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Role of endoplasmic reticular calcium in oligosaccharide processing of alpha 1-antitrypsin
G Kuznetsov1, M A Brostrom, C O Brostrom
1Department of Pharmacology, Robert Wood Johnson Medical School, University of Medicine and Dentistry of New Jersey, Piscataway 08854.
Abstract:
Mobilization of Ca2+ from the endoplasmic reticulum (ER) suppresses translational initiation and inhibits post-translational processing and secretion of glycoproteins. This study explores the mechanism whereby ionomycin, a Ca2+ ionophore, and thapsigargin, an ER Ca(2+)-ATPase inhibitor, promote retention of alpha 1-antitrypsin (alpha 1-AT) bearing high mannose, endoglycosidase H (Endo H)-sensitive oligosaccharide side chains within the ER of HepG2 cells. Arrest occurred at the removal of mannose residues such that intermediates with Man7-9GlcNAc2 side chains accumulated with the Man8-9GlcNAc2 structures predominating. Maturation of alpha 1-AT bearing Man5-6GlcNAc2 side chains was unaffected. Inhibition of alpha 1-AT processing by ionomycin occurred independently of translational suppression. Forms of alpha 1-AT identical to those retained with ionomycin or thapsigargin were observed upon treatment with the alpha-1,2-mannosidase inhibitor 1-deoxymannojirimycin whereas castanospermine, an inhibitor of ER alpha-glucosidase I, produced different forms of the glycoprotein. Neither inhibitor impaired transport or secretion of alpha 1-AT. With brefeldin A, which causes redistribution of Golgi enzymes to the ER, alpha 1-AT was retained intracellularly but acquired resistance to Endo H. With ionomycin, thapsigargin, or 1-deoxymannojirimycin-treated cells, however, brefeldin A failed to promote further processing of the glycoprotein. Possible mechanisms for the suppression of alpha 1-AT processing at the alpha-1,2-mannosidase step by Ca(2+)-mobilizing agents are discussed. Excepting tunicamycin, traditional inhibitors of protein processing did not affect amino acid incorporation.
Insights
Mobilizing calcium from the endoplasmic reticulum (ER) halts glycoprotein processing. This study reveals that ionomycin and thapsigargin prevent alpha 1-antitrypsin maturation by inhibiting mannose removal in the ER.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Endoplasmic reticulum (ER) calcium (Ca2+) levels regulate protein processing and secretion.
- Mobilization of ER Ca2+ impacts translational initiation and glycoprotein maturation.
Purpose of the Study:
- To investigate how Ca2+ mobilization affects alpha 1-antitrypsin (alpha 1-AT) processing within the ER.
- To elucidate the specific step of oligosaccharide modification inhibited by Ca2+-mobilizing agents.
Main Methods:
- HepG2 cells were treated with ionomycin (Ca2+ ionophore) or thapsigargin (ER Ca2+-ATPase inhibitor).
- Analysis of alpha 1-AT oligosaccharide structures using endoglycosidase H (Endo H) sensitivity.
- Treatment with specific glycosidase inhibitors (1-deoxymannojirimycin, castanospermine) and brefeldin A.
Main Results:
- Ionomycin and thapsigargin caused accumulation of high-mannose, Endo H-sensitive alpha 1-AT intermediates in the ER.
- Processing arrest occurred at the alpha-1,2-mannosidase step, with Man8-9GlcNAc2 structures predominating.
- Inhibition was independent of translational suppression and mimicked by 1-deoxymannojirimycin but not castanospermine.
Conclusions:
- Ca2+ mobilization by ionomycin and thapsigargin specifically inhibits alpha-1,2-mannosidase activity in the ER.
- This leads to the retention of incompletely processed alpha 1-AT.
- The findings suggest a novel regulatory role for ER Ca2+ in glycoprotein quality control.