Target intelligence / Profile preview

Mannosyl-oligosaccharide glucosidase (MOGS) (MOGS)

Target
MOGS
Molecular classification
Enzyme [3, 16], Glycoside hydrolase (Family 63) [2, 18], Glycoprotein-processing enzyme [2, 12]
01

Overview

Mannosyl-oligosaccharide glucosidase (MOGS), also known as glycoprotein-processing glucosidase I, is a critical enzyme located in the lumen of the endoplasmic reticulum (ER) that initiates the processing of N-linked oligosaccharides [1, 2]. It specifically catalyzes the removal of the distal alpha-1,2-linked glucose residue from the Glc3Man9GlcNAc2 precursor, which is the first step in the trimming of N-glycans after their transfer to nascent proteins [3, 4]. This enzymatic activity is essential for the subsequent interaction of glycoproteins with ER-resident chaperones, such as calnexin and calreticulin, which facilitate proper protein folding and quality control [8, 11]. Genetic deficiencies in the MOGS gene lead to a rare condition known as Congenital Disorder of Glycosylation type IIb (MOGS-CDG), characterized by multi-systemic symptoms including neurological impairment and paradoxical immune resistance to certain viruses [1, 6]. MOGS is a significant therapeutic target for broad-spectrum antiviral agents because many enveloped viruses, including HIV, Hepatitis C, and Dengue, rely on the host's glycosylation machinery for the maturation of their envelope proteins [5, 7]. Inhibitors such as celgosivir and miglustat target this enzyme to disrupt viral protein folding, thereby preventing the production of infectious virions [1, 12]. However, the clinical application of these inhibitors is often limited by gastrointestinal side effects, such as diarrhea and flatulence, caused by the off-target inhibition of intestinal alpha-glucosidases [14, 17].

Other names
Glycoprotein-processing glucosidase IGlucosidase IGCS1ER glucosidase Ialpha-Glucosidase I
02

Mechanism of action

Competitive inhibition of the enzyme prevents the removal of the terminal alpha-1,2-linked glucose from N-glycan precursors, leading to the accumulation of misfolded glycoproteins and their subsequent degradation via the ER-associated degradation (ERAD) pathway [1, 5, 7].

03

Biological functions

N-glycan processing [2, 4]Protein folding and quality control [8, 11]Trimming of N-linked oligosaccharides [1, 3]Viral assembly and maturation [1, 7]
04

Disease associations

Congenital disorder of glycosylation type IIb (MOGS-CDG) [1, 3, 6]Viral infection (e.g., HIV, HCV, Dengue, Ebola) [1, 5, 7]Infection [1, 15]
05

Safety considerations

Gastrointestinal distress (diarrhea, flatulence) [1, 14]Off-target inhibition of intestinal disaccharidases [1, 17]Potential systemic interference with host glycoprotein folding [11, 14]
06

Interacting drugs

Celgosivir [1, 12]

4 more in the full profile.

07

Biomarkers

Accumulation of Glc3Man9GlcNAc2 oligosaccharides [1, 6]Serum transferrin glycoforms (detected via isoelectric focusing) [6, 21]Hypogammaglobulinemia [1, 6]

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