New IBD genetics: common pathways with other diseases
GUT
Authors: Lees, C. W.; Barrett, J. C.; Parkes, M.; Satsangi, J.
Abstract
Complex disease genetics has been revolutionised in recent years by the advent of genome-wide association (GWA) studies. The chronic inflammatory bowel diseases (IBDs), Crohn's disease and ulcerative colitis have seen notable successes culminating in the discovery of 99 published susceptibility loci/genes (71 Crohn's disease; 47 ulcerative colitis) to date. Approximately one-third of loci described confer susceptibility to both Crohn's disease and ulcerative colitis. Amongst these are multiple genes involved in IL23/Th17 signalling (IL23R, IL12B, JAK2, TYK2 and STAT3), IL10, IL1R2, REL, CARD9, NKX2.3, ICOSLG, PRDM1, SMAD3 and ORMDL3. The evolving genetic architecture of IBD has furthered our understanding of disease pathogenesis. For Crohn's disease, defective processing of intracellular bacteria has become a central theme, following gene discoveries in autophagy and innate immunity (associations with NOD2, IRGM, ATG16L1 are specific to Crohn's disease). Genetic evidence has also demonstrated the importance of barrier function to the development of ulcerative colitis (HNF4A, LAMB1, CDH1 and GNA12). However, when the data are analysed in more detail, deeper themes emerge including the shared susceptibility seen with other diseases. Many immune-mediated diseases overlap in this respect, paralleling the reported epidemiological evidence. However, in several cases the reported shared susceptibility appears at odds with the clinical picture. Examples include both type 1 and type 2 diabetes mellitus. In this review we will detail the presently available data on the genetic overlap between IBD and other diseases. The discussion will be informed by the epidemiological data in the published literature and the implications for pathogenesis and therapy will be outlined. This arena will move forwards very quickly in the next few years. Ultimately, we anticipate that these genetic insights will transform the landscape of common complex diseases such as IBD.
G alpha(12) ablation exacerbates liver steatosis and obesity by suppressing USP22/SIRT1-regulated mitochondrial respiration
JOURNAL OF CLINICAL INVESTIGATION
Authors: Kim, Tae Hyun; Yang, Yoon Mee; Han, Chang Yeob; Koo, Ja Hyun; Oh, Hyunhee; Kim, Su Sung; You, Byoung Hoon; Choi, Young Hee; Park, Tae-Sik; Lee, Chang Ho; Kurose, Hitoshi; Noureddin, Mazen; Seki, Ekihiro; Wan, Yu-Jui Yvonne; Choi, Cheol Soo; Kim, Sang Geon
Abstract
Nonalcoholic fatty liver disease (NAFLD) arises from mitochondrial dysfunction under sustained imbalance between energy intake and expenditure, but the underlying mechanisms controlling mitochondrial respiration have not been entirely understood. Heterotrimeric G proteins converge with activated GPCRs to modulate cell-signaling pathways to maintain metabolic homeostasis. Here, we investigated the regulatory role of G protein alpha(12) (G alpha(12)) on hepatic lipid metabolism and whole-body energy expenditure in mice. Fasting increased G alpha(12) levels in mouse liver. G alpha(12) ablation markedly augmented fasting-induced hepatic fat accumulation. cDNA microarray analysis from Gna12-KO liver revealed that the G alpha(12)-signaling pathway regulated sirtuin 1 (SIRT1) and PPAR alpha, which are responsible for mitochondrial respiration. Defective induction of SIRT1 upon fasting was observed in the liver of Gna12-KO mice, which was reversed by lentivirus-mediated G alpha(12) overexpression in hepatocytes. Mechanistically, G alpha(12) stabilized SIRT1 protein through transcriptional induction of ubiquitinspecific peptidase 22 (USP22) via HIF-1 alpha increase. G alpha(12) levels were markedly diminished in liver biopsies from NAFLD patients. Consistently, Gna12-KO mice fed a high-fat diet displayed greater susceptibility to diet-induced liver steatosis and obesity due to decrease in energy expenditure. Our results demonstrate that G alpha(12) regulates SIRT1-dependent mitochondrial respiration through HIF-1 alpha-dependent USP22 induction, identifying G alpha(12) as an upstream molecule that contributes to the regulation of mitochondrial energy expenditure.