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H C Pant

Publications and source records attributed to H C Pant.

At least 73 records · Page 4Linked to original sources

Characterization of neurofilament-associated protein kinase activities from bovine spinal cord.

1. A neurofilament-enriched preparation from bovine spinal cord contains endogenous protein kinases that phosphorylate high, middle, and low molecular weight neurofilament subunits (NF-H, NF-M, and NF-L), as well as certain other endogenous and exogenous substrates. 2. Most of this associated kinase activity can be separated from the neurofilament subunits and the bulk of the protein by extraction of the neurofilament preparation with 0.8 M KCl. Assays using specific exogenous substrates, activators, and inhibitors for known kinases reveal significant levels of Ca2(+)-calmodulin-dependent, cyclic nucleotide-dependent, Ca2(+)-phosphatidylserine diglyceride-dependent, and regulator-independent kinase activities in the high-salt extract. 3. Fractionation of the salt extract on a gel filtration column resolves a regulator-independent kinase activity identified by its ability to phosphorylate purified NF-M. This preparation can phosphorylate all three neurofilament proteins either in purified form or in the assembled form, as well as alpha-casein. Only the regulator-independent kinase activity in this fraction is responsible for the phosphorylation of neurofilament proteins. 4. While this partially purified kinase activity does not show a strong substrate specificity between the three neurofilament subunits, the phosphorylation pattern it produces upon incubation with salt-extracted neurofilaments is similar to the regulator-independent phosphorylation pattern found in the original neurofilament preparation and, thus, represents a useful starting point for the further purification of this neurofilament-associated kinase activity.

Animals↗

Intracellular calcium and hormone secretion in clonal AtT-20/D16-16 anterior pituitary cells.

Intracellular ionized Ca2+ concentration was measured in clonal mouse anterior pituitary tumor cells with the fluorescent Ca2+ indicator Quin-2. In control physiological solution, free cytoplasmic Ca2+ concentration was found to be 139 +/- 11 nM. Replacement of 50 mM NaCl by 50 mM KCl in the extracellular fluid caused a 29 mV depolarization and a 4.2-fold increase in the concentration of free cytoplasmic Ca2+. Under comparable depolarizing conditions, a specific influx of 2.66 nmole of 45Ca2+ per mg protein was detected 1 min after addition of high K+, accompanied by a marked increase in the initial rate of beta-endorphin secretion. In the absence of external Ca2+, depolarization by K+ produced little or no increase in either intracellular free Ca2+ or hormone release. Incubation of AtT-20/D16-16 cells in the secretagogue norepinephrine led to a depolarization accompanied by an increase in spontaneous action potential frequency and a marked elevation in cytosolic Ca2+ concentration. Exposure of cells to somatostatin, an inhibitor of hormone release, led to only transient decreases in burst frequency and no significant reduction in intracellular Ca2+ levels. These results indicate that in addition to intracellular Ca2+, other factors also control secretory activity in AtT-20/D16-16 anterior pituitary cells.

Action Potentials↗

Dephosphorylation of neurofilament proteins enhances their susceptibility to degradation by calpain.

The degradation of phosphorylated and dephosphorylated neurofilament proteins by the Ca2+-activated neutral proteinase calpain was studied. Neurofilaments were isolated from bovine spinal cord, dephosphorylated by alkaline phosphatase (from Escherichia coli) and radioiodinated with [125I]-Bolton-Hunter reagent. The radioiodinated neurofilament proteins (untreated and dephosphorylated) were incubated in the presence and absence of calpain from rabbit skeletal muscle, and the degradation rates of large (NF-H), mid-sized (NF-M) and small (NF-L) neurofilament polypeptides were analysed by SDS/polyacrylamide-gel electrophoresis and autoradiography. The degradation of dephosphorylated neurofilament proteins occurred at a higher rate, and to a greater extent, than did that of the phosphorylated (untreated) neurofilament proteins. The dephosphorylated high-molecular-mass neurofilament (NF-HD) was proteolyzed 6 times more quickly than the untreated NF-H. The degradation rate of the NF-M and NF-L neurofilament proteins was also enhanced after dephosphorylation, but less than that of NF-H. This indicates that the dephosphorylation of neurofilament proteins can increase their sensitivity to calpain degradation.

Alkaline Phosphatase↗

Spontaneous calcium release induced by ethanol in the isolated rat brain microsomes.

Ethanol-induced neurotransmitter release in unstimulated synaptosomes was found to be independent of extrasynaptosomal Ca2+ concentration, indicating a redistribution of intracellular Ca2+. The effects of alcohol on microsomal Ca2+ uptake and release were studied. In vitro addition of 100 mM ethanol had no effect on ATP-dependent Ca2+ accumulation in the microsomes. However, the same amount of ethanol released 25% of total accumulated Ca2+ from the microsomes. Ethanol induced Ca2+ release in a concentration-dependent manner over the range 30 mM-500 mM. The amount of Ca2+ release increased with higher alcohols. The effect of alcohol was temperature-dependent and inhibited at 0 degrees C. These results indicate that the known stimulatory effects of ethanol on resting release of neurotransmitters may be due to the microsomal release of Ca2+.

Animals↗

Potassium-channel blockers inhibit inositol trisphosphate-induced calcium release in the microsomal fractions isolated from the rat brain.

The ionic mechanism of inositol trisphosphate (InsP3)-induced Ca2+ release was investigated in microsomes (microsomal fractions) isolated from rat brain. InsP3 stimulated Ca2+ release from microsomes incubated in media containing 100 mM-KCl. The InsP3-induced Ca2+ release was insensitive to a variety of Ca2+-channel blockers; however, the K+-channel blockers tetraethylammonium chloride (TEA; 1 mM) and 9-tetraethylammonium chloride (9-TEA; 1 mM) blocked InsP3-induced Ca2+ release. Moreover, addition of InsP3 increased 86Rb+ influx into the microsomes. The influx of 86Rb+ also was sensitive to TEA and 9-TEA. The above results suggest that InsP3-induced Ca2+ release requires an opposite flow of K+ ions, and modulation of K+ channels by TEA and 9-TEA may underlie the inhibition of InsP3-induced Ca2+ release from brain microsomes by these agents.

Animals↗

Identification and quantification of calcium-binding proteins in squid axoplasm.

The identities and quantities of calcium-binding proteins were determined in axoplasm isolated from the squid giant axon. 45Ca-binding assays on nitrocellulose filters containing axoplasm proteins separated by SDS-polyacrylamide electrophoresis revealed 4 major calcium-binding bands. These included the high-molecular-weight (Mr greater than 330 and 220 X 10(3] neurofilament proteins, an unidentified protein band that migrated around Mr 55,000, and a diverse group of proteins that migrated together around Mr 17,000. The low-molecular-weight (Mr 17,000) calcium-binding proteins could be resolved into calmodulin (ca. 120 mumol/kg axoplasm), 2 other Mr 17,000 calcium-binding proteins, and a small amount of calcineurin B. It is estimated that these calcium-binding proteins in squid axoplasm could theoretically bind about 1 mmol Ca2+/kg axoplasm. 125I-Calmodulin overlay and Western blot analyses disclosed a number of calmodulin-binding proteins in axoplasm. These included fodrin, calcineurin A, and Ca2+/CaM protein kinase II subunits.

Animals↗

ATP-dependent and ATP-independent calcium buffers determined in isolated squid axoplasm by axoplasmic dilution using calcium-selective electrodes.

Ca2+ buffering in axoplasm extruded from the squid giant axon was studied by axoplasmic dilution and Ca2+-selective electrodes. ATP-dependent Ca2+ buffering was lost when metabolism and endogenous ATP production were inhibited by axoplasmic dilution. Under these conditions ('low ATP' axoplasmic suspensions) Ca2+ activity (aCa) increased spontaneously. This increase was prevented by ATP addition. Addition of a Ca2+ load to axoplasmic suspensions following ATP addition ('normal ATP' axoplasmic suspensions) did not increase aCa. When a Ca2+ load was added to low ATP axoplasmic suspensions the value of aCa was only 5% of that expected from the Ca2+ load in a non-Ca2+ buffered system. Addition of the Ca2+ ionophore A23187 to Ca2+-loaded normal ATP axoplasmic suspensions increased aCa to a value 5% of that expected in a non-Ca2+ buffered system. Addition of A23187 or KCN to low ATP axoplasmic suspensions did not increase aCa above that produced by axoplasmic dilution. These data indicate the presence of ATP-dependent and ATP-independent Ca2+ buffering mechanisms in the squid axoplasm and that the ATP-dependent Ca2+ buffering was mediated by membrane-limited organelles presumably the mitochondria and endoplasmic reticulum.

Adenosine Triphosphate↗

Inositol trisphosphate-induced calcium release in brain microsomes.

The effects of different ionic media on Ca2+ uptake and release in isolated brain microsomes were investigated. KCl (100 mM) provided the best medium for Ca2+ uptake in the presence of ATP. The effect of myo-inositol 1,4,5-trisphosphate (IP3) on Ca2+ release was examined and was maximum at 0.2 microM. IP3-induced Ca2+ release was dependent on extramicrosomal free Ca2+ concentration with maximal release at 5.0 microM free Ca2+. Replacement of KCl by sucrose or NaCl did not show any response to IP3. Electron microscopy showed that the microsomal fraction consisted of characteristic endoplasmic reticulum-derived vesicular profiles and were free of mitochondria or plasma membrane contamination. Our results support the concept that the endoplasmic reticulum is the target for IP-3 induced mobilization of Ca2+ in the cell.

Adenosine Triphosphate↗

Calcium/calmodulin-dependent protein kinase II in squid synaptosomes.

The Ca2+/calmodulin (CaM)-dependent protein kinase II system in squid nervous tissue was investigated. The Ca2+/CaM-dependent protein kinase II was found to be very active in the synaptosome preparation from optic lobe, where it was associated with the high-speed particulate fraction. Incubation of the synaptosomal homogenate with calcium, calmodulin, magnesium, and ATP resulted in partial and reversible conversion of the Ca2+/CaM-dependent protein kinase II from its calcium-dependent form to a calcium-independent species. The magnitude of this conversion reaction could be increased by inclusion of the protein phosphatase inhibitor NaF or by substitution of adenosine 5'-O-(3-thiotriphosphate) for ATP. When [gamma-32P]ATP was used, proteins of 54 and 58 kilodaltons (kDa) as well as proteins greater than 100 kDa were rapidly 32P-labeled in a calcium-dependent manner. Major 125I-CaM binding proteins in the synaptosome membrane fraction were 38 and 54 kDa. The Ca2+/CaM-dependent protein kinase II was purified from the squid synaptosome and was shown to consist of 54- and 58-60-kDa subunits. The purified kinase, like Ca2+/CaM-dependent protein kinase II from rat brain, catalyzed autophosphorylation associated with formation of the calcium-independent form. These studies, characterizing the Ca2+/CaM-dependent protein kinase II in squid neural tissue, are supportive of the putative role of this kinase in regulating calcium-dependent synaptic functions.

Adenosine Triphosphate↗

Biochemical and immunocytochemical characterization and distribution of phosphorylated and nonphosphorylated subunits of neurofilaments in squid giant axon and stellate ganglion.

Monoclonal antibodies to squid neurofilament (aNFP) and intermediate filament (aIFA) proteins were used as probes for the biochemical and immunocytochemical analyses of neurofilament structure and distribution in the squid giant axon and stellate ganglion. On Western blots the aNFP antibody stained exclusively the 220 kDa and high-molecular-weight (HMW) components of neurofilaments in the giant axon, whereas the aIFA antibody primarily labeled the 60 kDa protein in the giant axon and the 60 and 65 kDa proteins in the stellate ganglion. Dephosphorylation of axoplasmic proteins by alkaline phosphatase resulted in a decrease in the molecular weights of both the 220 kDa and HMW neurofilament proteins and a concomitant loss of reactivity with the aNFP antibody on Western blots. This indicated that the aNFP antibody is specific for a phosphorylated epitope in the neurofilament. Increased dephosphorylation of the 220 kDa protein led to an enhanced immunostaining of the resultant 190 kDa polypeptide by the aIFA antibody, suggesting that the phosphorylated epitope may mask the conserved epitope recognized by aIFA. Light and electron microscopic immunocytochemical studies show intense labeling by the aNFP antibody in the giant axon. In contrast, the aIFA antibody labeled the glial cells around the giant axon intensely, while labeling of the giant axon itself was considerably less than that with the aNFP antibody. Since the 60 kDa protein in axoplasm is intensely stained by the aIFA antibody on Western blots, the relatively low amounts of labeling seen on semithin and thin sections of the giant axon by this antibody may be due to the masking of the 60 kDa protein by in situ fixed axoplasmic proteins. However, the aIFA antibody intensely labeled glial cells within the stellate ganglion and "islands" of filaments and nuclear membranes within ganglion cells. No reactivity for either antibody was seen in synapses. The aNFP antibody specifically labeled "beadlike" portions and cross-bridges on the axonal neurofilaments, suggesting that these components consist of the 220 kDa and HMW proteins. In contrast, the aIFA antibody labeled relatively smooth filaments in ganglion and glial cells. These data suggest that the 65 kDa protein represents the squid glial filament protein and that the 60 kDa protein found in axoplasm represents the low-molecular-weight subunit in the axonal neurofilament. The latter appears to be formed and/or organized in "islands" of filaments within ganglion cells.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Characterization of a cyclic nucleotide- and calcium-independent neurofilament protein kinase activity in axoplasm from the squid giant axon.

The phosphorylation activity associated with a neurofilament-enriched cytoskeletal preparation isolated from the squid giant axon has been studied and compared to the phosphorylation activities in intact squid axoplasm. The high molecular weight (greater than 300 kDa) and 220-kDa neurofilament proteins are the major endogenous substrates for the kinases in the axoplasm and the neurofilament preparation, whereas 95- and less than 60-kDa proteins are the major phosphoproteins in the ganglion cell preparation. The squid axon neurofilament (SANF) protein kinase activity appeared to be both cAMP and Ca2+ independent and could phosphorylate both casein (Km = 40 microM) and histone (Km = 180 microM). The SANF protein kinase could utilize either ATP or GTP in the phosphotransferase reaction, with a Km for ATP of 58 microM and 129.4 microM for GTP when casein was used as the exogenous substrate; and 25 and 98.1 microM for ATP and GTP, respectively, when the endogenous neurofilament proteins were used as substrates. The SANF protein kinase activity was only slightly inhibited by 2,3-diphosphoglycerate and various polyamines at high concentrations and was poorly inhibited by heparin (34% inhibition at 100 micrograms/ml). The failures of heparin to significantly inhibit and the polyamines to stimulate the SANF protein kinase indicate that it is not a casein type II kinase. The relative efficacy of GTP as a phosphate donor indicates that SANF protein kinase differs from known casein type I kinases. Phosphorylated (32P-labeled) neurofilament proteins were only slightly dephosphorylated in the presence of axoplasm or stellate ganglion cell supernatants, and the neurofilament-enriched preparation did not dephosphorylate 32P-labeled neurofilament proteins. The axoplasm and neurofilament preparations had no detectable protein kinase inhibitor activity, but a strong inhibitor activity, which was not dialyzable but was heat inactivatable, was found in ganglion cells. This inhibitor activity may account for the low phosphorylation activity found in the stellate ganglion cells and may indicate inhibitory regulation of SANF protein kinase activity in the ganglion cell bodies.

Animals↗

Calcium-activated proteolysis of neurofilament proteins in the squid giant neuron.

The phosphorylation and proteolysis of squid neurofilament proteins by endogenous kinase and calcium-activated protease activities, respectively, were studied. When axoplasm was incubated in the presence of [gamma-32P]ATP, most of the phosphate was incorporated into two neurofilament proteins: a 220-kilodalton (NF-220) and a high-molecular-weight (HMW) protein. When this phosphorylated axoplasm was subjected to endogenous calcium-activated proteolysis, two significant phosphorylated fragments were generated, i.e., a soluble 110K fragment and a pelletable 100K fragment. Immunochemical and other analyses suggest that the pelletable 100K fragment contains the common helical neurofilament rod region and that the soluble 110K protein is the putative side arm of the NF-220. In contrast, neither the HMW or the NF-220 was detected in the region of the stellate ganglion which contains the cell bodies of the giant axon. However, this region did contain a number of proteins that were sensitive to calcium-activated proteolysis and reacted with a monoclonal intermediate filament antibody. This intermediate filament antibody reacts with most of the axoplasmic proteins that copurify with neurofilaments, i.e., in the order of their intermediate filament antibody staining intensity, a 60K, 65K, 220K, and 74K protein. In the cell body preparation, the intermediate filament antibody labeled, in order of their staining intensity, a 65K, 60K, 74K, and 180K protein. In both the axoplasmic and cell body preparations, endogenous calcium-activated proteolysis generated characteristic fragments that could be labeled with the anti-intermediate filament antibody.

Animals↗

Alteration in calcium-binding activity in synaptosomal membranes from rat brains in association with physical dependence upon ethanol.

The effects of ethanol treatment on calcium-binding activity in synaptosomal membrane fraction from rat brains were studied. The synaptosomal membrane fraction from the hippocampus, the cortex and the cerebellum from control, single dose (6 g/kg), dependent intoxicated (prodromal) and dependent withdrawing (ethanol withdrawal syndrome) rats were used. Two different methods were used for determining the calcium activity in these membrane preparations: the calcium chelator fluorescence probe, chlortetracycline (CTC), was used to measure Ca2+ binding sites in the membranes, and radioactive calcium (45Ca) was used to measure the calcium binding to the synaptosomal membranes. Both methods provided similar conclusions; the calcium activity was higher during the dependent intoxicated phase of the ethanol withdrawal period. The synaptosomal membranes from the hippocampus showed more drastic changes in calcium-binding activity than the cortex and the cerebellum. These results suggest that ethanol dependence is associated with changes in calcium-binding activity in certain areas of the rat brain.

Alcoholism↗

Cerebral alteration in calmodulin levels associated with the induction of physical dependence upon ethanol in rats.

Calmodulin levels were measured in different areas of brain in rats rendered physically dependent and after single doses (6 g/kg) of ethanol. After single doses of ethanol no changes in the calmodulin levels were found in the cortex, but those in the hippocampus and caudate nuclei were increased while those in the cerebellum were reduced. In the dependent intoxicated (prodromal) rats, calmodulin levels were elevated in all these regions except the cerebellum. In rats undergoing ethanol withdrawal syndrome, the calmodulin levels decreased in all regions of the brain except caudate nuclei.

Animals↗

Distribution of acid protease activity in the squid nervous system.

Acid protease activity was measured in homogenized stellate ganglion, axoplasm extruded from the squid giant axon, homogenized fin nerves, and in lysed synaptosomes prepared from the optic lobe of the squid. At least two different acid protease classes were distinguished on the bases of their inhibitor profiles. Acid protease activity was present in each of the above tissues except extruded axoplasm. This result suggests that the acid protease activity found in our homogenized fin nerves might be located not within the axons but rather in glial cells or extracellular tissue. The absence of acid protease activity in extruded axoplasm indicates that acid proteases are unlikely to play a significant role in the catabolism of intracellular proteins along the length of the axon.

Animals↗

Calcium regulation of magnesium dependent phosphorylation of human erythrocyte ghost spectrin.

Phosphorylation of human erythrocyte ghost membrane proteins was found to be affected by micromolar calcium concentrations. Increasing Ca2+ concentration to 0.2 microM decreased spectrin (band 2) phosphorylation to 30 +/- 6% of control (to which no calcium was added). Decreasing calcium concentration by adding EGTA (0.2mM) to the standard membrane preparation increased spectrin phosphorylation to 575% control. This effect of Ca2+ was more pronounced at higher temperature. At 0 degree C, Ca2+ (0.05mM) had no effect on protein phosphorylation. Sodium fluoride like EGTA caused a four to five fold increase in phosphorylation. Pyrophosphate, a phosphoprotein phosphatase inhibator, had no effect. Once spectrin was phosphorylated in the presence of [gamma-32P]ATP the addition of Ca2+ or EGTA did not decrease or increase its phosphorylation. It is suggested that calcium regulates spectrin phosphorylation either by decreasing kinase activity or by decreasing substrate availability.

Calcium↗