Ebola virus entry requires the cholesterol transporter Niemann-Pick C1

被引:962
|
作者
Carette, Jan E. [1 ]
Raaben, Matthijs [2 ]
Wong, Anthony C. [3 ]
Herbert, Andrew S. [4 ]
Obernosterer, Gregor [1 ]
Mulherkar, Nirupama [3 ]
Kuehne, Ana I. [4 ]
Kranzusch, Philip J. [2 ]
Griffin, April M. [2 ]
Ruthel, Gordon [4 ]
Dal Cin, Paola [5 ]
Dye, John M. [4 ]
Whelan, Sean P. [2 ]
Chandran, Kartik [3 ]
Brummelkamp, Thijn R. [1 ]
机构
[1] Whitehead Inst Biomed Res, Cambridge Ctr 9, Cambridge, MA 02142 USA
[2] Harvard Univ, Sch Med, Dept Microbiol & Mol Genet, Boston, MA 02115 USA
[3] Albert Einstein Coll Med, Dept Microbiol & Immunol, Bronx, NY 10461 USA
[4] USA, Med Res Inst Infect Dis, Ft Detrick, MD 21702 USA
[5] Ctr Adv Mol Diagnost, Boston, MA 02115 USA
关键词
VESICULAR STOMATITIS-VIRUS; HEMORRHAGIC-FEVER; ZAIRE-EBOLAVIRUS; HUMAN-CELLS; IDENTIFICATION; GENE; GLYCOPROTEIN; MECHANISM; RECEPTOR; ANTIBODY;
D O I
10.1038/nature10348
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Infections by the Ebola and Marburg filoviruses cause a rapidly fatal haemorrhagic fever in humans for which no approved antivirals are available(1). Filovirus entry is mediated by the viral spike glycoprotein (GP), which attaches viral particles to the cell surface, delivers them to endosomes and catalyses fusion between viral and endosomal membranes(2). Additional host factors in the endosomal compartment are probably required for viral membrane fusion; however, despite considerable efforts, these critical host factors have defied molecular identification(3-5). Here we describe a genome-wide haploid genetic screen in human cells to identify host factors required for Ebola virus entry. Our screen uncovered 67 mutations disrupting all six members of the homotypic fusion and vacuole protein-sorting (HOPS) multisubunit tethering complex, which is involved in the fusion of endosomes to lysosomes(6), and 39 independent mutations that disrupt the endo/lysosomal cholesterol transporter protein Niemann-Pick C1 (NPC1)(7). Cells defective for the HOPS complex or NPC1 function, including primary fibroblasts derived from human Niemann-Pick type C1 disease patients, are resistant to infection by Ebola virus and Marburg virus, but remain fully susceptible to a suite of unrelated viruses. We show that membrane fusion mediated by filovirus glycoproteins and viral escape from the vesicular compartment require the NPC1 protein, independent of its known function in cholesterol transport. Our findings uncover unique features of the entry pathway used by filoviruses and indicate potential antiviral strategies to combat these deadly agents.
引用
收藏
页码:340 / U115
页数:7
相关论文
共 50 条
  • [41] Anti-Niemann Pick C1 Single-Stranded Oligonucleotides with Locked Nucleic Acids Potently Reduce Ebola Virus Infection In Vitro
    Sadewasser, Anne
    Dietzel, Erik
    Michel, Sven
    Kluever, Michael
    Helfer, Markus
    Thelemann, Tamara
    Klar, Richard
    Eickmann, Markus
    Becker, Stephan
    Jaschinski, Frank
    MOLECULAR THERAPY-NUCLEIC ACIDS, 2019, 16 : 686 - 697
  • [42] Spreading the Wealth: Niemann-Pick Type C Proteins Bind and Transport Cholesterol
    Munkacsi, Andrew B.
    Pentchev, Peter G.
    Sturley, Stephen L.
    CELL METABOLISM, 2009, 10 (01) : 3 - 4
  • [43] A differential proteomics study of cerebrospinal fluid from individuals with Niemann-Pick disease, Type C1
    Li, Wenping
    Pergande, Melissa R. R.
    Crutchfield, Christopher A. A.
    Searle, Brian C. C.
    Backlund, Peter S. S.
    Picache, Jaqueline A. A.
    Burkert, Kathryn
    Yanjanin-Farhat, Nicole M. M.
    Blank, Paul S. S.
    Toth, Cynthia L. L.
    Wassif, Christopher A. A.
    Porter, Forbes D. D.
    Cologna, Stephanie M. M.
    PROTEOMICS, 2023, 23 (11)
  • [44] Iron chelation by deferiprone does not rescue the Niemann-Pick Disease Type C1 mouse model
    Hung, Ya Hui
    Lotan, Amit
    Yeshurun, Shlomo
    Schroeder, Anna
    Bush, Ashley I.
    BIOMETALS, 2020, 33 (2-3) : 87 - 95
  • [45] Development and validation of a new genotype-phenotype correlation for Niemann-Pick disease type C1
    Liang, Huan
    Zhan, Xia
    Wang, Yu
    Maegawa, Gustavo H. B.
    Zhang, Huiwen
    JOURNAL OF INHERITED METABOLIC DISEASE, 2024, 47 (02) : 317 - 326
  • [46] Shortened primary cilium length and dysregulated Sonic hedgehog signaling in Niemann-Pick C1 disease
    Canterini, Sonia
    Dragotto, Jessica
    Dardis, Andrea
    Zampieri, Stefania
    De Stefano, Maria Egle
    Mangia, Franco
    Erickson, Robert P.
    Fiorenza, Maria Teresa
    HUMAN MOLECULAR GENETICS, 2017, 26 (12) : 2277 - 2289
  • [47] Normalization of Cholesterol Homeostasis by 2-Hydroxypropyl-β-cyclodextrin in Neurons and Glia from Niemann-Pick C1 (NPC1)-deficient Mice
    Peake, Kyle B.
    Vance, Jean E.
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2012, 287 (12) : 9290 - 9298
  • [48] Therapy of Niemann-Pick disease, type C
    Patterson, MC
    Platt, F
    BIOCHIMICA ET BIOPHYSICA ACTA-MOLECULAR AND CELL BIOLOGY OF LIPIDS, 2004, 1685 (1-3): : 77 - 82
  • [49] Multiple Surface Regions on the Niemann-Pick C2 Protein Facilitate Intracellular Cholesterol Transport
    McCauliff, Leslie A.
    Xu, Zhi
    Li, Ran
    Kodukula, Sarala
    Ko, Dennis C.
    Scott, Matthew P.
    Kahn, Peter C.
    Storch, Judith
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2015, 290 (45) : 27321 - 27331
  • [50] Precision Medicine in Cats: Novel Niemann-Pick Type C1 Diagnosed by Whole-Genome Sequencing
    Mauler, D. A.
    Gandolfi, B.
    Reinero, C. R.
    O'Brien, D. P.
    Spooner, J. L.
    Lyons, L. A.
    JOURNAL OF VETERINARY INTERNAL MEDICINE, 2017, 31 (02): : 539 - 544