Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Independent Transport and Sorting of Functionally Distinct Protein Families in Tetrahymena thermophila Dense Core Secretory Granules

View through CrossRef
ABSTRACT Dense core granules (DCGs) in Tetrahymena thermophila contain two protein classes. Proteins in the first class, called granule lattice (Grl), coassemble to form a crystalline lattice within the granule lumen. Lattice expansion acts as a propulsive mechanism during DCG release, and Grl proteins are essential for efficient exocytosis. The second protein class, defined by a C-terminal β/γ-crystallin domain, is poorly understood. Here, we have analyzed the function and sorting of Grt1p ( gr anule t ip), which was previously identified as an abundant protein in this family. Cells lacking all copies of GRT1 , together with the closely related GRT2 , accumulate wild-type levels of docked DCGs. Unlike cells disrupted in any of the major GRL genes, Δ GRT1 Δ GRT2 cells show no defect in secretion, indicating that neither exocytic fusion nor core expansion depends on GRT1 . These results suggest that Grl protein sorting to DCGs is independent of Grt proteins. Consistent with this, the granule core lattice in Δ GRT1 Δ GRT2 cells appears identical to that in wild-type cells by electron microscopy, and the only biochemical component visibly absent is Grt1p itself. Moreover, gel filtration showed that Grl and Grt proteins in cell homogenates exist in nonoverlapping complexes, and affinity-isolated Grt1p complexes do not contain Grl proteins. These data demonstrate that two major classes of proteins in Tetrahymena DCGs are likely to be independently transported during DCG biosynthesis and play distinct roles in granule function. The role of Grt1p may primarily be postexocytic; consistent with this idea, DCG contents from Δ GRT1 Δ GRT2 cells appear less adhesive than those from the wild type.
Title: Independent Transport and Sorting of Functionally Distinct Protein Families in Tetrahymena thermophila Dense Core Secretory Granules
Description:
ABSTRACT Dense core granules (DCGs) in Tetrahymena thermophila contain two protein classes.
Proteins in the first class, called granule lattice (Grl), coassemble to form a crystalline lattice within the granule lumen.
Lattice expansion acts as a propulsive mechanism during DCG release, and Grl proteins are essential for efficient exocytosis.
The second protein class, defined by a C-terminal β/γ-crystallin domain, is poorly understood.
Here, we have analyzed the function and sorting of Grt1p ( gr anule t ip), which was previously identified as an abundant protein in this family.
Cells lacking all copies of GRT1 , together with the closely related GRT2 , accumulate wild-type levels of docked DCGs.
Unlike cells disrupted in any of the major GRL genes, Δ GRT1 Δ GRT2 cells show no defect in secretion, indicating that neither exocytic fusion nor core expansion depends on GRT1 .
These results suggest that Grl protein sorting to DCGs is independent of Grt proteins.
Consistent with this, the granule core lattice in Δ GRT1 Δ GRT2 cells appears identical to that in wild-type cells by electron microscopy, and the only biochemical component visibly absent is Grt1p itself.
Moreover, gel filtration showed that Grl and Grt proteins in cell homogenates exist in nonoverlapping complexes, and affinity-isolated Grt1p complexes do not contain Grl proteins.
These data demonstrate that two major classes of proteins in Tetrahymena DCGs are likely to be independently transported during DCG biosynthesis and play distinct roles in granule function.
The role of Grt1p may primarily be postexocytic; consistent with this idea, DCG contents from Δ GRT1 Δ GRT2 cells appear less adhesive than those from the wild type.

Related Results

7 th International Symposium on Enabling Technologies for Life Sciences (ETP)
7 th International Symposium on Enabling Technologies for Life Sciences (ETP)
The seventh in the series of ETP Symposia (see Rapid Communications in Mass Spectrometry 2012, 26 , ...
Characterization of the immature secretory granule, an intermediate in granule biogenesis.
Characterization of the immature secretory granule, an intermediate in granule biogenesis.
The events in the biogenesis of secretory granules after the budding of a dense-cored vesicle from the trans-Golgi network (TGN) were investigated in the neuroendocrine cell line P...
Family Pediatrics
Family Pediatrics
ABSTRACT/EXECUTIVE SUMMARYWhy a Task Force on the Family?The practice of pediatrics is unique among medical specialties in many ways, among which is the nearly certain presence of ...
Metabolomics’ Change Under β-Cypermethrin Stress and Detoxification Role of CYP5011A1 in Tetrahymena thermophila
Metabolomics’ Change Under β-Cypermethrin Stress and Detoxification Role of CYP5011A1 in Tetrahymena thermophila
Background: β-cypermethrin (β-CYP) exhibits high toxicity to aquatic organisms and poses significant risks to aquatic ecosystems. Tetrahymena thermophila, a protozoa widely distrib...
Veggie NEFF media for Tetrahymena thermophila v1
Veggie NEFF media for Tetrahymena thermophila v1
The ciliate Tetrahymena thermophila has been a research organism used by a great community of scientists including biologist, geneticists and toxicologists. T. thermophila is a bac...
Secretory Mammary Carcinoma In Situ in a Cat
Secretory Mammary Carcinoma In Situ in a Cat
Background: Secretory carcinoma is a rare mammary neoplasm observed in humans and animals. It was 1st called juvenile carcinoma. Secretory carcinoma is characterized by eosinophili...
Fine structure of acinar cells of human parotid gland
Fine structure of acinar cells of human parotid gland
AbstractAcini of human parotid gland consist of pyramidal secretory cells and of flattened, basally placed, myoepithelial cells.Since secretory cells show a cytological organizatio...

Back to Top