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PubMed · 4216741

Cell layer assay.

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B Walther, R Ohman. 1974. Cell layer assay.. https://pubmed.ncbi.nlm.nih.gov/4216741/

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Role of spinal nitric oxide in the facilitation of the micturition reflex by bladder irritation.

PURPOSE: Nitric oxide (NO) is known to have an important transmitter function at peripheral synapses in the urogenital tract and has also been implicated in the transmission of nociceptive information in the spinal cord. The present study evaluated the role of NO in the central micturition reflex pathway. MATERIALS AND METHODS: We examined the effect of N-nitro-L-arginine methyl ester (L-NAME), an inhibitor of NO synthase, on micturition reflexes induced by continuous infusion of saline or 0.1% acetic acid (a noxious stimulus) into the bladder in urethane-anesthetized female rats. Bladder and external urethral sphincter function were monitored with a continuous cystometrogram (CMG) and electromyography (EMG). RESULTS: Intrathecal injection of L-NAME (0.01 to 1 mumol.) did not significantly change the CMG or sphincter EMG during saline infusion. Infusion of acetic acid decreased the intercontraction interval (ICI), indicating a decrease in the volume threshold for inducing micturition. Subsequent intrathecal administration of L-NAME partially reversed the decreased ICI in a dose-dependent manner, but did not change the amplitude of bladder contractions: 0.01, 0.1 and 1 mumol. of L-NAME produced increases of 25%, 31% and 56% in the ICI. D-NAME, the inactive stereoisomer had no effect. This effect of L-NAME was reversed by injection of L-arginine (2 mumol. intrathecally) which, by itself, did not alter ICI during saline infusion or acetic acid infusion. CONCLUSIONS: These results indicate that: (1) spinal NO containing pathways do not play a role in the normal micturition reflex, (2) NO is involved at the spinal level in the facilitation of the micturition reflex by nociceptive bladder afferents activated by noxious chemical irritation of the bladder.

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Mature cathepsin L is substantially active in the ionic milieu of the extracellular medium.

The activity of cathepsin L is affected by ionic strength, resulting in the measured pH optimum being higher in acetate-4-morpholineethane sulfonic acid (MES)-Tris buffers of constant ionic strength than in phosphate buffers of constant molarity (and hence varying ionic strength). In acetate-MES-Tris and phosphate buffers of constant ionic strength across the pH range, the catalytic constant, kcat, generally peaked at ca. pH 6.5 and essentially independently of ionic strength. Km values, of ca. 5 microM, manifested a slight rising trend with increasing ionic strength, with a sharp increase to 20-25 microM, specifically at pH 6.5 and I = 0.4. At physiological ionic strengths, the specific buffer ions present affected the activity of mature cathepsin L, kcat/Km declining above pH 6.5 in phosphate buffer, but only above pH 7 in acetate-MES-Tris buffer. In Hanks' balanced salt solution, a model of the extracellular fluid, measured values at pH 7.2 were kcat, 18.9 s-1; Km, 13.5 microM; and kcat/Km, 1.4 x 10(6) M-1 s-1. The stability of cathepsin L in the physiological pH range was also differentially affected by the specific buffer ions, generally in parallel with the enzyme activity. In Hanks' balanced salt solution, mature cathepsin L was substantially active and stable, having a half-life of 179 s at pH 7.2 and 657 s at pH 6.8 (the peritumor pH).

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A switch between two modes of synaptic transmission mediated by presynaptic inhibition.

Presynaptic inhibition reduces chemical synaptic transmission in the central nervous system between pairs of neurons, but its role(s) in shaping the multisynaptic interactions underlying neural network activity are not well studied. We therefore used the crustacean stomatogastric nervous system to study how presynaptic inhibition of the identified projection neuron, modulatory commissural neuron 1 (MCN1), influences the MCN1 synaptic effects on the gastric mill neural network. Tonic MCN1 discharge excites gastric mill network neurons and activates the gastric mill rhythm. One network neuron, the lateral gastric (LG) neuron, presynaptically inhibits MCN1 and is electrically coupled to its terminals. We show here that this presynaptic inhibition selectively reduces or eliminates transmitter-mediated excitation from MCN1 without reducing its electrically mediated excitatory effects, thereby switching the network neurons excited by MCN1. By switching the type of synaptic output from MCN1 and, hence, the activated network neurons, this presynaptic inhibition is pivotal to motor pattern generation.

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