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Biomedical subjects

D D Hunter

Publications and source records attributed to D D Hunter.

52 records · Page 3Linked to original sources

Primary sequence of a motor neuron-selective adhesive site in the synaptic basal lamina protein S-laminin.

S-laminin, a novel homolog of laminin, is concentrated in a subset of basal laminae including the basal lamina that passes between motor nerve terminals and muscle fibers at the neuromuscular junction. Here we used recombinant fragments to localize a neuronal attachment site to the C-terminal 10% of s-laminin. We then used synthetic peptides spanning the active fragment to identify the primary sequence of the adhesive site as Leu-Arg-Glu (LRE): neurons attach to an immobilized LRE-containing peptide, and soluble LRE blocks attachment of neurons to the s-laminin fragment. Whereas ciliary ganglion neurons (which normally innervate muscle fibers) adhered well both to laminin and to an s-laminin fragment, sensory and central neurons and several neuronal cell lines all adhered well to laminin but poorly to the s-laminin fragment. Together, these results define a motor neuron-selective attachment site on s-laminin.

Amino Acid Sequence↗

A laminin-like adhesive protein concentrated in the synaptic cleft of the neuromuscular junction.

A striking example of topographic specificity in synapse formation is the preferential reinnervation of original synaptic sites on denervated muscle fibres by regenerating motor axons. This specificity is mediated by the basal lamina of the synaptic cleft. A glycoprotein, s-laminin, has now been identified that is selectively associated with synaptic basal lamina and is recognized by motoneurons. Molecular cloning reveals that s-laminin is a novel homologue of laminin, a potent promoter of neurite outgrowth.

Base Sequence↗

[Regulation of synaptogenesis in the adult skeletal muscle].

Several behaviors that axons exhibit during reinnervation of adult skeletal muscle demonstrate that they are guided by cues that the muscle provides. For example, axons form synapses on denervated but not on normally innervated muscle fibers; axons selectively reinnervate original synaptic sites on denervated muscle fibers; regenerating axons become specialized for synaptic transmission only in regions where they contact muscle fibers; and motor axons prefer to reinnervate muscles derived from matching levels of the body's rostro-caudal axis. This chapter describes these phenomena and summarizes progress toward identifying the soluble, membrane-bound, and extracellular matrix molecules that underly them.

Animals↗

Alteration of intracellular cAMP levels and beating rates of cultured chick cardiac cells by Bordetella pertussis adenylate cyclase.

Bordetella pertussis, the pathogen responsible for whooping cough, releases a soluble calmodulin-sensitive adenylate cyclase into its culture medium which enters several different types of animal cells and elevates intracellular cAMP. In this study, the influence of B. pertussis adenylate cyclase on intracellular cAMP levels of cultured chick cardiac cells and the beating rates of chick cardiac cell aggregates was examined. Treatment with B. pertussis adenylate cyclase caused up to a 60-fold increase in intracellular cAMP which was significantly greater than that caused by forskolin or isoproterenol. Increases in intracellular cAMP caused by B. pertussis adenylate cyclase were observed within 2 min after treating cells with the enzyme, and binding of calmodulin to the enzyme inhibited these effects. In addition, high concentrations of the enzyme completely inhibited the beating of cardiac cells. However, lower concentrations of the adenylate cyclase accelerated beating rates 30-40% and cardiac cells continued to beat at an accelerated rate for at least 30 min. These data indicate that B. pertussis adenylate cyclase invades chick cardiac cells and catalyzes significant increases in intracellular cAMP. It is proposed that the effect of the enzyme on the beating rates of heart cell aggregates may be due to alteration of intracellular cAMP levels.

Animals↗

Activation of protein kinase C induces rapid internalization and subsequent degradation of muscarinic acetylcholine receptors in neuroblastoma cells.

The tumor-promoting phorbol ester 4 beta-phorbol 12 beta-myristate 13 alpha-acetate (PMA), which activates protein kinase C, acted synergistically with A23187 to decrease muscarinic acetylcholine receptor (mAChR) number in neuroblastoma cells (clone N1E-115) as determined by a filter binding assay using [3H]quinuclidinyl benzilate in membrane homogenates. After a 6-h incubation, 10(-7) M PMA and 3 X 10(-7) M A23187 reduced mAChR number 30-40%, compared to the 40-50% reduction observed after treatment with 10(-3) M carbachol, a muscarinic agonist. Incubation with 3 X 10(-7) M A23187 and 10(-7) M 4 alpha-phorbol 12,13-didecanoate, an inactive phorbol ester, did not alter mAChR number. The addition of PMA and A23187 to cultures incubated with 10(-3) M carbachol caused only a modest 6% further reduction in mAChR number as compared to incubation with carbachol alone. The kinetics of the decrease in mAChR number produced by PMA/A23187 were similar to those seen after carbachol treatment. Recovery of mAChR number after treatment with either carbachol or PMA/A23187 was blocked by treatment with the protein synthesis inhibitor cycloheximide. Intact cell binding studies employing [3H]N-methylscopolamine showed that treatment with either PMA/A23187 or carbachol caused a rapid (within 15 min) loss of receptors from the cell surface prior to the decrease in total mAChR number. PMA (10(-7) M), but not 4 alpha-phorbol 12,13-didecanoate, promoted the translocation of protein kinase C activity from the cytosol to the membrane. Incubation with carbachol increased membrane-associated protein kinase C activity within 5 min with an EC50 of 3 X 10(-6) M. This increase persisted for at least 60 min in the continued presence of carbachol and was blocked by simultaneous incubation with atropine. These results suggest that activation of protein kinase C may be involved in the regulation of mAChR number in response to agonist.

Animals↗

Biochemical and physical analyses of newly synthesized muscarinic acetylcholine receptors in cultured embryonic chicken cardiac cells.

Exposure of cultured embryonic chicken cardiac cells to the muscarinic agonist carbachol results in a 70-80% decrease in the number of muscarinic acetylcholine receptors (mAChR) expressed on the surface of the cells. Removal of the agonist results in a gradual increase in mAChR number because of the accumulation of newly synthesized receptors, reaching the control level in 14 hr. Measurements of increases in K+ permeability elicited by carbachol show that even after the complete recovery of receptor number, the sensitivity to agonist is reduced. The EC50 for carbachol is 13-fold higher in cells that have been exposed to carbachol and allowed to recover for 18 hr than in control cells, but is not significantly different from the EC50 for control cells 24 hr after agonist removal. The sensitivity of the mAChR-mediated inhibition of adenylate cyclase is also decreased at 18 hr, and recovers by 24 hr. These increases in sensitivity of mAChR-mediated responses are not blocked by administration of cycloheximide, and thus do not require de novo protein synthesis. The number of surface mAChR available for ligand binding can be reduced by 85-100% by treatment with the affinity-alkylating antagonist propylbenzilylcholine mustard. Newly synthesized mAChR that appear following affinity alkylation are also poorly coupled to mAChR-mediated increases in K+ permeability, indicating that decreased physiological sensitivity is not due to a nonspecific effect of long-term agonist exposure on general cellular function, but reflects, rather, an intrinsic property of newly synthesized mAChR. The decrease in sensitivity of the mAChR-mediated responses is due neither to a lack of expression of mAChR on the surface nor to reduced agonist affinity of the mAChR. Cells exhibiting decreased responsiveness contain GTP-binding proteins, which function normally in the inhibition of adenylate cyclase and appear to be identical to pertussis toxin substrates from control cells using gel electrophoresis; therefore, the decreased sensitivity does not appear to be the result of an alteration in coupling proteins. These cells also contain mAChR that do not differ from those in control cells either by molecular weight or isoelectric point. Thus, the diminished sensitivity observed in cells containing newly synthesized receptors is either caused by a small change in mAChR not detected by these electrophoretic techniques or by a change in an as-yet-undefined component of mAChR transduction system in the heart.

Adenylyl Cyclase Inhibitors↗

Islet activating protein inhibits physiological responses evoked by cardiac muscarinic acetylcholine receptors. Role of guanosine triphosphate binding proteins in regulation of potassium permeability.

The involvement of GTP binding proteins in muscarinic acetylcholine receptor (mAChR) mediated responses of cultured chick embryonic cardiac muscle cells was studied by using islet activating protein (IAP) from Bordetella pertussis. Incubation of cells for 24 h with IAP resulted in inhibition of subsequent IAP-catalyzed incorporation of [alpha-32P]ADP-ribose into membrane proteins of Mr 39 000 (No alpha) and 41 000 (Ni alpha); treatment of cultures with 5 ng/mL IAP was sufficient to ADP-ribosylate all available No alpha and Ni alpha. Inhibition of forskolin-stimulated cAMP accumulation by the muscarinic agonist carbachol was abolished in cultures pretreated with IAP. The affinity of carbachol for the mAChR in membranes from IAP-treated cells was considerably decreased compared to control membranes and was not further decreased by addition of guanyl-5'-yl imidodiphosphate. In contrast, the affinity of carbachol for the mAChR on intact cells was not affected by pretreatment with IAP. To investigate the involvement of No and/or Ni in mAChR-mediated increases in K+ permeability, the effect of IAP treatment on mAChR stimulation of 86Rb+ efflux was determined. Treatment of cultures with 5 ng/mL IAP for 24 h completely blocked the stimulation of 86Rb+ efflux evoked by carbachol. Because previous work has shown that mAChR regulation of K+ permeability is independent of changes in cAMP levels, these results suggest a role for No and/or Ni in coupling the mAChR directly to K+ channels in the heart.

Animals↗

Assay of muscarinic acetylcholine receptor function in cultured cardiac cells by stimulation of 86Rb+ efflux.

An assay for the increase in potassium permeability mediated by muscarinic acetylcholine receptors (mAChR) in cultured cardiac cells is described, using the K+ ion substitute 86Rb+ as the tracer ion. Cardiac cells accumulate 86Rb+ from the extracellular medium in a Na+/K+ ATPase-dependent manner. Subsequent efflux of 86Rb+ in the absence and presence of muscarinic agonists follows kinetics similar to those previously reported for 42K+. The mAChR agonist carbamylcholine (carbachol) stimulated 86Rb+ efflux with an EC50 of 50 nM. The half-time for efflux is reduced by greater than 40% at maximally effective concentrations of agonist. Stimulation of 86Rb+ efflux by carbachol is blocked by the mAChR antagonist atropine with an IC50 of 15 nM. The stimulation of 86Rb+ efflux by carbachol is not affected by the presence of the Na+/K+ ATPase inhibitor ouabain. This assay provides a method for quantitating the mAChR-mediated increase in K+ permeability in cardiac cells without the use of 42K+.

Animals↗

Subcellular distribution of calcium- and calmodulin-dependent myosin light chain phosphorylating activity in rat cerebral cortex.

The subcellular distribution of Ca2+- and calmodulin-dependent myosin light chain phosphorylating activity in rat cerebral cortex was studied. The activity showed a high degree of association to nerve endings (either crude or purified by discontinuous sucrose density gradient centrifugation). After osmotic shock of the nerve endings, the activity was largely membrane associated and could not be released from membranes by freeze-thawing, dilution, 75 mM NaCl or 4 mM EDTA. The association of Ca2+/calmodulin-dependent myosin light chain phosphorylating activity with synaptosomal membranes suggests a role for calcium-dependent myosin phosphorylation in events relating to neurotransmission.

Animals↗

Decreased physiological sensitivity mediated by newly synthesized muscarinic acetylcholine receptors in embryonic chicken heart.

Treatment of chicken embryos in ovo for 8 hr with the muscarinic agonist carbachol results in an 85% reduction in the number of muscarinic acetylcholine receptors ( mAcChoR ) present in atrial membrane homogenates. Subsequent treatment of embryos with the muscarinic antagonist atropine results in a gradual increase in mAcChoR number, which returns to control levels after 14 hr. This recovery of receptor number is blocked by administration of the protein synthesis inhibitor cycloheximide, consistent with previous results in cell culture, which suggested that de novo protein synthesis is required for the recovery of mAcChoR after agonist-induced decreases. Measurements of the negative chronotropic response to applied carbachol with isolated atria show that even after recovery of receptor number to control levels the response to agonist is diminished. The IC50 for carbachol is shifted approximately equal to 10-fold from controls at 20 hr after atropine treatment, but less than 3-fold at 28 hr, with no further change in receptor number occurring over this time. This increase in physiological sensitivity is not blocked by cycloheximide. Receptors at 20 hr have binding constants for agonists and antagonists that are indistinguishable from controls. This implies that there is a defect in coupling of mAcChoR binding to the physiological response when mAcChoR reappear following agonist-mediated decreases in receptor number. Recovery of the ability of mAcChoR to inhibit adenylate cyclase parallels recovery of the beating response--that is, the IC50 is shifted approximately equal to 11-fold from controls at 20 hr after atropine treatment, yet only 3-fold at 28 hr. Thus, newly synthesized mAcChoR exhibit decreased physiological and biochemical responses to muscarinic agonists, suggesting that mAcChoR are initially synthesized in a less active form.

Adenylyl Cyclase Inhibitors↗

Partial agonist activity of oxotremorine at muscarinic acetylcholine receptors in the embryonic chick heart.

Previous work has demonstrated that prolonged treatment of chick embryos in vivo with muscarinic agonists leads to a decrease in the number of muscarinic acetylcholine binding sites in the heart and a decrease in the sensitivity of isolated atria to the negative chronotropic response to muscarinic stimulation. We show here that treatment with the agonist carbachol leads to greater decreases in receptor number than does treatment with oxotremorine. Simultaneous treatment with oxotremorine and carbachol resulted in partial blockage in the maximal decrease in receptor number seen after treatment with carbachol alone. After treatment of embryos in vivo with carbachol to decrease the reserve of spare receptors in the atria, oxotremorine could no longer elicit a significant negative chronotropic response under conditions in which carbachol was still effective. These results demonstrate that oxotremorine is a partial agonist at the muscarinic acetylcholine receptor in the embryonic chick heart.

Animals↗

5-HT2a receptors in the rabbit retina: potential presynaptic modulators.

Three 5-HT receptors have been implicated in retinal processing but positive identification of the receptors and the localization of receptor subtypes in the retina have not been achieved. In this study, molecular techniques were used to identify one class of 5-HT receptor--5-HT2a--in the retina, and immunohistochemical techniques were used to localize the receptor in the retinal network. Reverse transcription polymerase chain reaction (RT-PCR) techniques were used to identify a segment of the rabbit 5-HT2a gene; a 422 base fragment was identified, cloned, and sequenced. The fragment shows a high degree (ca. 90%) of nucleotide sequence identity with the 5-HT2a receptor gene from other mammals. 5-HT2a immunoreactivity was seen in both the inner and outer plexiform (synaptic) layers of the retina. Using cell-type-specific markers, the 5-HT2a immunoreactivity was shown to be on the terminals of photoreceptor and rod bipolar cells. This association of 5-HT2a receptors with these two synapses suggests that serotonin may be a modulator of synaptic function in the retina.

Amino Acid Sequence↗

GTP-binding proteins couple cardiac muscarinic receptors to a K channel.

Binding of acetylcholine (ACh) to cardiac muscarinic ACh receptors (mAChR) activates a potassium channel that slows pacemaker activity. Although the time course of this activation suggests a multi-step process with intrinsic delays of 30-100 ms, no second-messenger system has been demonstrated to link the mAChR to the channel. Changes in cyclic nucleotide levels (cyclic AMP and cyclic GMP) do not affect this K channel or its response to muscarinic agonists. Indeed, electrophysiological experiments argue against the involvement of any second messenger that diffuses through the cytoplasm. We report here that coupling of the mAChR in embryonic chick atrial cells to this inward rectifying K channel requires intracellular GTP. Furthermore, pretreatment of cells with IAP (islet-activating protein from the bacterium Bordetella pertussis) eliminates the ACh-induced inward rectification. As IAP specifically ADP-ribosylates two GTP-binding proteins, Ni and No, that can interact with mAChRs, we conclude that a guanyl nucleotide-binding protein couples ACh binding to channel activation. This represents the first demonstration that a GTP-binding protein can regulate the function of an ionic channel without acting through cyclic nucleotide second messengers.

Acetylcholine↗

Allergen-induced sensory neuroplasticity in airways.

This study investigates the influence of allergic inflammation in airway sensory innervation. We conclude that allergic inflammation in the guinea pig leads to both an increase in excitability, as manifested by an increase in the mechanical sensitivity of the airway nerve endings, and an induction of substance P production in airway sensory neurons. The data are consistent with the hypothesis that the induction of substance P occurs in fast conducting nodose sensory neurons that were previously devoid of this neuropeptide. Thus, allergen challenge is associated with a phenotypic change in the airway tachykinergic innervation. We also provide evidence that nerve growth factor is a potentially important mediator for these effects, and that it is elevated in the bronchoalveolar lavage of asthmatic subjects.

Allergens↗

Pilot study comparing recombinant erythropoietin alone with erythropoietin plus recombinant granulocyte-macrophage colony-stimulating factor for treatment of the anemia of prematurity.

Sixteen infants with the anemia of prematurity were randomly assigned to treatment with packed erythrocyte transfusions, recombinant erythropoietin alone, or epo plus recombinant granulocyte-macrophage colony-stimulating factor (GM-CSF). During the treatment period, blood reticulocyte concentrations remained unchanged in those randomly assigned to receive transfusions, but increased significantly in those who received erythropoietin, either alone or in combination with GM-CSF. The magnitude of increase in hematocrit was not greater in those who received erythropoietin plus GM-CSF than in those who received erythropoietin alone. Blood neutrophil concentrations fell in all four infants who received erythropoietin alone, but increased in all who received erythropoietin plus GM-CSF.

Anemia, Neonatal↗