More than just sugars: Conserved oligomeric Golgi complex deficiency causes glycosylation-independent cellular defects

被引:26
作者
Blackburn, Jessica B. [1 ]
Kudlyk, Tetyana [1 ]
Pokrovskaya, Irina [1 ]
Lupashin, Vladimir V. [1 ]
机构
[1] Univ Arkansas Med Sci, Dept Physiol & Biophys, 4301 West Markham St, Little Rock, AR 72205 USA
关键词
cathepsin D; CDG; COG complex; COG-CDG; endolysosome; GALE; glycosylation; Golgi; Lamp2; MGAT1; N-ACETYLGLUCOSAMINYLTRANSFERASE-I; POMATIA AGGLUTININ BINDING; LOW-DENSITY-LIPOPROTEIN; COG COMPLEX; CONGENITAL DISORDER; HELIX-POMATIA; PROTEIN GLYCOSYLATION; MEMBRANE TRAFFICKING; RETROGRADE TRAFFICKING; STRUCTURAL BASIS;
D O I
10.1111/tra.12564
中图分类号
Q2 [细胞生物学];
学科分类号
071013 [干细胞生物学];
摘要
The conserved oligomeric Golgi (COG) complex controls membrane trafficking and ensures Golgi homeostasis by orchestrating retrograde vesicle trafficking within the Golgi. Human COG defects lead to severe multisystemic diseases known as COG-congenital disorders of glycosylation (COG-CDG). To gain better understanding of COG-CDGs, we compared COG knockout cells with cells deficient to 2 key enzymes, Alpha-1,3-mannosyl-glycoprotein 2-beta-N-acetylglucosaminyltransferase and uridine diphosphate-glucose 4-epimerase (GALE), which contribute to proper N- and O-glycosylation. While all knockout cells share similar defects in glycosylation, these defects only account for a small fraction of observed COG knockout phenotypes. Glycosylation deficiencies were not associated with the fragmented Golgi, abnormal endolysosomes, defective sorting and secretion or delayed retrograde trafficking, indicating that these phenotypes are probably not due to hypoglycosylation, but to other specific interactions or roles of the COG complex. Importantly, these COG deficiency specific phenotypes were also apparent in COG7-CDG patient fibroblasts, proving the human disease relevance of our CRISPR knockout findings. The knowledge gained from this study has important implications, both for understanding the physiological role of COG complex in Golgi homeostasis in eukaryotic cells, and for better understanding human diseases associated with COG/Golgi impairment.
引用
收藏
页码:463 / 480
页数:18
相关论文
共 90 条
[1]
Blackburn JB, 2016, METHODS MOL BIOL, V1496, P145, DOI 10.1007/978-1-4939-6463-5_12
[2]
COG Complex Complexities: Detailed Characterization of a Complete Set of HEK293T Cells Lacking Individual COG Subunits [J].
Blackburn, Jessica Bailey ;
Pokrovskaya, Irina ;
Fisher, Peter ;
Ungar, Daniel ;
Lupashin, Vladimir V. .
FRONTIERS IN CELL AND DEVELOPMENTAL BIOLOGY, 2016, 4
[3]
The GOLPH3 pathway regulates Golgi shape and function and is activated by DNA damage [J].
Buschman, Matthew D. ;
Xing, Mengke ;
Field, Seth J. .
FRONTIERS IN NEUROSCIENCE, 2015, 9
[4]
Sortilin mediates the lysosomal targeting of cathepsins D and H [J].
Canuel, Maryssa ;
Korkidakis, Ann ;
Konnyu, Kristin ;
Morales, Carlos R. .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2008, 373 (02) :292-297
[5]
Five Lec1 CHO cell mutants have distinct Mgat1 gene mutations that encode truncated N-acetylglucosaminyltransferase [J].
Chen, W ;
Stanley, P .
GLYCOBIOLOGY, 2003, 13 (01) :43-50
[6]
Defects in the COG complex and COG-related trafficking regulators affect neuronal Golgi function [J].
Climer, Leslie K. ;
Dobretsov, Maxim ;
Lupashin, Vladimir .
FRONTIERS IN NEUROSCIENCE, 2015, 9
[7]
Climer LK, 2017, HDB EXPT PHARM
[8]
Climer LK., 2018, Molecular Biology of the Cell
[9]
The interactome of the copper transporter ATP7A belongs to a netowrk of neurodevelopmental and neurodegeneration factors [J].
Comstra, Heather S. ;
McArthy, Jacob ;
Rudin-Rush, Samantha ;
Hartwig, Cortnie ;
Gokhale, Avanti ;
Zlatic, Stephanie A. ;
Blackburn, Jessica B. ;
Werner, Erica ;
Petris, Michael ;
D'Souza, Priya ;
Panuwet, Parinya ;
Barr, Dana Boyd ;
Lupashin, Vladimir ;
Vrailas-Mortimer, Alysia ;
Faundez, Victor .
ELIFE, 2017, 6
[10]
Mannose-6-phosphate pathway: A review on its role in lysosomal function and dysfunction [J].
Coutinho, Maria Francisca ;
Prata, Maria Joao ;
Alves, Sandra .
MOLECULAR GENETICS AND METABOLISM, 2012, 105 (04) :542-550