Identification and characterization of a FOXA2-regulated transcriptional enhancer at a type 2 diabetes intronic locus that controls GCKR expression in liver cells

被引:28
作者
Rodriguez, Maykel Lopez [1 ]
Kaminska, Dorota [2 ,3 ]
Lappalainen, Kati [4 ]
Pihlajamaki, Jussi [2 ,5 ]
Kaikkonen, Minna U. [4 ]
Laakso, Markku [1 ,6 ]
机构
[1] Univ Eastern Finland, Inst Clin Med, Internal Med, Yliopistonranta 1 C, Kuopio 70211, Finland
[2] Univ Eastern Finland, Inst Publ Hlth & Clin Nutr, Kuopio Campus,POB 1627, FI-70211 Kuopio, Finland
[3] Univ Calif Los Angeles, David Geffen Sch Med, Dept Human Genet, Los Angeles, CA 90095 USA
[4] Univ Eastern Finland, Dept Biotechnol & Mol Med, AI Virtanen Inst Mol Sci, POB 1627, Kuopio 70211, Finland
[5] Kuopio Univ Hosp, Clin Nutr & Obes Ctr, POB 100, FI-70029 Kuopio, Finland
[6] Kuopio Univ Hosp, Dept Med, POB 100, FI-70029 Kuopio, Finland
基金
芬兰科学院;
关键词
rs780094; rs780095; rs780096; GCKR; Transcriptional enhancer; FOXA2; Type; 2; diabetes; FASTING PLASMA-GLUCOSE; REGULATORY PROTEIN; RS780094; POLYMORPHISM; GLUCOKINASE ACTIVITY; INSULIN-RESISTANCE; P446L VARIANT; GENE; CHROMATIN; TRIGLYCERIDE; FOXA2;
D O I
10.1186/s13073-017-0453-x
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Background: Genome-wide association studies (GWAS) have identified more than 100 genetic loci associated with type 2 diabetes (T2D). However, the underlying biological mechanisms for many of these associations remain unknown. GWAS signals close to the glucokinase regulatory protein gene (GCKR) have been reported for lipid and glucose metabolism traits and the risk of T2D. We investigated the regulatory function of an intronic locus at GCKR represented by the lead single nucleotide polymorphism (SNP) rs780094. Methods: We used ENCODE project histone modification and transcription factor binding data to determine the regulatory features of a GCKR intronic locus formed by the high linkage disequilibrium rs780094(C/T), rs780095(G/A), and rs780096(G/C) SNPs. Characterization of the transcriptional activity of this region was assessed by luciferase reporter assays in HepG2 cells and mouse primary hepatocytes. ChIP-qPCR was used to determine the levels of haplotype specific transcription factor binding and histone marks. A CRISPR-dCas9 transcriptional activator system and qPCR were used to activate the locus and measure GCKR expression, respectively. Differential haplotype expression was measured from human liver biopsies. Results: The ENCODE data suggest the existence of a liver-specific intragenic enhancer at the locus represented by s780094. We observed that FOXA2 increased the transcriptional activity of this region in a haplotype specific way (CGG > TAC; rs780094, rs780095, and rs780096). In addition, the CGG haplotype showed higher binding to FOXA2 and higher levels of the H3K27Ac histone mark. The epigenetic activation of this locus increased the expression of endogenous GCKR in HepG2 cells, confirming that GCKR is the direct target gene of the enhancer. Finally, we confirmed that the CGG haplotype exhibits higher levels of transcription in human liver. Conclusions: Our results demonstrate the existence of a liver-specific FOXA2-regulated transcriptional enhancer at an intronic T2D locus represented by rs780094, rs780095, and rs780096 SNPs that increases GCKR expression. Differential haplotype regulation suggests the existence of cis regulatory effects that may contribute to the associated traits at this locus.
引用
收藏
页数:14
相关论文
共 54 条
[1]   Glucokinase and molecular aspects of liver glycogen metabolism [J].
Agius, Loranne .
BIOCHEMICAL JOURNAL, 2008, 414 :1-18
[2]   Inhibition of apoB secretion from HepG2 cells by insulin is amplified by naringenin, independent of the insulin receptor [J].
Allister, Emma M. ;
Mulvihill, Erin E. ;
Barrett, P. Hugh R. ;
Edwards, Jane Y. ;
Carter, Lindsey P. ;
Huff, Murray W. .
JOURNAL OF LIPID RESEARCH, 2008, 49 (10) :2218-2229
[3]   An atlas of active enhancers across human cell types and tissues [J].
Andersson, Robin ;
Gebhard, Claudia ;
Miguel-Escalada, Irene ;
Hoof, Ilka ;
Bornholdt, Jette ;
Boyd, Mette ;
Chen, Yun ;
Zhao, Xiaobei ;
Schmidl, Christian ;
Suzuki, Takahiro ;
Ntini, Evgenia ;
Arner, Erik ;
Valen, Eivind ;
Li, Kang ;
Schwarzfischer, Lucia ;
Glatz, Dagmar ;
Raithel, Johanna ;
Lilje, Berit ;
Rapin, Nicolas ;
Bagger, Frederik Otzen ;
Jorgensen, Mette ;
Andersen, Peter Refsing ;
Bertin, Nicolas ;
Rackham, Owen ;
Burroughs, A. Maxwell ;
Baillie, J. Kenneth ;
Ishizu, Yuri ;
Shimizu, Yuri ;
Furuhata, Erina ;
Maeda, Shiori ;
Negishi, Yutaka ;
Mungall, Christopher J. ;
Meehan, Terrence F. ;
Lassmann, Timo ;
Itoh, Masayoshi ;
Kawaji, Hideya ;
Kondo, Naoto ;
Kawai, Jun ;
Lennartsson, Andreas ;
Daub, Carsten O. ;
Heutink, Peter ;
Hume, David A. ;
Jensen, Torben Heick ;
Suzuki, Harukazu ;
Hayashizaki, Yoshihide ;
Mueller, Ferenc ;
Forrest, Alistair R. R. ;
Carninci, Piero ;
Rehli, Michael ;
Sandelin, Albin .
NATURE, 2014, 507 (7493) :455-+
[4]  
[Anonymous], 2015, Nature, DOI [DOI 10.1038/NATURE15393, 10.1038/nature15393]
[5]   Elevated Glucose Represses Liver Glucokinase and Induces Its Regulatory Protein to Safeguard Hepatic Phosphate Homeostasis [J].
Arden, Catherine ;
Petrie, John L. ;
Tudhope, Susan J. ;
Al-Oanzi, Ziad ;
Claydon, Amy J. ;
Beynon, Robert J. ;
Towle, Howard C. ;
Agius, Loranne .
DIABETES, 2011, 60 (12) :3110-3120
[6]   The P446L variant in GCKR associated with fasting plasma glucose and triglyceride levels exerts its effect through increased glucokinase activity in liver [J].
Beer, Nicola L. ;
Tribble, Nicholas D. ;
McCulloch, Laura J. ;
Roos, Charlotta ;
Johnson, Paul R. V. ;
Orho-Melander, Marju ;
Gloyn, Anna L. .
HUMAN MOLECULAR GENETICS, 2009, 18 (21) :4081-4088
[7]   Small Maf proteins in mammalian gene control: Mere dimerization partners or dynamic transcriptional regulators? [J].
Blank, Volker .
JOURNAL OF MOLECULAR BIOLOGY, 2008, 376 (04) :913-925
[8]   Modulation of Glucokinase Regulatory Protein: A Double-Edged Sword? [J].
Brouwers, Martijn C. G. J. ;
Jacobs, Chantal ;
Bast, Aalt ;
Stehouwer, Coen D. A. ;
Schaper, Nicolaas C. .
TRENDS IN MOLECULAR MEDICINE, 2015, 21 (10) :583-594
[9]  
Chavez A, 2015, NAT METHODS, V12, P326, DOI [10.1038/nmeth.3312, 10.1038/NMETH.3312]
[10]   Opening of compacted chromatin by early developmental transcription factors HNF3 (FoxA) and GATA-4 [J].
Cirillo, LA ;
Lin, FR ;
Cuesta, I ;
Friedman, D ;
Jarnik, M ;
Zaret, KS .
MOLECULAR CELL, 2002, 9 (02) :279-289