Transbilayer movement of monohexosylsphingolipids in endoplasmic reticulum and Golgi membranes

被引:61
作者
Buton, X
Hervé, P
Kubelt, J
Tannert, A
Burger, KNJ
Fellmann, P
Müller, P
Herrmann, A
Seigneuret, M
Devaux, PF
机构
[1] Inst Biol Physicochim, Lab Physicochim Mol Membranes Biol, UMR 7099, F-75005 Paris, France
[2] Humboldt Univ, Inst Biol Biophys, D-10115 Berlin, Germany
[3] Univ Utrecht, Fac Biol Mol Cell Biol, NL-3508 TB Utrecht, Netherlands
[4] Univ Paris 06, Lab Phys & Chim Biomol & Cellulaire, F-75252 Paris 05, France
关键词
D O I
10.1021/bi020385t
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The transbilayer movement of glycosphingolipids has been characterized in Golgi, ER, plasma, and model membranes using spin-labeled and fluorescent analogues of the monohexosylsphingolipids glucosylceramide and galactosylceramide and of the dihexosylsphingolipid lactosylceramide. In large unilamellar lipid vesicles, monohexosylsphingolipids underwent a slow transbilayer diffusion (half-time between 2 and 5 h at 20 degreesC). Similarly, the inward redistribution of these sphingolipids in the plasma membrane of the hepatocyte-like cell line HepG2 and of erythrocytes was slow. However, in rat liver ER and Golgi membranes, we found a rapid transbilayer movement of spin-labeled monohexosylsphingolipids (half-time of; approximate to3 min at 20 degreesC), which suggests the existence of a monohexosylsphingolipid flippase. The transbilayer movement of glucosylceramide in the Golgi and the ER displayed a saturable behavior, was inhibited by proteolysis, did not require Mg-ATP, and occurs in both directions. Treatment with DIDS inhibited the flip-flop of glucosylceramide but not that of phosphatidylcholine. These data suggest that the transbilayer movement of monoglucosylceramide in the ER and in the Golgi involves a protein that could be distinct from that previously evidenced for glycerophospholipids in the ER. In vivo, transbilayer diffusion should promote a symmetric distribution of monohexosylsphingolipids which are synthesized in the cytosolic leaflet. This should allow glucosylceramide rapid access to the lumenal leaflet where it is converted to lactosylceramide. No significant transbilayer movement of lactosylceramide occurred in both artificial and natural membranes over I h. Thus, lactosylceramide, in turn, is unable to diffuse to the cytosolic leaflet and remains at the lumenal leaflet where it undergoes the subsequent glycosylations.
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页码:13106 / 13115
页数:10
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