Ola Hansson
Lund University
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Featured researches published by Ola Hansson.
Science | 2010
Anders H. Rosengren; Ramunas Jokubka; Damon Tojjar; Charlotte Granhall; Ola Hansson; Dai-Qing Li; Vini Nagaraj; Thomas Reinbothe; Jonatan Tuncel; Lena Eliasson; Leif Groop; Patrik Rorsman; Albert Salehi; Valeriya Lyssenko; Holger Luthman; Erik Renström
Ratting Out a Diabetes Gene Inbred animals with inherited susceptibility to disease can be especially informative regarding pathogenetic mechanisms because they carry naturally occurring genetic variants of the same type that cause disease in humans. This principle is illustrated by Rosengren et al. (p. 217; published online 19 November), whose analysis of an inbred strain of rats prone to develop type 2 diabetes led to the discovery of a gene whose aberrant overexpression suppresses pancreatic insulin secretion in both rats and humans. The culprit gene, ADRA2A, encodes the alpha2A adrenergic receptor and is potentially a valuable lead for diabetes therapy because it can be targeted pharmacologically. Sequence variations in an adrenergic receptor gene cause reduced insulin secretion and contribute to type 2 diabetes. Several common genetic variations have been associated with type 2 diabetes, but the exact disease mechanisms are still poorly elucidated. Using congenic strains from the diabetic Goto-Kakizaki rat, we identified a 1.4-megabase genomic locus that was linked to impaired insulin granule docking at the plasma membrane and reduced β cell exocytosis. In this locus, Adra2a, encoding the alpha2A-adrenergic receptor [alpha(2A)AR], was significantly overexpressed. Alpha(2A)AR mediates adrenergic suppression of insulin secretion. Pharmacological receptor antagonism, silencing of receptor expression, or blockade of downstream effectors rescued insulin secretion in congenic islets. Furthermore, we identified a single-nucleotide polymorphism in the human ADRA2A gene for which risk allele carriers exhibited overexpression of alpha(2A)AR, reduced insulin secretion, and increased type 2 diabetes risk. Human pancreatic islets from risk allele carriers exhibited reduced granule docking and secreted less insulin in response to glucose; both effects were counteracted by pharmacological alpha(2A)AR antagonists.
Cell Metabolism | 2012
Jalal Taneera; Stefan Lang; Amitabh Sharma; João Fadista; Yuedan Zhou; Emma Ahlqvist; Anna Maria Jönsson; Valeriya Lyssenko; Petter Vikman; Ola Hansson; Hemang Parikh; Olle Korsgren; Arvind Soni; Ulrika Krus; Enming Zhang; Xingjun Jing; Jonathan Lou S. Esguerra; Claes B. Wollheim; Albert Salehi; Anders H. Rosengren; Erik Renström; Leif Groop
Close to 50 genetic loci have been associated with type 2 diabetes (T2D), but they explain only 15% of the heritability. In an attempt to identify additional T2D genes, we analyzed global gene expression in human islets from 63 donors. Using 48 genes located near T2D risk variants, we identified gene coexpression and protein-protein interaction networks that were strongly associated with islet insulin secretion and HbA(1c). We integrated our data to form a rank list of putative T2D genes, of which CHL1, LRFN2, RASGRP1, and PPM1K were validated in INS-1 cells to influence insulin secretion, whereas GPR120 affected apoptosis in islets. Expression variation of the top 20 genes explained 24% of the variance in HbA(1c) with no claim of the direction. The data present a global map of genes associated with islet dysfunction and demonstrate the value of systems genetics for the identification of genes potentially involved in T2D.
Diabetes | 2012
Marloes Dekker Nitert; Tasnim Dayeh; Peter Volkov; Targ Elgzyri; Elin Hall; Emma Nilsson; Beatrice Yang; Stefan Lang; Hemang Parikh; Ylva Wessman; Holger Weishaupt; Joanne L. Attema; Mia Abels; Nils Wierup; Peter Almgren; Per-Anders Jansson; Tina Rönn; Ola Hansson; Karl-Frederik Eriksson; Leif Groop; Charlotte Ling
To identify epigenetic patterns, which may predispose to type 2 diabetes (T2D) due to a family history (FH) of the disease, we analyzed DNA methylation genome-wide in skeletal muscle from individuals with (FH+) or without (FH−) an FH of T2D. We found differential DNA methylation of genes in biological pathways including mitogen-activated protein kinase (MAPK), insulin, and calcium signaling (P ≤ 0.007) and of individual genes with known function in muscle, including MAPK1, MYO18B, HOXC6, and the AMP-activated protein kinase subunit PRKAB1 in skeletal muscle of FH+ compared with FH− men. We further validated our findings from FH+ men in monozygotic twin pairs discordant for T2D, and 40% of 65 analyzed genes exhibited differential DNA methylation in muscle of both FH+ men and diabetic twins. We further examined if a 6-month exercise intervention modifies the genome-wide DNA methylation pattern in skeletal muscle of the FH+ and FH− individuals. DNA methylation of genes in retinol metabolism and calcium signaling pathways (P < 3 × 10−6) and with known functions in muscle and T2D including MEF2A, RUNX1, NDUFC2, and THADA decreased after exercise. Methylation of these human promoter regions suppressed reporter gene expression in vitro. In addition, both expression and methylation of several genes, i.e., ADIPOR1, BDKRB2, and TRIB1, changed after exercise. These findings provide new insights into how genetic background and environment can alter the human epigenome.
Proceedings of the National Academy of Sciences of the United States of America | 2014
João Fadista; Petter Vikman; Emilia Ottosson Laakso; Inês G. Mollet; Jonathan Lou S. Esguerra; Jalal Taneera; Petter Storm; Peter Osmark; Claes Ladenvall; Rashmi B. Prasad; Karin B. Hansson; Francesca Finotello; Kristina Uvebrant; Jones K. Ofori; Barbara Di Camillo; Ulrika Krus; Corrado M. Cilio; Ola Hansson; Lena Eliasson; Anders H. Rosengren; Erik Renström; Claes B. Wollheim; Leif Groop
Significance We provide a comprehensive catalog of novel genetic variants influencing gene expression and metabolic phenotypes in human pancreatic islets. The data also show that the path from genetic variation (SNP) to gene expression is more complex than hitherto often assumed, and that we need to consider that genetic variation can also influence function of a gene by influencing exon usage or splice isoforms (sQTL), allelic imbalance, RNA editing, and expression of noncoding RNAs, which in turn can influence expression of target genes. Genetic variation can modulate gene expression, and thereby phenotypic variation and susceptibility to complex diseases such as type 2 diabetes (T2D). Here we harnessed the potential of DNA and RNA sequencing in human pancreatic islets from 89 deceased donors to identify genes of potential importance in the pathogenesis of T2D. We present a catalog of genetic variants regulating gene expression (eQTL) and exon use (sQTL), including many long noncoding RNAs, which are enriched in known T2D-associated loci. Of 35 eQTL genes, whose expression differed between normoglycemic and hyperglycemic individuals, siRNA of tetraspanin 33 (TSPAN33), 5′-nucleotidase, ecto (NT5E), transmembrane emp24 protein transport domain containing 6 (TMED6), and p21 protein activated kinase 7 (PAK7) in INS1 cells resulted in reduced glucose-stimulated insulin secretion. In addition, we provide a genome-wide catalog of allelic expression imbalance, which is also enriched in known T2D-associated loci. Notably, allelic imbalance in paternally expressed gene 3 (PEG3) was associated with its promoter methylation and T2D status. Finally, RNA editing events were less common in islets than previously suggested in other tissues. Taken together, this study provides new insights into the complexity of gene regulation in human pancreatic islets and better understanding of how genetic variation can influence glucose metabolism.
Diabetologia | 2008
Tina Rönn; Pernille Poulsen; Ola Hansson; Johan Holmkvist; Peter Almgren; Peter Nilsson; Tiinamaija Tuomi; B Isomaa; Leif Groop; Allan Vaag; Charlotte Ling
Aims/hypothesisReduced oxidative capacity of the mitochondria in skeletal muscle has been suggested to contribute to insulin resistance and type 2 diabetes. Moreover, a set of genes influencing oxidative phosphorylation (OXPHOS) is downregulated in diabetic muscle. Here we studied whether genetic, epigenetic and non-genetic factors influence a component of the respiratory chain, COX7A1, previously shown to be downregulated in skeletal muscle from patients with type 2 diabetes. The specific aims were to: (1) evaluate the impact of genetic (single nucleotide polymorphisms [SNPs]), epigenetic (DNA methylation) and non-genetic (age) factors on the expression of COX7A1 in human skeletal muscle; and (2) investigate whether common variants in the COX7A1 gene are associated with increased risk of type 2 diabetes.MethodsCOX7A1 mRNA expression was analysed in muscle biopsies from young (n = 110) and elderly (n = 86) non-diabetic twins and related to measures of in vivo metabolism. Genetic variants (three SNPs) from the COX7A1 locus were genotyped in the twins and in two independent type 2 diabetes case–control cohorts (n = 1466 and 6380, respectively). DNA methylation of the COX7A1 promoter was analysed in a subset of twins (ten young, ten elderly) using bisulphite sequencing.ResultsWhile DNA methylation of the COX7A1 promoter was increased in muscle from elderly compared with young twins (19.9 ± 8.3% vs 1.8 ± 2.7%; p = 0.035), the opposite was found for COX7A1 mRNA expression (elderly 1.00 ± 0.05 vs young 1.68 ± 0.06; p = 0.0005). The heritability of COX7A1 expression was estimated to be 50% in young and 72% in elderly twins. One of the polymorphisms investigated, rs753420, influenced basal COX7A1 expression in muscle of young (p = 0.0001) but not of elderly twins. The transcript level of COX7A1 was associated with increased in vivo glucose uptake and
Cell Metabolism | 2012
Taman Mahdi; Sonja Hänzelmann; Albert Salehi; Sarheed Jabar Muhammed; Thomas Reinbothe; Yunzhao Tang; Annika S. Axelsson; Yuedan Zhou; Xingjun Jing; Peter Almgren; Ulrika Krus; Jalal Taneera; Anna M. Blom; Valeriya Lyssenko; Jonathan Lou S. Esguerra; Ola Hansson; Lena Eliasson; Jonathan Derry; Enming Zhang; Claes B. Wollheim; Leif Groop; Erik Renström; Anders H. Rosengren
Human Molecular Genetics | 2009
Ludmila Prokunina-Olsson; Cullan Welch; Ola Hansson; Neeta Adhikari; Laura J. Scott; Nicolle Usher; Maurine Tong; Andrew G. Sprau; Amy J. Swift; Lori L. Bonnycastle; Michael R. Erdos; Zhi He; Richa Saxena; Brennan Harmon; Olga Kotova; Eric P. Hoffman; David Altshuler; Leif Groop; Michael Boehnke; Francis S. Collins; Jennifer L. Hall
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The Lancet Diabetes & Endocrinology | 2018
Emma Ahlqvist; Petter Storm; Annemari Käräjämäki; Mats Martinell; Mozhgan Dorkhan; Annelie Carlsson; Petter Vikman; Rashmi B. Prasad; Dina Mansour Aly; Peter Almgren; Ylva Wessman; Nael Shaat; Peter Spégel; Hindrik Mulder; Eero Lindholm; Olle Melander; Ola Hansson; Ulf Malmqvist; Åke Lernmark; Kaj Lahti; Tom Forsén; Tiinamaija Tuomi; Anders H. Rosengren; Leif Groop
PLOS Genetics | 2014
Inga Prokopenko; Wenny Poon; Reedik Mägi; Rashmi Prasad B; S Albert Salehi; Peter Almgren; Peter Osmark; Nabila Bouatia-Naji; Nils Wierup; Tove Fall; Alena Stančáková; Adam Barker; Vasiliki Lagou; Clive Osmond; Weijia Xie; Jari Lahti; Anne U. Jackson; Yu Ching Cheng; Jie Liu; Jeffrey R. O'Connell; Paul A. Blomstedt; João Fadista; Sami Alkayyali; Tasnim Dayeh; Emma Ahlqvist; Jalal Taneera; Cécile Lecoeur; Ashish Kumar; Ola Hansson; Karin M Hansson
(p = 0.009 and p = 0.001, respectively). We did not observe any genetic association between COX7A1 polymorphisms and type 2 diabetes after correcting for multiple testing.Conclusions/interpretationOur results provide further evidence for age as a factor influencing DNA methylation and expression of OXPHOS genes, and thereby in vivo metabolism.
Human Molecular Genetics | 2014
Yuedan Zhou; Soo Young Park; Jing Su; Kathleen A. Bailey; Emilia Ottosson-Laakso; Liliya Shcherbina; Nikolay Oskolkov; Enming Zhang; Thomas Thevenin; João Fadista; Hedvig Bennet; Petter Vikman; Nils Wierup; Malin Fex; Johan Rung; Claes B. Wollheim; Marcelo A. Nobrega; Erik Renström; Leif Groop; Ola Hansson
A plethora of candidate genes have been identified for complex polygenic disorders, but the underlying disease mechanisms remain largely unknown. We explored the pathophysiology of type 2 diabetes (T2D) by analyzing global gene expression in human pancreatic islets. A group of coexpressed genes (module), enriched for interleukin-1-related genes, was associated with T2D and reduced insulin secretion. One of the module genes that was highly overexpressed in islets from T2D patients is SFRP4, which encodes secreted frizzled-related protein 4. SFRP4 expression correlated with inflammatory markers, and its release from islets was stimulated by interleukin-1β. Elevated systemic SFRP4 caused reduced glucose tolerance through decreased islet expression of Ca(2+) channels and suppressed insulin exocytosis. SFRP4 thus provides a link between islet inflammation and impaired insulin secretion. Moreover, the protein was increased in serum from T2D patients several years before the diagnosis, suggesting that SFRP4 could be a potential biomarker for islet dysfunction in T2D.