1.Roles of intracellular calcium and monomeric G-proteins in regulating exocytosis of human neutrophils.
Ying ZHU ; Jun-Han WANG ; Jian-Min WU ; Tao XU ; Chun-Guang ZHANG
Acta Physiologica Sinica 2003;55(6):699-704
Neutrophils play a major role in host defense against microbial infection. There are some clues indicate that neutrophils may also play a role in the pathophysiology of the airway obstruction in chronic asthma. We studied the roles of intracellular calcium and GTP gamma S in the regulation of neutrophils exocytosis using pipette perfusion and membrane capacitance measurement technique in whole cell patch clamp configuration. The results showed that the membrane capacitance increase induced by calcium revealed a biphasic process. The first phase occurred when the calcium level was between 0.2-14 micromol/L with a plateau amplitude of 1.23 pF and a calcium EC50 of 1.1 micromol/L. This phase might correspond to the release of the tertiary granules. The second phase occurred when the calcium concentration was between 20-70 micromol/L with a plateau increment of 6.36 pF, the calcium EC50 being about 33 micromol/L. This phase might represent the release of the primary and secondary granules. Intracellular calcium also simultaneously increased the exocytotic rate and the eventual extent in neutrophils. On the other hand, GTP gamma S can increase the exocytotic rate in a dose-dependent manner but had no effect on the eventual extent of membrane capacitance increment (>6 pF) if the cell was stimulated for a long period (>20 min). GTP gamma S (ranging from 20 to 100 micromol/L) induced the neutrophils to release all four types of the granules at very low intracellular calcium level.
Calcium
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metabolism
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Cell Degranulation
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drug effects
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Exocytosis
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drug effects
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GTP-Binding Proteins
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metabolism
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physiology
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Guanosine Triphosphate
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analogs & derivatives
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pharmacology
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Humans
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Neutrophils
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metabolism
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physiology
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Patch-Clamp Techniques
2.Echinococcus granulosus cyst fluid(EgCF) inhibits the migration and phagocytic function of mouse macrophages induced by LPS via inducing cytoskeletal rearrangement.
Feiming HE ; Dan DONG ; Yuting CHEN ; Yuan LIAO ; Ke LIN ; Jin MENG ; Xiangwei WU ; Xueling CHEN
Chinese Journal of Cellular and Molecular Immunology 2023;39(5):385-390
Objective To investigate the effect of Echinococcus granulosus cyst fluid(EgCF) on the cytoskeletal rearrangement and phagocytosis and the migration of macrophages induced by lipopolysaccharide(LPS). Methods Peritoneal macrophages of C57BL/6 mice were isolated and cultured in vitro, and divided into control group and LPS group and LPS combined with EgCF group. After 48 hours of treatment, filamentous actin (F-actin) changes were observed with rhodamine-labelled phalloidin staining and fluorescence microscopy; TranswellTM chamber was used to test cell migration ability and flow cytometry to test cell phagocytosis. After 1 hour of treatment, PI3K and AKT, phosphorylated AKT (p-AKT), Rac1, guanosine triphospho-Rac1 (GTP-Rac1), WASP and Arp2 protein expressions were detected with Western blot analysis. Results Compared with the control group, after LPS stimulation, macrophages were deformed significantly; pseudopodia increased; actin cytoskeleton increased and was more distributed in pseudopodia; the ability of migration and phagocytosis were significantly improved, and the expression of PI3K, p-AKT, GTP-Rac1, WASP and Arp2 proteins significantly increased. EgCF treatment caused cell shrinkage and disappearance of pseudopodia protrusions of LPS-activated cells, and led to the reduced phagocytic and migratory of cells; the protein expression of PI3K, p-AKT, GTP-Rac1, WASP and Arp2 decreased significantly compared with the LPS group. Conclusion LPS induces the migration and enhances phagocytosis of macrophages while EgCF inhibits these effects, which is related to actin cytoskeleton rearrangement.
Mice
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Animals
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Lipopolysaccharides/pharmacology*
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Echinococcus granulosus/metabolism*
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Proto-Oncogene Proteins c-akt
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Cyst Fluid/metabolism*
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Mice, Inbred C57BL
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Macrophages/metabolism*
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Phagocytosis
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Actins/metabolism*
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Phosphatidylinositol 3-Kinases/metabolism*
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Guanosine Triphosphate/pharmacology*
3.Study on the chaperone properties of conserved GTPases.
Xiang WANG ; Jiaying XUE ; Zhe SUN ; Yan QIN ; Weimin GONG
Protein & Cell 2012;3(1):44-50
As a large family of hydrolases, GTPases are widespread in cells and play the very important biological function of hydrolyzing GTP into GDP and inorganic phosphate through binding with it. GTPases are involved in cell cycle regulation, protein synthesis, and protein transportation. Chaperones can facilitate the folding or refolding of nascent peptides and denatured proteins to their native states. However, chaperones do not occur in the native structures in which they can perform their normal biological functions. In the current study, the chaperone activity of the conserved GTPases of Escherichia coli is tested by the chemical denaturation and chaperone-assisted renaturation of citrate synthase and α-glucosidase. The effects of ribosomes and nucleotides on the chaperone activity are also examined. Our data indicate that these conserved GTPases have chaperone properties, and may be ancestral protein folding factors that have appeared before dedicated chaperones.
Citrate (si)-Synthase
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chemistry
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Cloning, Molecular
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Conserved Sequence
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Escherichia coli
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cytology
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enzymology
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GTP Phosphohydrolases
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chemistry
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genetics
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isolation & purification
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metabolism
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Guanosine Diphosphate
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pharmacology
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Guanosine Triphosphate
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analogs & derivatives
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pharmacology
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Molecular Chaperones
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chemistry
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genetics
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isolation & purification
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metabolism
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Protein Denaturation
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drug effects
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Protein Renaturation
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drug effects
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Ribosomes
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metabolism
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alpha-Glucosidases
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chemistry
4.Phosphorylation of 46-kappa Da protein of synaptic vesicle membranes is stimulated by GTP and Ca2+/calmodulin.
Ah Ram KIM ; Won Ho CHOI ; Sae Ra LEE ; Jun Sub KIM ; Chan Young JEON ; Jong Il KIM ; Jae Bong KIM ; Jae Yong LEE ; Eung Gook KIM ; Jae Bong PARK
Experimental & Molecular Medicine 2002;34(6):434-443
The release of neurotransmitter is regulated in the processes of membrane docking and membrane fusion between synaptic vesicles and presynaptic plasma membranes. Synaptic vesicles contain a diverse set of proteins that participate in these processes. Small GTP-binding proteins exist in the synaptic vesicles and are suggested to play roles for the regulation of neurotransmitter release. We have examined a possible role of GTP-binding proteins in the regulation of protein phosphorylation in the synaptic vesicles. GTPgammaS stimulated the phosphorylation of 46 kappa Da protein (p46) with pI value of 5.0-5.2, but GDPbetaS did not. The p46 was identified as protein interacting with C-kinase 1 (PICK-1) by MALDI-TOF mass spectroscopy analysis, and anti-PICK-1 antibody recognized the p46 spot on 2-dimensional gel electrophoresis. Rab guanine nucleotide dissociation inhibitor (RabGDI), which dissociates Rab proteins from SVs, did not affect phosphorylation of p46. Ca2+/ calmodulin (CaM), which causes the small GTP- binding proteins like Rab3A and RalA to dissociate from the membranes and stimulates CaM- dependnet protein kinase(s) and phosphatase, strongly stimulate the phosphorylation of p46 in the presence of cyclosporin A and cyclophylin. However, RhoGDI, which dissociates Rho proteins from membranes, reduced the phosphorylation of p46 to the extent of about 50%. These results support that p46 was PICK-1, and its phosphorylation was stimulated by GTP and Ca2+/CaM directly or indirectly through GTP-binding protein(s) and Ca2+/CaM effector protein(s). The phosphorylation of p46 (PICK-1) by GTP and Ca2+/CaM may be important for the regulation of transporters and neurosecretion.
Animals
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Calcium/*metabolism
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Calmodulin/*metabolism
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Carrier Proteins/*chemistry/*metabolism
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Guanine Nucleotide Dissociation Inhibitors/metabolism
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Guanosine Triphosphate/metabolism/*pharmacology
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Molecular Weight
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Monomeric GTP-Binding Proteins/metabolism
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Phosphorylation/drug effects
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Rats
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Recombinant Fusion Proteins/*chemistry/*metabolism
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Synaptic Membranes/chemistry/drug effects/*metabolism
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Synaptic Vesicles/chemistry/drug effects/*metabolism