Structural Analysis of GPI-glycans from GPI-anchored Proteins by Mass Spectrometry

被引:0
作者
Nakano, Miyako [1 ]
机构
[1] Hiroshima Univ, Grad Sch Integrated Sci Life, Higashihiroshima, Hiroshima 7398530, Japan
关键词
GPI-anchored proteins; Glycan; Remodeling; Mass Spectrometry; LC-ESI MS; PIG-A; BIOSYNTHESIS; ATTACHMENT;
D O I
10.4052/tigg.2209.1E
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
Glycosylphosphatidylinositol-anchored proteins (GPI-APs) are a group of proteins anchored to glycolipid on the cell membrane and are ubiquitous in eukaryotes. The basic structure of the glycosylphosphatidylinositol (GPI) moiety comprises ethanolamine phosphate, three mannose residues, glucosamine and phosphatidylinositol (PI). This basic structure and the mechanism by which proteins are anchored to membranes via the structure are conserved among organisms. After the identification of paroxysmal nocturnal hemo-globinuria (PNH), diseases derived from GPI anchor deficiencies were discovered. To comprehend these diseases fully, a comprehen-sive understanding of GPI anchor biosynthesis, encompassing the intricate remodeling of glycans and lipids, becomes imperative. We used mutant strains of Saccharomyces cerevisiae in which the gene encoding the enzyme that catalyzes remodeling was knocked out and a model molecule for GPI-APs to observe the remodeling process. Herein, we introduce a method for analyzing and identifying glycan structures in GPI anchors using liquid chromatography-electrospray ionization mass spectrometry (LC-ESI MS).
引用
收藏
页码:E81 / E85
页数:5
相关论文
共 20 条
[1]   Clinical variability in inherited glycosylphosphatidylinositol deficiency disorders [J].
Bellai-Dussault, Kara ;
Thi Tuyet Mai Nguyen ;
Baratang, Nissan V. ;
Jimenez-Cruz, Daniel A. ;
Campeau, Philippe M. .
CLINICAL GENETICS, 2019, 95 (01) :112-121
[2]   Structural remodeling of GPI anchors during biosynthesis and after attachment to proteins [J].
Fujita, Morihisa ;
Kinoshita, Taroh .
FEBS LETTERS, 2010, 584 (09) :1670-1677
[3]   GPI Glycan Remodeling by PGAP5 Regulates Transport of GPI-Anchored Proteins from the ER to the Golgi [J].
Fujita, Morihisa ;
Maeda, Yusuke ;
Ra, Moonjin ;
Yamaguchi, Yoshiki ;
Taguchi, Ryo ;
Kinoshita, Taroh .
CELL, 2009, 139 (02) :352-365
[4]   Loss of the N-acetylgalactosamine side chain of the GPI-anchor impairs bone formation and brain functions and accelerates the prion disease pathology [J].
Hirata, Tetsuya ;
Kobayashi, Atsushi ;
Furuse, Tamio ;
Yamada, Ikuko ;
Tamura, Masaru ;
Tomita, Hiroyuki ;
Tokoro, Yuko ;
Ninomiya, Akinori ;
Fujihara, Yoshitaka ;
Ikawa, Masahito ;
Maeda, Yusuke ;
Murakami, Yoshiko ;
Kizuka, Yasuhiko ;
Kinoshita, Taroh .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2022, 298 (03)
[5]   Yeast ARV1 is required for efficient delivery of an early GPI intermediate to the first mannosyltransferase during GPI assembly and controls lipid flow from the endoplasmic reticulum [J].
Kajiwara, Kentaro ;
Watanabe, Reika ;
Pichler, Harald ;
Ihara, Kensuke ;
Murakami, Suguru ;
Riezman, Howard ;
Funato, Kouichi .
MOLECULAR BIOLOGY OF THE CELL, 2008, 19 (05) :2069-2082
[6]   Biosynthesis and biology of mammalian GPI-anchored proteins [J].
Kinoshita, Taroh .
OPEN BIOLOGY, 2020, 10 (03)
[7]   Biosynthesis of GPI-anchored proteins: special emphasis on GPI lipid remodeling [J].
Kinoshita, Taroh ;
Fujita, Morihisa .
JOURNAL OF LIPID RESEARCH, 2016, 57 (01) :6-24
[8]   Biosynthesis and deficiencies of glycosylphosphatidylinositol [J].
Kinoshita, Taroh .
PROCEEDINGS OF THE JAPAN ACADEMY SERIES B-PHYSICAL AND BIOLOGICAL SCIENCES, 2014, 90 (04) :130-143
[9]   α2,3 linkage of sialic acid to a GPI anchor and an unpredicted GPI attachment site in human prion protein [J].
Kobayashi, Atsushi ;
Hirata, Tetsuya ;
Nishikaze, Takashi ;
Ninomiya, Akinori ;
Maki, Yuta ;
Takada, Yoko ;
Kitamoto, Tetsuyuki ;
Kinoshita, Taroh .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2020, 295 (22) :7789-7798
[10]  
Komath SS, 2022, Essentials of Glycobiology, V4th