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The Importance of Correct Protein Concentration for Kinetics and Affinity Determination in Structure-function Analysis
Published on: March 17, 2010
Human cystatin C forms an inactive dimer during intracellular trafficking in transfected CHO cells
G S Merz1, E Benedikz, V Schwenk
1New York State Office of Mental Retardation and Developmental Disabilities, Staten Island, New York, NY 10314, USA. scrape@bway.net
Insights
Human cystatin C undergoes transient dimerization in the endoplasmic reticulum, inactivating it before secretion. This cystatin C dimer dissociates before release, and redimerizes in lysosomes, preventing cysteine protease inhibition.
Area of Science:
- Cellular Biology
- Biochemistry
- Molecular Biology
Background:
- Human cystatin C is a cysteine protease inhibitor.
- Its cellular processing and extracellular fate are not fully understood.
- Investigating cystatin C processing is crucial for understanding Icelandic Hereditary Cerebral Hemorrhage with Amyloidosis (HCHWA-I).
Purpose of the Study:
- To characterize the cellular trafficking, secretion, and extracellular fate of human cystatin C.
- To understand the role of cystatin C processing in HCHWA-I.
Main Methods:
- Utilized Chinese hamster ovary (CHO) cells transfected with human cystatin C.
- Analyzed cystatin C by gel filtration and immunoreactivity.
- Investigated the effect of brefeldin A on endoplasmic reticulum (ER) exit and cystatin C dimerization.
- Studied extracellular cystatin C uptake and lysosomal trafficking.
Main Results:
- Human cystatin C is constitutively secreted with a half-life of 72 minutes.
- Three immunoreactive species were identified: monomer (11 kDa), dimer (33 kDa), and >70 kDa complex.
- Intracellular monomeric cystatin C is active, while the dimer is inactive.
- Dimerization occurs in the ER, and dimer dissociation precedes secretion.
- Extracellular monomeric cystatin C dimerizes in lysosomes.
Conclusions:
- A novel mechanism of transient dimerization regulates cystatin C activity during intracellular trafficking and extracellular uptake.
- Dimerization serves as an inactivation mechanism, preventing inhibition of cysteine proteases.
- This transient dimerization is a key aspect of cystatin C's cellular processing and function.
Abstract:
To define the cellular processing of human cystatin C as well as to lay the groundwork for investigating its contribution to lcelandic Hereditary Cerebral Hemorrhage with Amyloidosis (HCHWA-I), we have characterized the trafficking, secretion, and extracellular fate of human cystatin C in transfected Chinese hamster ovary (CHO) cells. It is constitutively secreted with an intracellular half-life of 72 min. Gel filtration of cell lysates revealed the presence of three cystatin C immunoreactive species; an 11 kDa species corresponding to monomeric cystatin C, a 33 kDa complex that is most likely dimeric cystatin C and immunoreactive material, > or = 70 kDa, whose composition is unknown. Intracellular monomeric cystatin C is functionally active as a cysteine protease inhibitor, while the dimer is not. Medium from the transfected CHO cells contained only active monomeric cystatin C indicating that the cystatin C dimer, formed during intracellular trafficking, is converted to monomer at or before secretion. Cells in which exit from the endoplasmic reticulum (ER) was blocked with brefeldin A contained the 33 kDa species, indicating that cystatin C dimerization occurs in the ER. After removal of brefeldin A, there was a large increase in intracellular monomer suggesting that dimer dissociation occurs later in the secretion pathway, after exiting the ER but prior to release from the cell. Extracellular monomeric cystatin C was found to be internalized into lysosomes where it again dimerized, presumably as a consequence of the low pH of late endosome/lysosomes. As a dimer, cystatin C would be prevented from inhibiting the lysosomal cysteine proteases. These results reveal a novel mechanism, transient dimerization, by which cystatin C is inactivated during the early part of its trafficking through the secretory pathway and then reactivated prior to secretion. Similarly, its uptake by the cell also leads to its redimerization in the lysosomal pathway.
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