaels, Shana; Kolevzon, Alexander; Silverman, Jeremy M.; Bernier, Raphael; Levy, Susan E.; Schultz, Robert T.; Dawson, Geraldine; Owley, Thomas; McMahon, William M.; Wassink, Thomas H.; Sweeney, John A.; Nurnberger, John I., Jr.; Coon, Hilary; Sutcliffe, James S.; Minshew, Nancy J.; Grant, Struan F. A.; Bucan, Maja; Cook, Edwin H., Jr.; Buxbaum, Joseph D.; Devlin, Bernie; Schellenberg, Gerard D.; Hakonarson, Hakon
Abstract
Autism spectrum disorders (ASDs) are childhood neurodevelopmental disorders with complex genetic origins(1-4). Previous studies focusing on candidate genes or genomic regions have identified several copy number variations (CNVs) that are associated with an increased risk of ASDs(5-9). Here we present the results from a whole-genome CNV study on a cohort of 859 ASD cases and 1,409 healthy children of European ancestry who were genotyped with similar to 550,000 single nucleotide polymorphism markers, in an attempt to comprehensively identify CNVs conferring susceptibility to ASDs. Positive findings were evaluated in an independent cohort of 1,336 ASD cases and 1,110 controls of European ancestry. Besides previously reported ASD candidate genes, such as NRXN1 (ref. 10) and CNTN4 (refs 11, 12), several new susceptibility genes encoding neuronal cell-adhesion molecules, including NLGN1 and ASTN2, were enriched with CNVs in ASD cases compared to controls (P = 9.5 x 10(-3)). Furthermore, CNVs within or surrounding genes involved in the ubiquitin pathways, including UBE3A, PARK2, RFWD2 and FBXO40, were affected by CNVs not observed in controls (P = 3.3 x 10(-3)). We also identified duplications 55 kilobases upstream of complementary DNA AK123120 (P = 3.6 x 10(-6)). Although these variants may be individually rare, they target genes involved in neuronal cell-adhesion or ubiquitin degradation, indicating that these two important gene networks expressed within the central nervous system may contribute to the genetic susceptibility of ASD.