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The high-temperature modification of zinc catena-polyphosphate, beta-Zn(PO3)2.

Single crystals of the high-temperature modification of zinc catena-polyphosphate, beta-Zn(PO(3))(2), were grown from a melt and quenched from 1093 K to room temperature. The structure was solved from single-crystal X-ray diffraction data and is built of corrugated (PO(3))( infinity ) polyphosphate chains, which extend along the c direction with an eight-tetrahedra repeat. Slightly distorted [ZnO(4)] tetrahedra link the polyphosphate chains into a three-dimensional network.

Journal Article↗

Diadenosine polyphosphates evoke Ca2+ transients in guinea-pig brain via receptors distinct from those for ATP.

1. The ability of diadenosine polyphosphates, namely P1,P2-di(adenosine) pyrophosphate (Ap2A), P1,P3-di(adenosine) triphosphate (Ap3A), P1,P4-di(adenosine) tetraphosphate (Ap4A), P1,P5-di(adenosine) pentaphosphate (Ap5A) and P1,P6-di(adenosine) hexaphosphate (Ap6A) to evoke Ca2+ signals in synaptosomes prepared from three different regions of the guinea-pig brain was examined. 2. In synaptosomal preparations from the paleocortex (cortex), diencephalon/brainstem (midbrain) and cerebellum all the dinucleotides evoked Ca2+ signals that were concentration dependent over the range 1-300 microM. ATP and its synthetic analogues, alpha,beta-methylene ATP, 2-methylthio ATP and adenosine 5'-O-(2-thio)diphosphate (all 100 microM) also evoked Ca2+ signals in these preparations. 3. In the midbrain and cerebellum preparations, responses to ATP and its analogues were attenuated or abolished by the P2 receptor antagonist suramin (100 microM) but responses to the dinucleotides were not. Also, desensitization by a dinucleotide blocked responses to dinucleotides but not mononucleotides, and desensitization by a mononucleotide blocked responses to mononucleotides but not dinucleotides. 4. In cortical preparations, suramin (100 microM) blocked responses to both classes of nucleotides. Furthermore, there was mutual cross-desensitization between the mono- and dinucleotides. 5. The adenosine A1 receptor antagonist, 8-cyclopentyl-1,3-dipropylxanthine, did not affect responses evoked by the dinucleotides, nor did the pyrimidine UTP. 6. It is concluded that there are specific dinucleotide receptors, activated by diadenosine polyphosphates, but not ATP or UTP, on synaptic terminals in guinea-pig diencephalon/ brainstem and cerebellum. These receptors bear a similarity to the dinucleotide receptor (P4 receptor) in rat brain. In guinea-pig cerebral cortex synaptosomes, diadenosine polyphosphates appear to act via the same receptor as ATP.

Adenosine Triphosphate↗

Effect of diadenosine polyphosphates on catecholamine secretion from isolated chromaffin cells.

1. The action of several diadenosine polyphosphates (AP3A, AP4A and AP5A) on basal, and on nicotine- and high K(+)-evoked, catecholamine (CA) release has been investigated. Each of the three diadenosine polyphosphates weakly but significantly increased basal CA secretion. This enhancement represented about 10% of the response evoked by 2 microM nicotine. 2. The evoked secretory response to diadenosine polyphosphates had an absolute requirement for extracellular Ca2+. 3. In contrast, these compounds had an inhibitory action on nicotine-evoked release. This response was concentration-dependent, EC50 values being 3.2 +/- 0.4 microM, 4.0 +/- 1.6 microM and 19.3 +/- 4.0 microM for AP3A, AP4A, and AP5A, respectively. The lower the concentration of nicotine used to evoke secretion, the higher the inhibitory power of these compounds. 4. The CA secretion evoked by K(+)-rich solutions was further enhanced by AP3A and AP5A, whereas AP4A inhibited it. The possible physiological role of these dual actions is discussed.

Adrenal Glands↗

Modulation of ATP-dependent chromatin-remodeling complexes by inositol polyphosphates.

Eukaryotes use adenosine triphosphate (ATP)-dependent chromatin-remodeling complexes to regulate gene expression. Here, we show that inositol polyphosphates can modulate the activities of several chromatin-remodeling complexes in vitro. Inositol hexakisphosphate (IP6) inhibits nucleosome mobilization by NURF, ISW2, and INO80 complexes. In contrast, nucleosome mobilization by the yeast SWI/SNF complex is stimulated by inositol tetrakisphosphate (IP4) and inositol pentakisphosphate (IP5). We demonstrate that mutations in genes encoding inositol polyphosphate kinases that produce IP4, IP5, and IP6 impair transcription in vivo. These results provide a link between inositol polyphosphates, chromatin remodeling, and gene expression.

Adenosine Triphosphatases↗

Transcription of ppk from Acinetobacter sp. strain ADP1, encoding a putative polyphosphate kinase, is induced by phosphate starvation.

Polyphosphate kinase (Ppk) catalyzes the formation of polyphosphate from ATP. We cloned the ppk gene (2,073 bp) from Acinetobacter sp. strain ADP1; this gene encodes a putative polypeptide of 78.6 kDa with extensive homology to polyphosphate kinase from Escherichia coli and other bacteria. Chromosomal disruption of ppk by inserting a transcriptionally fused lacZ does not affect growth under conditions of phosphate limitation or excess. beta-Galactosidase activity expressed from the single-copy ppk::lacZ fusion is induced 5- to 15-fold by phosphate starvation. An increased amount of ppk transcript (2.2 kb) was detected when cells were grown at a limiting phosphate concentration. Primer extension analysis revealed a regulated promoter located upstream of a second, constitutive promoter. Potential similarities of this regulation with the effects of PhoB and PhoR of E. coli are discussed.

Acinetobacter↗

Inorganic polyphosphate: a molecule of many functions.

Inorganic polyphosphate (poly P) is a chain of tens or many hundreds of phosphate (Pi) residues linked by high-energy phosphoanhydride bonds. Despite inorganic polyphosphate's ubiquity--found in every cell in nature and likely conserved from prebiotic times--this polymer has been given scant attention. Among the reasons for this neglect of poly P have been the lack of sensitive, definitive, and facile analytical methods to assess its concentration in biological sources and the consequent lack of demonstrably important physiological functions. This review focuses on recent advances made possible by the introduction of novel, enzymatically based assays. The isolation and ready availability of Escherichia coli polyphosphate kinase (PPK) that can convert poly P and ADP to ATP and of a yeast exopolyphosphatase that can hydrolyze poly P to Pi, provide highly specific, sensitive, and facile assays adaptable to a high-throughput format. Beyond the reagents afforded by the use of these enzymes, their genes, when identified, mutated, and overexpressed, have offered insights into the physiological functions of poly P. Most notably, studies in E. coli reveal large accumulations of poly P in cellular responses to deficiencies in an amino acid, Pi, or nitrogen or to the stresses of a nutrient downshift or high salt. The ppk mutant, lacking PPK and thus severely deficient in poly P, also fails to express RpoS (a sigma factor for RNA polymerase), the regulatory protein that governs > or = 50 genes responsible for stationary-phase adaptations to resist starvation, heat and oxidant stresses, UV irradiation, etc. Most dramatically, ppk mutants die after only a few days in stationary phase. The high degree of homology of the PPK sequence in many bacteria, including some of the major pathogenic species (e.g. Mycobacterium tuberculosis, Neisseria meningitidis, Helicobacter pylori, Vibrio cholerae, Salmonella typhimurium, Shigella flexneri, Pseudomonas aeruginosa, Bordetella pertussis, and Yersinia pestis), has prompted the knockout of their ppk gene to determine the dependence of virulence on poly P and the potential of PPK as a target for antimicrobial drugs. In yeast and mammalian cells, exo- and endopolyphosphatases have been identified and isolated, but little is known about the synthesis of poly P or its physiologic functions. Whether microbe or human, all species depend on adaptations in the stationary phase, which is truly a dynamic phase of life. Most research is focused on the early and reproductive phases of organisms, which are rather brief intervals of rapid growth. More attention needs to be given to the extensive period of maturity. Survival of microbial species depends on being able to manage in the stationary phase. In view of the universality and complexity of basic biochemical mechanisms, it would be surprising if some of the variety of poly P functions observed in microorganisms did not apply to aspects of human growth and development, to aging, and to the aberrations of disease. Of theoretical interest regarding poly P is its antiquity in prebiotic evolution, which along with its high energy and phosphate content, make it a plausible precursor to RNA, DNA, and proteins. Practical interest in poly P includes many industrial applications, among which is the microbial removal of Pi in aquatic environments.

Humans↗

Ecto-enzymatic hydrolysis of diadenosine polyphosphates by cultured adrenomedullary vascular endothelial cells.

We investigated the extracellular degradation of diadenosine polyphosphates (ApnA) by cultured adrenomedullary endothelial cells using fluorogenic analogs of ApnA, the di(1,N6-ethenoadenosine) 5',5"'-P1,Pn-polyphosphates [epsilon-(ApnA)]. Kinetic parameters of epsilon-(ApnA) cleavage and effects of pH, ions, and inhibitors were determined by continuous fluorometric assays, using suspensions of endothelial cells grown on Cytodex-1 microspheres. Ecto-enzyme kinetic parameters for epsilon-(Ap3A), epsilon-(Ap4A), and epsilon-(Ap5A) hydrolysis are as follows: Michaelis-Menten constants of 0.39 +/- 0.07, 0.42 +/- 0.09, and 0.37 +/- 0.05 microM respectively, and maximal velocities of 26.1 +/- 6.8, 74.2 +/- 16.4, and 24.4 +/- 3.4 pmol.min-1.10(6) cells-1, respectively. ApnA and guanosine 5',5"'-P1,P4-tetraphosphate behave as competitor substrates of epsilon-(Ap4A) hydrolysis. The ectoenzyme is activated by Mg2+ and Mn2+ and inhibited by Ca2+, F-, adenosine 5'-tetraphosphate, adenosine 5'-O-(3-thiotriphosphate), and suramin. Optimum pH is around 9.0. High-performance liquid chromatography analysis reveals that the ecto-enzyme hydrolyzes epsilon-(ApnA) to give epsilon-adenosine-5'(n-1)-phosphate and epsilon-AMP, which are then further catabolized up to epsilon-adenosine via the membrane-bound nucleotidase system ecto-ATPase, ecto-ADPase (or apyrase), and ecto-5'-nucleotidase. The endothelial ecto-diadenosine polyphosphate hydrolase studied here exhibits different kinetic parameters and sensitivity to ions with respect to the enzyme from the tissue-related neurochromaffin cells. These different properties may be important in the extracellular signaling by ApnA.

Adrenal Medulla↗

Effects of diadenosine polyphosphates on the intracellular Ca2+ concentration in endothelial cells.

Diadenosine polyphosphates have differential hemodynamic effects. The role of the endothelium in the vascular effects of these agonists is still unclear. Primary cultures of rat aortal endothelial cells and Ea.hy 926 cells (a continuous endothelial cell line) were used to investigate the effects of Ap3A-Ap6A, adenosine triphosphate (ATP), and for comparison, arginine vasopressin (AVP) and angiotensin II (A II) on the intracellular Ca2+ concentration, [Ca2+]i. Fura-2 was used as Ca2+ indicator. In rat aortal endothelial cells, ATP and Ap4A concentration dependently increased [Ca2+]i with an initial peak followed by an elevated plateau. The half-maximal effects were reached at approximately 7 micromol/l for ATP and at approximately 10 micromol/l for Ap4A. The maximal peak effects at 100 micromol/l were 1,035 +/- 413 nmol/l (n = 3) and 437 +/- 271 nmol/l (n = 8) for ATP and Ap4A, respectively. At 100 micromol/l Ap3A and Ap6A slightly increased [Ca2+]i, while Ap5A had no significant effect. The known endothelial agonists AVP (100 nmol/l) and A II (10 nmol/l) increased [Ca2+]i initially by 1,549 +/- 913 nmol/l (n = 7) and 209 +/- 45 nmol/l (n = 9), respectively. In Ea.hy 926 cells an increase in [Ca2+]i was obtained only with ATP (10 micromol/l) and with Ap4A (100 micromol/l). Ap3A, Ap5A, and Ap6A (each 100 micromol/l) and also AVP (100 nmol/l) and A II (10 nmol/l) had no significant effects in these cells. These results show that a considerable increase in [Ca2+]i in endothelial cells can only be induced by Ap4A among the diadenosine polyphosphates, indicating that the vasoactive effects of only this polyphosphate could at least partly be mediated via Ca2+-dependent mechanisms in endothelial cells, comparable to the known effects of AVP, A II, and ATP. The fact that A II and AVP did not influence [Ca2+]i in Ea.hy 926 cells is probably due to the loss of the respective receptors in this cell line.

Adenosine Triphosphate↗

Diadenosine polyphosphates are largely ineffective as agonists at natively expressed P2Y(1) and P2Y(2) receptors on cultured human saphenous vein endothelial cells.

The diadenosine polyphosphates are a group of long-lasting compounds, released into the bloodstream by platelet degranulation. They mediate endothelium-dependent vasodilatation in several animal vascular systems via P2Y receptors coupled to increases in cytoplasmic calcium ([Ca(2+)](c)). However, there is little evidence of diadenosine-mediated vasodilatation in the human vasculature, and a direct interaction with natively expressed P2Y receptors on human endothelium has not been demonstrated. We have therefore studied the effects of diadenosines on primary cultures of human saphenous vein endothelial cells (HSVECs) and related this to the expression of P2Y receptors. HSVECs were loaded with the calcium-sensitive dye fura-2, and nucleotide-stimulated [Ca(2+)](c) responses were recorded. HSVECs responded to 10 microM UTP, ATP and 2-methylthio-ATP but not to UDP. Consistent with the recorded [Ca(2+)](c) responses, RT-PCR analysis of HSVEC RNA amplified specific products for the P2Y(1) and P2Y(2) receptors but not the P2Y(4) and P2Y(6) receptors. HSVECs responded to Ap(3)A with a rise in [Ca(2+)](c), but none of the other diadenosines tested elicited a response. Therefore natively expressed human P2Y(1) and P2Y(2) receptors are insensitive to diadenosine polyphosphates with the exception of Ap(3)A. We would therefore predict that the diadenosine polyphosphates have only a limited vasodilatory role in human saphenous veins.

Adenosine Triphosphate↗

Ammonium polyphosphate versus dicalcium phosphate as a phosphorus supplement for growing-finishing swine.

A totaL of 160 crossbred pigs were fed a sorghum-soybean meal diet with ammonium polyphosphate (APP) or dicalcium phosphate (DiCa) as supplemental phosphorus (P) sources for growing-finishing swine. The diets contained P levels of .5 and .4% for the grower phase and .4 and .33% for the finisher phase. Ammonium polyphosphate was evaluated on the basis of pig performance and bone development and compared with DiCa as a standard. The first rib and third and fourth metacarpals were removed from eight barrows from each of the four treatments. Replacement of DiCa with APP as the P supplement did not affect (P greater than .05) average daily gain, average daily feed and feed:gain ratio of growing-finishing pigs. No effect on bone variables examined on the first rib and third and fourth metacarpals was obtained between pigs fed APP or DiCa. Pigs on the lower supplemental P levels had lower (P less than .05) dry fat-free weight and percentage ash for all three bones. The breaking force of the first rib was less (P less than .05) for the pigs fed the lower P supplements of APP and DiCa than for pigs fed the higher level of DiCa. A trend was observed for an apparent decreased P availability from APP than DiCa when fed at the lower level of supplementation, but this trend was not observed when APP was added to provide a P level to meet National Research Council requirements. Ammonium polyphosphate as a P supplement for growing-finishing swine was satisfactory for performance and bone mineralization as compared with DiCa.

Animals↗

Effect of polyphosphate and sodium chloride on the growth of Listeria monocytogenes and Staphylococcus aureus in ultra-high temperature milk.

With UHT-sterilized milk as a model system, combinations of polyphosphate (.5 and 1.0%) and NaCl (.5 and 4.5%) were studied to determine their effects on the growth kinetics of Listeria monocytogenes Scott A and Staphylococcus aureus 196E. The milk was inoculated with 10(3) to 10(4) cfu/ml of either L. monocytogenes or S. aureus and incubated under aerobic conditions at 12, 19, 28, or 37 degrees C. The addition of polyphosphate did not significantly inhibit the growth of either microbe at the temperatures studied, but the addition of NaCl or a combination of salts significantly inhibited growth. The addition of .5 or 1.0% polyphosphate alone to dairy products is not likely to affect substantially the growth of S. aureus or L. monocytogenes.

Animals↗

[Advances in research on calcium polyphosphate bioceramic for bone tissue engineering scaffold].

Bone tissue engineering is a novel, developing and challenging science which provides a new way to repair bone lost from injury and disease. Porous calcium polyphosphate bioceramic is one kind of absorptable bioceramic. Owing to its fine biocompatibility and degradability, more and more pieces of research wark have been carried out in bone tissue engineering, and because of its special characteristics, calcium polyphosphate bioceramic is regarded as a promising material for solving the problem of how to match the degradation velocity of scaffold with the velocity of cell growth. The recent research of using calcium polyphosphate bioceramic as the scaffold in bone tissue engineering is summarized, including the property, synthesis and advances.

Bone Substitutes↗

Incorporation of [32P]orthophosphate into long chains of inorganic polyphosphate within lysosomes of human fibroblasts.

When isolated human fibroblast lysosomes are incubated with 4 microM [32P]phosphate at pH 7.0, orthophosphate is transported into lysosomes and is rapidly incorporated into low and high molecular weight products. We have characterized the high molecular weight (HMW) lysosomal material into which [32P]phosphate is incorporated and have found it to consist of long chains of inorganic polyphosphate based on the following observations. 1) greater than 97% of HMW 32P-lysosomal material is converted to [32P]orthophosphate when incubated with 1 N HCl for 20 min at 100 degrees C. 2) Incubation of HMW 32P-lysosomal material at pH 7.0 and 65 degrees C for 96 h results in the formation of [32P]trimetaphosphate, which is known to be produced only from linear chains of polyphosphate under these conditions. 3) HMW 32P-lysosomal material is resistant to degradation by proteinase K, ribonuclease, and deoxyribonuclease and extracts into the aqueous phase during phenol/chloroform extractions. 4) HMW 32P-lysosomal material displays heterogeneous mobility on polyacrylamide gels with most chains ranging in length from 100 to at least 600 phosphate residues. 5) HMW 32P-lysosomal material is partially hydrolyzed under alkaline conditions to yield a continuous ladder of polyphosphate species differing by one or several residues in length on polyacrylamide gels.

Biological Transport↗

[Polyphosphate biosynthesis in Rhodospirillum rubrum chromatophores].

The chromatophores of Rhodospirillum rubrum were found to synthesize in the light not only ATP and pyrophosphate but also high molecular weight polyphosphates. Biosynthesis of all studied compounds was inhibited by antimycin A, an inhibitor of the electron-transport photosynthetic chain. Synthesis of high molecular weight polyphosphates is stimulated, while that of pyrophosphate is inhibited, in the conditions providing intensive synthesis of ATP (in the presence of ADP and in the absence of oligomycin). The results obtained suggest that biosynthesis of high molecular weight polyphosphates is related to photosynthetic phosphorylation, via ATP but not pyrophosphate.

Adenosine Diphosphate↗

[The polyphosphate synthetase of Saccharomyces cerevisiae].

The polyphosphate-synthetase, isolated from a homogenate of phosphate starved cells, catalyses the synthesis of linear polyphosphates from orthophosphate. It is localized in the membrane fraction which deposits between 400 and 1000 X g; its optimal pH is 7.1; its KM toward orthophosphate is 4.0 X 10(-4) M; ATP stimulates the reaction. The enzyme synthezises especially polyphosphates with short chain length.

Adenosine Triphosphate↗

Inositol polyphosphate 1-phosphatase from calf brain. Purification and inhibition by Li+, Ca2+, and Mn2+.

We recently identified an enzyme which we have designated inositol polyphosphate 1-phosphatase that hydrolyzes both inositol 1,3,4-trisphosphate (Ins-1,3,4-P3) and inositol 1,4-bisphosphate (Ins-1,4-P2), yielding inositol 3,4-bisphosphate and inositol 4-phosphate, respectively, as products (Inhorn, R. C., Bansal, V.S., and Majerus, P.W. (1987) Proc. Natl. Acad. Sci. U.S.A. 84, 2170-2174). We have now purified the inositol polyphosphate 1-phosphatase 3600-fold from calf brain supernatant. The purified enzyme has an apparent molecular mass of 44,000 daltons as determined by gel filtration and is free of other inositol phosphate phosphatase activities. The enzyme hydrolyzes Ins-1,4-P2 with an apparent Km of approximately 4-5 microM, while it degrades Ins-1,3,4-P3 with an apparent Km of approximately 20 microM. The enzyme hydrolyzes these substrates at approximately the same maximal velocity. Inositol polyphosphate 1-phosphatase shows a sigmoidal dependence upon magnesium ion, with 0.3 mM Mg2+ causing half-maximal stimulation. A Hill plot of the data is linear with a value of n = 1.9, suggesting that the enzyme binds magnesium cooperatively. Calcium and manganese inhibit enzyme activity, with 50% inhibition at approximately 6 microM. Lithium inhibits Ins-1,4-P2 hydrolysis uncompetitively with a Ki of approximately 6 mM. This mechanism of lithium inhibition is similar to that observed for the inositol monophosphate phosphatase (originally designated myo-inositol-1-phosphatase; Hallcher, L.M., and Sherman, W.R. (1980) J. Biol. Chem. 255, 10896-10901), suggesting that these two enzymes are related. Lithium also inhibits Ins-1,3,4-P3 hydrolysis with an estimated Ki of 0.5-1 mM.

Animals↗

Multiple pathways of inositol polyphosphate metabolism in angiotensin-stimulated adrenal glomerulosa cells.

The production and metabolism of inositol 1,4,5-trisphosphate (Ins-1,4,5-P3) and other inositol polyphosphates was studied in cultured bovine adrenal glomerulosa cells prelabeled for 24 h with [3H]inositol. During stimulation with angiotensin II, Ins-1,4,5-P3 increased to a peak of 15-fold above basal within 10 s, followed by a second phase of continuous increase over the next 30 min. Ins-1,4,5-P3 formed during agonist stimulation was rapidly metabolized by two distinct pathways. The more direct metabolic route was via degradation by sequential dephosphorylations to form inositol 1,4-bisphosphate and inositol 4-phosphate, and ultimately inositol. Lithium ions inhibited both the formation and dephosphorylation of inositol 4-monophosphate, which is a specific product of inositol polyphosphate metabolism. In addition, a cyclical metabolic sequence was initiated by the 3-phosphorylation of Ins-1,4,5-P3 to form inositol 1,3,4,5-tetrakisphosphate. The Ins-1,4,5-P3 3-kinase responsible for this reaction had a Km of 0.4 microM for Ins-1,4,5-P3 and a Vmax of 208 pmol/min/mg and was stimulated by increased Ca2+ concentrations in the micromolar range. Inositol 1,3,4,5-tetrakisphosphate was then dephosphorylated to inositol 1,3,4-trisphosphate, which in turn was either further degraded to inositol 3,4-bisphosphate or rephosphorylated to inositol 1,3,4,6-tetrakisphosphate. Lithium ions also inhibited the production of inositol 3,4-bisphosphate, explaining the large accumulation of inositol 1,3,4-trisphosphate in cells stimulated in the presence of lithium. Prolonged exposure to angiotensin II in the presence of Li+ caused a progressive decline in inositol polyphosphate formation without depletion of the lipid precursor, phosphatidyl-inositol 4,5-bisphosphate, suggesting that an accumulating product of polyphosphoinositide hydrolysis (possibly diacylglycerol) has an inhibitory effect on the phospholipase C-catalyzed breakdown process. These results indicate that, in addition to its breakdown by sequential dephosphorylations through Ins-1,4-P2 and Ins-4-P, Ins-1,4,5-P3 undergoes a complex series of phosphorylations and dephosphorylations to form at least two inositol tetrakisphosphates and their metabolites. These newly defined pathways may provide additional regulatory steps in the mechanism of cell activation by angiotensin II and other Ca2+-mobilizing hormones.

Adrenal Cortex↗

Bradykinin stimulation of inositol polyphosphate production in porcine aortic endothelial cells.

Bradykinin stimulation of inositol polyphosphate production was followed using [3H]inositol-labeled porcine aortic endothelial cells grown in culture. Bradykinin stimulated a significant increase in inositol trisphosphate (IP3) production within 15 s. This increase reached a maximum value of 5-fold above control at 30 s and returned toward baseline by 90 s. Production of inositol bisphosphate increased with time reaching 4-fold by 60 s. Bradykinin stimulated the production of IP3 and inositol biphosphate in a dose-dependent manner with an EC50 of 9 X 10(-9) M. Labeled pools of phosphatidylinositol-4,5-bisphosphate (PIPP) decreased by 50% within 30 s, corresponding to the rise in IP3, while labeled lysophosphatidylinositol pools increased 3-fold by 60 s. Pertussis toxin, a protein which ribosylates GTP-binding proteins, did not inhibit bradykinin-stimulated inositol polyphosphate production. Incubation of labeled cells in the absence of extracellular Ca2+ also did not affect bradykinin-stimulated inositol polyphosphate production. Further, A23187, a Ca2+ ionophore, failed to stimulate PIPP metabolism. Finally, Ca2+ influx into cell monolayers occurred with a time course which paralleled rather than preceded the increase in IP3 levels. These data suggest that bradykinin stimulates phospholipase C metabolism of PIPP to IP3 by a mechanism which does not contain a pertussis toxin sensitive GTP-binding protein. Also, this receptor-linked phospholipase C activity does not appear to be activated by extracellular Ca2+ influx. The results support the proposal that IP3 production initiates Ca2+ mobilization and suggest that the calcium-dependent step in arachidonate release is distal to IP3 production.

Animals↗