Differential trafficking of the Niemann-Pick C1 and 2 proteins highlights distinct roles in late endocytic lipid trafficking

被引:35
|
作者
Zhang, M
Sun, M
Dwyer, NK
Comly, ME
Patel, SC
Sundaram, R
Hanover, JA
Blanchette-Mackie, EJ
机构
[1] NIDDKD, Lipid Cell Biol Sect, NIH, Bethesda, MD 20892 USA
[2] NIDDKD, Lab Cell Biochem & Biol, Cell Biochem Sect, NIH, Bethesda, MD 20892 USA
[3] NINDS, Dev & Metab Neurol Branch, NIH, Bethesda, MD 20892 USA
[4] New England Biomed Res Ctr, Newington, CT USA
[5] VA Connecticut Healthcare Syst, Newington, CT USA
关键词
Niemann-Pick type C; NPC1; protein; NPC2; cholesterol trafficking; glycolipid trafficking;
D O I
10.1080/08035320310021958
中图分类号
R72 [儿科学];
学科分类号
100202 ;
摘要
The cellular location of Niemann - Pick C2 protein (NPC2) in cultured human fibroblasts and Chinese hamster ovary cells was examined immunocytochemically and in living cells by expression of a functional red fluorescent protein chimeric analogue. Results: NPC2 is present in the lysosomes of both cholesterol-depleted and - replenished cells, unlike Niemann - Pick C1 protein (NPC1) which is recruited to late endosomes only upon uptake of low-density lipoprotein. With mobilization of cholesterol from lysosomes, immunocytochemical detection of NPC2 in lysosomes is greatly diminished, whereas NPC1 remains in the late endosomal compartment. We found a partial overlap in the trafficking and organellar sites of accumulation of NPC2 and NPC1. In living cells, NPC2 traffics with NPC1 in late endosomal tubules. However, in contrast to NPC1, which remains either in late endosomal vesicles and tubules or at the peripheries of cholesterol-laden lysosomes, NPC2 moves into the central core of lysosomes. Glycolipid analysis reveals that, in contrast to null mutant NPC1 cells, which accumulate G(M2) ganglioside only at the plasma membrane, with no endocytic storage, absence of NPC2 protein in null mutant NPC2 cells does not block internalization of GM2 into endocytic vesicles. This difference in the cellular distribution of GM2 in NPC1 and NPC2 null mutants is the first report of a variation in the phenotypic expression of these genotypically distinct lesions. Conclusion: We speculate that while NPC1 may play a major role in the sorting of glycolipids as well as cholesterol within the late endosomes, NPC2 primarily plays a role in the egress of cholesterol and, potentially, glycolipids from lysosomes. These proteins appear not to be integrated into a tightly bound biological complex, but rather represent separate functional entities that complement each other.
引用
收藏
页码:63 / 73
页数:11
相关论文
共 50 条
  • [41] A novel, highly sensitive and specific biomarker for Niemann-Pick type C1 disease
    Giese, Anne-Katrin
    Mascher, Hermann
    Grittner, Ulrike
    Eichler, Sabrina
    Kramp, Guido
    Lukas, Jan
    Vruchte, Danielle Te
    Al Eisa, Nada
    Cortina-Borja, Mario
    Porter, Forbes D.
    Platt, Frances M.
    Rolfs, Arndt
    ORPHANET JOURNAL OF RARE DISEASES, 2015, 10
  • [42] The Role of the Niemann-Pick Disease, Type C1 Protein in Adipocyte Insulin Action
    Fletcher, Rachael
    Gribben, Christopher
    Ma, Xuiquan
    Burchfield, James G.
    Thomas, Kristen C.
    Krycer, James R.
    James, David E.
    Fazakerley, Daniel J.
    PLOS ONE, 2014, 9 (04):
  • [43] Ebola Viral Glycoprotein Bound to Its Endosomal Receptor Niemann-Pick C1
    Wang, Han
    Shi, Yi
    Song, Jian
    Qi, Jianxun
    Lu, Guangwen
    Yan, Jinghua
    Gao, George F.
    CELL, 2016, 164 (1-2) : 258 - 268
  • [44] Increased Regenerative Capacity of the Olfactory Epithelium in Niemann-Pick Disease Type C1
    Meyer, Anja
    Wree, Andreas
    Guenther, Rene
    Holzmann, Carsten
    Schmitt, Oliver
    Rolfs, Arndt
    Witt, Martin
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2017, 18 (04):
  • [45] Neurodevelopmental Characterization of Young Children Diagnosed with Niemann-Pick Disease, Type C1
    Thurm, Audrey
    Chlebowski, Colby
    Joseph, Lisa
    Farmer, Cristan
    Adedipe, Dee
    Weiss, Madison
    Wiggs, Edythe
    Farhat, Nicole
    Bianconi, Simona
    Berry-Kravis, Elizabeth
    Porter, Forbes D.
    JOURNAL OF DEVELOPMENTAL AND BEHAVIORAL PEDIATRICS, 2020, 41 (05) : 388 - 396
  • [46] Potential pharmacological strategies targeting the Niemann-Pick C1 receptor and Ebola virus glycoprotein interaction
    Morales-Tenorio, Marcos
    Ginex, Tiziana
    Cuesta-Geijo, Miguel Angel
    Campillo, Nuria E.
    Munoz-Fontela, Cesar
    Alonso, Covadonga
    Delgado, Rafael
    Gil, Carmen
    EUROPEAN JOURNAL OF MEDICINAL CHEMISTRY, 2021, 223
  • [47] Niemann-Pick C1 Affects the Gene Delivery Efficacy of Degradable Polymeric Nanoparticles
    Eltoukhy, Ahmed A.
    Sahay, Gaurav
    Cunningham, James M.
    Anderson, Daniel G.
    ACS NANO, 2014, 8 (08) : 7905 - 7913
  • [48] Transport via Niemann-Pick C1 Like 1 contributes to the intestinal absorption of ubiquinone
    Nashimoto, Shunsuke
    Takekawa, Yuto
    Takekuma, Yoh
    Sugawara, Mitsuru
    Sato, Yuki
    DRUG METABOLISM AND PHARMACOKINETICS, 2020, 35 (06) : 527 - 533
  • [49] Article Lithium ameliorates Niemann-Pick C1 disease phenotypes by impeding STING/SREBP2 activation
    Han, Shiqian
    Wang, Qijun
    Song, Yongfeng
    Pang, Mao
    Ren, Chunguang
    Wang, Jing
    Guan, Dongwei
    Xu, Wei
    Li, Fangyong
    Wang, Fengchao
    Zhou, Xinyuan
    Fernandez-Hernando, Carlos
    Zhang, Huiwen
    Wu, Dianqing
    Ye, Zhijia
    ISCIENCE, 2023, 26 (05)
  • [50] Neurological Dysfunction in Early Maturity of a Model for Niemann-Pick C1 Carrier Status
    Hung, Ya Hui
    Walterfang, Mark
    Churilov, Leonid
    Bray, Lisa
    Jacobson, Laura H.
    Barnham, Kevin J.
    Jones, Nigel C.
    O'Brien, Terence J.
    Velakoulis, Dennis
    Bush, Ashley I.
    NEUROTHERAPEUTICS, 2016, 13 (03) : 614 - 622