Literature DB >> 31112420

Genome-Wide Association Study-Driven Gene-Set Analyses, Genetic, and Functional Follow-Up Suggest GLIS1 as a Susceptibility Gene for Mitral Valve Prolapse.

Mengyao Yu1,2, Adrien Georges1,2, Nathan R Tucker3,4, Sergiy Kyryachenko1,2, Katelyn Toomer5, Jean-Jacques Schott6,7,8, Francesca N Delling9, Leticia Fernandez-Friera10,11, Jorge Solis10,11, Patrick T Ellinor3,4, Robert A Levine12, Susan A Slaugenhaupt13, Albert A Hagège1,2,14, Christian Dina6,7,8, Xavier Jeunemaitre1,2,15, David J Milan3, Russell A Norris, Nabila Bouatia-Naji1,2.   

Abstract

Background Mitral valve prolapse (MVP) is a common heart valve disease, the most frequent indication for valve repair or replacement. MVP is characterized by excess extracellular matrix secretion and cellular disorganization, which leads to bulky valves that are unable to coapt correctly during ventricular systole resulting in mitral regurgitation, and it is associated with sudden cardiac death. Here we aim to characterize globally the biological mechanisms underlying genetic susceptibility to MVP to better characterize its triggering mechanisms. Methods We applied i-GSEA4GWAS and DEPICT, two pathway enrichment tools to MVP genome-wide association studies. We followed-up the association with MVP in an independent dataset of cases and controls. This research was conducted using the UK Biobank Resource. Immunohistochemistry staining for Glis1 (GLIS family zinc finger 1) was conducted in developing heart of mice. Knockdown of Glis1 using morpholinos was performed in zebrafish animals 72 hours postfertilization. Results We show that genes at risk loci are involved in biological functions relevant to actin filament organization, cytoskeleton biology, and cardiac development. The enrichment for positive regulation of transcription, cell proliferation, and migration motivated the follow-up of GLIS1, a transcription factor from the Krüppel-like zinc finger family. In combination with previously available data, we now report a genome-wide significant association with MVP (odds ratio, 1.20; P=4.36×10-10), indicating that Glis1 is expressed during embryonic development predominantly in nuclei of endothelial and interstitial cells of mitral valves in mouse. We also show that Glis1 knockdown causes atrioventricular regurgitation in developing hearts in zebrafish. Conclusions Our findings define globally molecular and cellular mechanisms underlying common genetic susceptibility to MVP and implicate established and unprecedented mechanisms. Through the GLIS1 association and function, we point at regulatory functions during cardiac development as common mechanisms to mitral valve degeneration.

Entities:  

Keywords:  heart valve disease; mitral valve; mitral valve prolapse; morpholinos; zebrafish

Mesh:

Substances:

Year:  2019        PMID: 31112420      PMCID: PMC6532425          DOI: 10.1161/CIRCGEN.119.002497

Source DB:  PubMed          Journal:  Circ Genom Precis Med        ISSN: 2574-8300


  27 in total

Review 1.  Mitral valve prolapse.

Authors:  T Sloane Guy; Arthur C Hill
Journal:  Annu Rev Med       Date:  2012       Impact factor: 13.739

2.  Mutations in the gene encoding filamin A as a cause for familial cardiac valvular dystrophy.

Authors:  Florence Kyndt; Jean-Pierre Gueffet; Vincent Probst; Philippe Jaafar; Antoine Legendre; Françoise Le Bouffant; Claire Toquet; Estelle Roy; Lesley McGregor; Sally Ann Lynch; Ruth Newbury-Ecob; Vinh Tran; Ian Young; Jean-Noel Trochu; Hervé Le Marec; Jean-Jacques Schott
Journal:  Circulation       Date:  2006-12-26       Impact factor: 29.690

3.  Prevalence and clinical outcome of mitral-valve prolapse.

Authors:  L A Freed; D Levy; R A Levine; M G Larson; J C Evans; D L Fuller; B Lehman; E J Benjamin
Journal:  N Engl J Med       Date:  1999-07-01       Impact factor: 91.245

4.  Direct reprogramming of somatic cells is promoted by maternal transcription factor Glis1.

Authors:  Momoko Maekawa; Kei Yamaguchi; Tomonori Nakamura; Ran Shibukawa; Ikumi Kodanaka; Tomoko Ichisaka; Yoshifumi Kawamura; Hiromi Mochizuki; Naoki Goshima; Shinya Yamanaka
Journal:  Nature       Date:  2011-06-08       Impact factor: 49.962

5.  Mitral valve prolapse in the general population: the benign nature of echocardiographic features in the Framingham Heart Study.

Authors:  Lisa A Freed; Emelia J Benjamin; Daniel Levy; Martin G Larson; Jane C Evans; Deborah L Fuller; Birgitta Lehman; Robert A Levine
Journal:  J Am Coll Cardiol       Date:  2002-10-02       Impact factor: 24.094

6.  Natural history of asymptomatic mitral valve prolapse in the community.

Authors:  Jean-François Avierinos; Bernard J Gersh; L Joseph Melton; Kent R Bailey; Clarence Shub; Rick A Nishimura; A Jamil Tajik; Maurice Enriquez-Sarano
Journal:  Circulation       Date:  2002-09-10       Impact factor: 29.690

7.  i-GSEA4GWAS: a web server for identification of pathways/gene sets associated with traits by applying an improved gene set enrichment analysis to genome-wide association study.

Authors:  Kunlin Zhang; Sijia Cui; Suhua Chang; Liuyan Zhang; Jing Wang
Journal:  Nucleic Acids Res       Date:  2010-04-30       Impact factor: 16.971

8.  Filamin A links sphingosine kinase 1 and sphingosine-1-phosphate receptor 1 at lamellipodia to orchestrate cell migration.

Authors:  Michael Maceyka; Sergio E Alvarez; Sheldon Milstien; Sarah Spiegel
Journal:  Mol Cell Biol       Date:  2008-07-21       Impact factor: 4.272

9.  REVIGO summarizes and visualizes long lists of gene ontology terms.

Authors:  Fran Supek; Matko Bošnjak; Nives Škunca; Tomislav Šmuc
Journal:  PLoS One       Date:  2011-07-18       Impact factor: 3.240

Review 10.  Long-range control of gene expression: emerging mechanisms and disruption in disease.

Authors:  Dirk A Kleinjan; Veronica van Heyningen
Journal:  Am J Hum Genet       Date:  2004-11-17       Impact factor: 11.025

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  11 in total

1.  Malignant Mitral Valve Prolapse: Risk and Prevention of Sudden Cardiac Death.

Authors:  Yasufumi Nagata; Philippe B Bertrand; Robert A Levine
Journal:  Curr Treat Options Cardiovasc Med       Date:  2022-03-22

2.  Genome-Wide Association Meta-Analysis Supports Genes Involved in Valve and Cardiac Development to Associate With Mitral Valve Prolapse.

Authors:  Mengyao Yu; Sergiy Kyryachenko; Stephanie Debette; Philippe Amouyel; Jean-Jacques Schott; Thierry Le Tourneau; Christian Dina; Russell A Norris; Albert A Hagège; Xavier Jeunemaitre; Nabila Bouatia-Naji
Journal:  Circ Genom Precis Med       Date:  2021-08-31

3.  Non-syndromal mitral valve prolapse (MVP): a common entity, but not commonly associated with DCHS1 or FLNA mutations.

Authors:  Katharina Uphoff; Sven Dittmann; Patricia Ott; Birgit Stallmeyer; Eric Schulze-Bahr
Journal:  J Thorac Dis       Date:  2022-06       Impact factor: 3.005

4.  Desert hedgehog-primary cilia cross talk shapes mitral valve tissue by organizing smooth muscle actin.

Authors:  Diana Fulmer; Katelynn A Toomer; Janiece Glover; Lilong Guo; Kelsey Moore; Reece Moore; Rebecca Stairley; Cortney Gensemer; Sameer Abrol; Mary Kate Rumph; Faith Emetu; Joshua H Lipschutz; Colin McDowell; Justin Bian; Christina Wang; Tyler Beck; Andy Wessels; Marie-Ange Renault; Russell A Norris
Journal:  Dev Biol       Date:  2020-03-06       Impact factor: 3.582

5.  GLIS Family Zinc Finger 1 was First Linked With Preaxial Polydactyly I in Humans by Stepwise Genetic Analysis.

Authors:  Jie-Yuan Jin; Pan-Feng Wu; Fang-Mei Luo; Bing-Bing Guo; Lei Zeng; Liang-Liang Fan; Ju-Yu Tang; Rong Xiang
Journal:  Front Cell Dev Biol       Date:  2022-01-11

6.  Computational estimates of annular diameter reveal genetic determinants of mitral valve function and disease.

Authors:  Mengyao Yu; Catherine Tcheandjieu; Adrien Georges; Ke Xiao; Helio Tejeda; Christian Dina; Thierry Le Tourneau; Madalina Fiterau; Renae Judy; Noah L Tsao; Dulguun Amgalan; Chad J Munger; Jesse M Engreitz; Scott M Damrauer; Nabila Bouatia-Naji; James R Priest
Journal:  JCI Insight       Date:  2022-02-08

7.  Longitudinal Impact of WTC Dust Inhalation on Rat Cardiac Tissue Transcriptomic Profiles.

Authors:  Sung-Hyun Park; Yuting Lu; Yongzhao Shao; Colette Prophete; Lori Horton; Maureen Sisco; Hyun-Wook Lee; Thomas Kluz; Hong Sun; Max Costa; Judith Zelikoff; Lung-Chi Chen; Matthew W Gorr; Loren E Wold; Mitchell D Cohen
Journal:  Int J Environ Res Public Health       Date:  2022-01-14       Impact factor: 3.390

8.  The genetic consequences of dog breed formation-Accumulation of deleterious genetic variation and fixation of mutations associated with myxomatous mitral valve disease in cavalier King Charles spaniels.

Authors:  Erik Axelsson; Ingrid Ljungvall; Priyasma Bhoumik; Laura Bas Conn; Eva Muren; Åsa Ohlsson; Lisbeth Høier Olsen; Karolina Engdahl; Ragnvi Hagman; Jeanette Hanson; Dmytro Kryvokhyzha; Mats Pettersson; Olivier Grenet; Jonathan Moggs; Alberto Del Rio-Espinola; Christian Epe; Bruce Taillon; Nilesh Tawari; Shrinivas Mane; Troy Hawkins; Åke Hedhammar; Philippe Gruet; Jens Häggström; Kerstin Lindblad-Toh
Journal:  PLoS Genet       Date:  2021-09-02       Impact factor: 5.917

9.  DZIP1 regulates mammalian cardiac valve development through a Cby1-β-catenin mechanism.

Authors:  Lilong Guo; Tyler Beck; Diana Fulmer; Sandra Ramos-Ortiz; Janiece Glover; Christina Wang; Kelsey Moore; Cortney Gensemer; Jordan Morningstar; Reece Moore; Jean-Jacques Schott; Thierry Le Tourneau; Natalie Koren; Russell A Norris
Journal:  Dev Dyn       Date:  2021-04-09       Impact factor: 3.780

10.  Mitral Valve Prolapse Induces Regionalized Myocardial Fibrosis.

Authors:  Jordan E Morningstar; Cortney Gensemer; Reece Moore; Diana Fulmer; Tyler C Beck; Christina Wang; Kelsey Moore; Lilong Guo; Franz Sieg; Yasufumi Nagata; Philippe Bertrand; Ricardo A Spampinato; Janiece Glover; Stephen Poelzing; Robert G Gourdie; Kelsey Watts; William J Richardson; Robert A Levine; Michael A Borger; Russell A Norris
Journal:  J Am Heart Assoc       Date:  2021-12-07       Impact factor: 6.106

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