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Transgelin: a new gene involved in LDL endocytosis identified by a genome-wide CRISPR-Cas9 screen
Authors:Diego Lucero  Ozan Dikilitas  Michael M Mendelson  Zahra Aligabi  Promotto Islam  Edward B Neufeld  Aruna T Bansal  Lita A Freeman  Boris Vaisman  Jingrong Tang  Christian A Combs  Yuesheng Li  Szilard Voros  Iftikhar J Kullo  Alan T Remaley
Institution:1. Lipoprotein Metabolism Laboratory, Translational Vascular Medicine Branch, National Heart, Lung, and Blood Institute, National Institutes of Health, Bethesda, MD, USA;2. Department of Internal Medicine, Mayo Clinic, Rochester, MN, USA;3. Department of Cardiovascular Medicine, Mayo Clinic, Rochester, MN, USA;4. Mayo Clinician-Investigator Training Program, Mayo Clinic, Rochester, MN, USA;5. Department of Cardiology, Boston Children’s Hospital, Harvard Medical School, Boston, MA, USA;6. Acclarogen Ltd, St John’s Innovation Centre, Cambridge, United Kingdom;7. NHLBI Light Microscopy Facility, National Institutes of Health, Bethesda, MD, USA;8. DNA Sequencing and Genomics Core, National Heart, Lung, and Blood Institute, National Institutes of Health, Bethesda, MD, USA;9. Global Genomics Group, LLC, Midlothian, VA, USA;10. Gonda Vascular Center, Mayo Clinic, Rochester, MN, USA
Abstract:A significant proportion of patients with elevated LDL and a clinical presentation of familial hypercholesterolemia do not carry known genetic mutations associated with hypercholesterolemia, such as defects in the LDL receptor. To identify new genes involved in the cellular uptake of LDL, we developed a novel whole-genome clustered regularly interspaced short palindromic repeat-Cas9 KO screen in HepG2 cells. We identified transgelin (TAGLN), an actin-binding protein, as a potentially new gene involved in LDL endocytosis. In silico validation demonstrated that genetically predicted differences in expression of TAGLN in human populations were significantly associated with elevated plasma lipids (triglycerides, total cholesterol, and LDL-C) in the Global Lipids Genetics Consortium and lipid-related phenotypes in the UK Biobank. In biochemical studies, TAGLN-KO HepG2 cells showed a reduction in cellular LDL uptake, as measured by flow cytometry. In confocal microscopy imaging, TAGLN-KO cells had disrupted actin filaments as well as an accumulation of LDL receptor on their surface because of decreased receptor internalization. Furthermore, TAGLN-KO cells exhibited a reduction in total and free cholesterol content, activation of SREBP2, and a compensatory increase in cholesterol biosynthesis. TAGLN deficiency also disrupted the uptake of VLDL and transferrin, other known cargoes for receptors that depend upon clathrin-mediated endocytosis. Our data suggest that TAGLN is a novel factor involved in the actin-dependent phase of clathrin-mediated endocytosis of LDL. The identification of novel genes involved in the endocytic uptake of LDL may improve the diagnosis of hypercholesterolemia and provide future therapeutic targets for the prevention of cardiovascular disease.
Keywords:transgelin  LDL  LDL receptor  endocytosis  whole-genome CRISPR-Cas9 screen  cellular LDL uptake  actin-binding protein  HepG2 cells  ASCVD"}  {"#name":"keyword"  "$":{"id":"kwrd0055"}  "$$":[{"#name":"text"  "_":"atherosclerotic cardiovascular disease  CAD"}  {"#name":"keyword"  "$":{"id":"kwrd0065"}  "$$":[{"#name":"text"  "_":"coronary artery disease  CME"}  {"#name":"keyword"  "$":{"id":"kwrd0075"}  "$$":[{"#name":"text"  "_":"clathrin-mediated endocytosis  CRISPR"}  {"#name":"keyword"  "$":{"id":"kwrd0085"}  "$$":[{"#name":"text"  "_":"clustered regularly interspaced short palindromic repeat  FACS"}  {"#name":"keyword"  "$":{"id":"kwrd0095"}  "$$":[{"#name":"text"  "_":"fluorescence-activated cell sorting  FH"}  {"#name":"keyword"  "$":{"id":"kwrd0105"}  "$$":[{"#name":"text"  "_":"familial hypercholesterolemia  GTEx"}  {"#name":"keyword"  "$":{"id":"kwrd0115"}  "$$":[{"#name":"text"  "_":"Genotype-Tissue Expression  GWAS"}  {"#name":"keyword"  "$":{"id":"kwrd0125"}  "$$":[{"#name":"text"  "_":"genome-wide association studies  LDLR"}  {"#name":"keyword"  "$":{"id":"kwrd0135"}  "$$":[{"#name":"text"  "_":"LDL receptor  LFC"}  {"#name":"keyword"  "$":{"id":"kwrd0145"}  "$$":[{"#name":"text"  "_":"log-fold change  mSREBP2"}  {"#name":"keyword"  "$":{"id":"kwrd0155"}  "$$":[{"#name":"text"  "_":"mature or active form of SREBP2  NHLBI"}  {"#name":"keyword"  "$":{"id":"kwrd0165"}  "$$":[{"#name":"text"  "_":"National Heart  Lung and Blood Institute  PCSK"}  {"#name":"keyword"  "$":{"id":"kwrd0175"}  "$$":[{"#name":"text"  "_":"proprotein convertase subtilisin/kexin  pSREBP2"}  {"#name":"keyword"  "$":{"id":"kwrd0185"}  "$$":[{"#name":"text"  "_":"precursor form of SREBP2  qPCR"}  {"#name":"keyword"  "$":{"id":"kwrd0195"}  "$$":[{"#name":"text"  "_":"quantitative PCR  sgRNA"}  {"#name":"keyword"  "$":{"id":"kwrd0205"}  "$$":[{"#name":"text"  "_":"single-guide RNA  SNV"}  {"#name":"keyword"  "$":{"id":"kwrd0215"}  "$$":[{"#name":"text"  "_":"single nucleotide variant  sTfR"}  {"#name":"keyword"  "$":{"id":"kwrd0225"}  "$$":[{"#name":"text"  "_":"soluble transferrin receptor  TAGLN"}  {"#name":"keyword"  "$":{"id":"kwrd0235"}  "$$":[{"#name":"text"  "_":"transgelin  TC"}  {"#name":"keyword"  "$":{"id":"kwrd0245"}  "$$":[{"#name":"text"  "_":"total cholesterol  TG"}  {"#name":"keyword"  "$":{"id":"kwrd0255"}  "$$":[{"#name":"text"  "_":"triglyceride  UKBB"}  {"#name":"keyword"  "$":{"id":"kwrd0265"}  "$$":[{"#name":"text"  "_":"UK Biobank  UTR"}  {"#name":"keyword"  "$":{"id":"kwrd0275"}  "$$":[{"#name":"text"  "_":"untranslated region
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