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Pulse-chase Analysis of N-linked Sugar Chains from Glycoproteins in Mammalian Cells
Published on: April 27, 2010
Golgi α-mannosidases regulate cell surface N-glycan type and ectodomain shedding of the transmembrane protease corin
Hao Wang1, Yi-Shi Liu2, Yingfei Peng1
1Department of Laboratory Medicine, Zhongshan Hospital, Fudan University, Shanghai, China.
Abstract:
Corin is a transmembrane protease that activates natriuretic peptides on the cell membrane. Reduced cell surface targeting or increased ectodomain shedding disrupts cell membrane homeostasis of corin, thereby impairing its cell surface expression and enzyme activity. N-glycans are essential in corin ectodomain shedding. Lack of N-glycans promotes corin ectodomain shedding in the juxtamembrane and frizzled-1 domains. The nascent N-glycans, transferred onto the polypeptide of corin, undergo multistep N-glycan processing in the endoplasmic reticulum and Golgi. It remains unclear how trimming by Golgi α-mannosidases, the critical N-glycan processing steps in N-glycan maturation, may regulate corin biosynthesis. In this study, we examined the effects of kifunensine and swainsonine, the inhibitors for α-mannosidases I and II, on corin expression and function. Western analysis of corin proteins in cell lysates and conditioned media from the inhibitor-treated corin-stable HEK293 cells and AC16 cells showed that both α-mannosidases I and II were required to maintain complex N-glycans on cell surface corin and protect corin from ectodomain shedding in the juxtamembrane and frizzled-1 domains. Cell viability analysis revealed that inhibition of α-mannosidase I or II sensitized cardiomyocytes to hydrogen peroxide-induced injury via regulating corin. Moreover, either one of the two coding genes was sufficient to perform Golgi α-mannosidase I trimming of N-glycans on corin. Similarly, this sufficiency was observed in Golgi α-mannosidase II-coding genes. Inhibition of ectodomain shedding restored corin zymogen activation from kifunensine- or swainsonine-induced reduction. Together, our results show the important roles of Golgi α-mannosidases in maintaining cell membrane homeostasis and biological activities of corin.
Insights
Golgi α-mannosidases are crucial for maintaining corin’s cell surface expression and activity by preventing ectodomain shedding. Inhibiting these enzymes impairs corin function and sensitizes cardiomyocytes to injury.
Area of Science:
- Biochemistry
- Cell Biology
- Glycobiology
Background:
- Corin is a transmembrane protease vital for activating natriuretic peptides.
- Ectodomain shedding and reduced cell surface expression disrupt corin's function.
- N-glycans play a role in corin ectodomain shedding, but Golgi α-mannosidase involvement is unclear.
Purpose of the Study:
- To investigate the role of Golgi α-mannosidases (I and II) in corin biosynthesis, expression, and function.
- To determine how inhibiting Golgi α-mannosidases affects corin ectodomain shedding and cell surface stability.
- To assess the impact of altered corin function on cardiomyocyte viability.
Main Methods:
- Utilized HEK293 and AC16 cell lines stably expressing corin.
- Administered kifunensine and swainsonine to inhibit Golgi α-mannosidases I and II, respectively.
- Performed Western blot analysis on cell lysates and conditioned media.
- Conducted cell viability assays, including assessment of hydrogen peroxide-induced injury.
Main Results:
- Both Golgi α-mannosidase I and II are necessary for complex N-glycan formation on cell surface corin.
- Inhibition of these enzymes increased corin ectodomain shedding in specific domains.
- Cardiomyocyte viability decreased upon α-mannosidase inhibition, indicating corin-mediated sensitization to injury.
- Inhibition of ectodomain shedding partially restored corin zymogen activation.
Conclusions:
- Golgi α-mannosidases are critical regulators of corin cell membrane homeostasis.
- Proper N-glycan processing by these enzymes protects corin from shedding and maintains its enzymatic activity.
- Targeting Golgi α-mannosidases impacts corin function and cellular response to stress, highlighting their therapeutic potential.
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