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Z Grozdanovic

Publications and source records attributed to Z Grozdanovic.

29 records · Page 2Linked to original sources

Alpha-NADPH appears to be primarily oxidized by the NADPH-diaphorase activity of nitric oxide synthase (NOS).

Biochemical studies have shown that the NADPH-diaphorase (NADPH-d) activity of nitric oxide synthase (NOS) represents only a part of the total cellular diaphorase pool. Histochemically, NADPH-d activity can be demonstrated in cells expressing no constitutive NOS. Therefore, attempts aimed to improve the specificity of the NADPH-d reaction are currently being undertaken. In this study, the effect of replacing the natural and common diaphorase substrate beta-NADPH with the artificial stereoisomer alpha-NADPH on the extent of NADPH-d staining was examined. When beta-NADPH served as the substrate, discrete populations of central and peripheral neurons as well as numerous non-neural cells in many organs of common laboratory rodents (mouse, rat, gerbil, hamster, guinea pig) and marmosets were found to generate formazan. Substitution of alpha-NADPH for beta-NADPH resulted in reduced staining intensity of nerve cells and muscle fibers. Furthermore, alpha-NADPH-d staining of macula densa cells, enterocytes and granulocytes varied according to the species examined. No reaction was observed in most other cells which stained positively for beta-NADPH-d activity. Examination of adjacent sections, incubated for the demonstration of NOS-immunoreactivity, revealed that alpha-NADPH-d activity and NOS immunostaining are strictly colocalized in neurons, striated muscle fibers and, species-dependently, in macula densa cells. It can thus be concluded that, with the exception of gut granulocytes, alpha-NADPH is primarily metabolized by the reductase activity of NOS.

Animals↗

Demonstration of nitric oxide synthase (NOS) in marmosets by NADPH diaphorase (NADPH-d) histochemistry and NOS immunoreactivity.

Since species interdiversity often prevents the extrapolation of laboratory rodent data to man and similar problems may exist for nitric oxide synthase (NOS), NADPH-d activity and immunohistochemistry of NOS were investigated in the New World monkey Callithrix jacchus (marmoset), which has been shown to be close to the human situation in many respects. Using the NADPHd reaction with beta-NADPH and nitroblue tetrazolium (NBT) on acetone-chloroform pretreated cryosections, NBT formazan was found in many neural and non-neural (e.g. diverse epithelia, striated muscle fibers, vascular endothelium) cells in numerous tissues and organs. Prefixation with formaldehyde lowered the number of NADPH-d active sites and the amount of formazan with the exception of neuronal NADPH-d as did incubation of fresh or acetone-chloroform-pretreated sections for NADPH-d in the presence of 0.5% formaldehyde. When 1% formaldehyde or 0.5 mM permanganate were used significant amounts of formazan appeared only in central and peripheral neurons, vasal endothelial cells, small intestinal enterocytes, plasma membrane region of striated muscle fibers as well as arteriolar cells in the kidney; except for enterocytes, these observations were confirmed by NOS-immunohistochemistry which revealed in addition reactive cells in the thymus and intestinal lamina propria.

Acetone↗

Psychopharmacology of central serotonergic systems.

Serotonin neurons in the rostral and caudal brainstem raphe nuclear groups give rise to collateralized ascending and descending projections which provide modulatory input into most networks throughout the entire neuraxis. The rostral raphe system is interconnected with target forebrain areas through reciprocal limbic-midbrain loops, which suggests that serotonin has a role in the regulation of complex intelligent adaptive behavior. Serotonergic pathways sensitize brainstem and spinal cord central rhythmic pattern generators which organize repetitive autonomic and motor activities, e.g. oral-buccal and nutritive behaviors, facilitate tonically active motor neurons innervating antigravity muscles, and disfacilitate somatosensory information processing. Serotonin effects are mediated by multiple receptor subtypes with distinct pre- and postsynaptic localization and regional distribution pattern. They belong to the G protein superfamily, coupling to adenylate cyclase (5-HT1,4,5,6,7) or phospholipase C (5-HT2), and to the ligand-gated ion channel superfamily (5-HT3). Drugs acting at these receptors are known to modulate various aspects of cooperative social behavior and responding latency, i.e. impulsivity, in a variety of experimental models of anxiety and depression. The clinical efficacy of the so-called selective serotonin reuptake inhibitors (SSRIs) in disorders characterized by poor impulse control, e.g. bulimia nervosa, obsessive-compulsive disorder (OCD) and violent suicidal or homicidal behavior, may likewise be due to improved responding latency.

Brain↗

A modified method allows for correlation between NADPH-diaphorase histochemistry and immunohistochemistry for the demonstration of neuronal nitric oxide synthase (nNOS).

Results obtained with the conventional nitro blue tetrazolium salt method for the visualization of the NADPH-diaphorase (NADPH-d) activity of nitric oxide synthase (NOS) are not specific for this particular enzyme, since this activity represents only a fraction of the total cellular NADPH-d pool. Therefore, the standard NADPH-d procedure was modified by performing the incubation in the presence of formaldehyde. Parallel application of the modified NADPH-d staining technique and the indirect immunofluorescence using an antibody against the neuronal isoenzyme (nNOS) on rat, mouse and guinea-pig tissues showed a correlation between histochemical and immunocytochemical staining. It can thus be concluded that the modified NADPH-d procedure allows for a more specific detection of the histochemical nNOS activity than the conventional method.

Animals↗

Nonspecific alkaline phosphatase activity can be responsible for staining of NADPH-diaphorase activity in certain non-neural cells.

The NADPH-diaphorase (NADPH-d) reaction is frequently used to visualize the diaphorase activity of nitric oxide synthase (NOS). However, this tetrazolium salt procedure can be of limited specificity at sites where non-specific alkaline phosphatase (alP) and NADHd activity co-exist. This is shown in the present paper using methods of catalytic histochemistry for these three enzymes and levamisole as alP inhibitor for certain mouse tissues. In the urothelium, portio, vaginal and endometrial epithelium as well as in some smooth muscle cells alP hydrolyzes NADPH to NADH which in turn serves as substrate for NADHd leading to false-positive formazan production. To exclude this possibility, it is recommended always to include levamisole in the incubation medium if the NADPHd activity of NOS has to be investigated.

Alkaline Phosphatase↗

[The role of serotonin in behavior modulation].

The central projection systems represent an expansive and important component of the brainstem reticular core which provide modulatory input into multiple target networks throughout the entire vertebrate neuraxis. Most of the afferent input into the cranial raphe originates within sensory uni- and polymodal, associative and limbic cortices suggesting that serotonin modulates preprocessed information. The serotonergic neurons discharge in a remarkably stable and tonic fashion during wakefulness. Some 5-HT neurons increase their discharge rate phasically in association with the activation of central rhythmic pattern generators involved in consummatory and grooming behaviour. In concert with enhancing motor functions, the serotonergic systems discretely deamplify sensory attentiveness and pain processing, thereby establishing an essential and protective filter mechanism against distracting and irritating noise effects of sensory afferent input level. In addition, serotonin restrains the latency to responding, i.e. impulsivity. These effects of serotonin are mediated by multiple receptor subtypes with distinct pre- and postsynaptic localisation and regional distribution pattern, acting via amplifying (5-HT2 receptors) or desamplifying (5-HT1 receptors) G-protein-dependent transduction mechanisms. The breakdown of these protective and adaptive functions of 5-HT in complex behaviour and in basic aspects of sensorimotor integration may have a pathogenetic role in disorders of impulse control (e.g. bulimia nervosa and OCD) which have been found to respond to high-dose, long-term treatment with selective serotonin reuptake inhibitors.

Animals↗

Histochemistry of nitric oxide synthase in the nervous system.

Nitric oxide synthase, which generates the physiological messenger molecule nitric oxide, and its associated NADPH diaphorase (NADPHd) activity are distributed throughout selective neuronal populations of the central and peripheral nervous system. Considerable evidence has been accumulated to indicate that NADPHd activity labels cells lacking neuronal nitric oxide synthase, i.e., the specificity of the reaction has to be considered for the reliable detection of the enzyme in neuronal but also non-neuronal tissue. In the present review, critical aspects of nitric oxide synthase visualization in neurones, using its NADPHd activity, are discussed. Furthermore, the organization of the central and peripheral nitric oxide synthase-containing neuronal systems is described. Nitric oxide synthase is present in local cortical and striatal neurones, hypothalamic magnocellular neurones, mesopontine cholinergic neurones, cerebellar interneurones, preganglionic sympathetic and parasympathetic neurones, neurones in parasympathetic autonomic and enteric ganglia and primary viscero-afferent neurones. Finally, injury-related alterations in nitric oxide synthase activity are briefly outlined. In this respect, the histochemistry of nitric oxide synthase may represent a valuable marker for neurochemical, if not structural, alterations observed in neural diseases, regeneration and transplantation.

Animals↗

Nitric oxide synthase-containing nerve fibres and neurones in the gall bladder and biliary pathways of the guinea-pig.

We investigated the distribution pattern of nitric oxide (NO) synthesizing nerve cell bodies and axons in the biliary system of the guinea-pig using immunohistochemistry for nitric oxide synthase (NOS). Nerve fibres staining for NOS were found to contact non-vascular smooth myocytes and to course beneath the epithelium. No perivascular NOS fibres were observed. The innervation density varied in different parts of the biliary tree. The lower portion of the common bile duct was more richly innervated than the remaining parts of the duct system. NOS-containing neurones encompassed a subpopulation of intramural ganglion cells. Sympathetic neurones in the coeliac ganglion were not stained. It is suggested that intrinsic NOergic neurones are involved in inhibitory motor control of the biliary musculature, including the sphincter of Oddi.

Amino Acid Oxidoreductases↗

Nitric oxide synthase-containing nerve fibers and neurons in the genital tract of the female mouse.

Nitric oxide (NO) is generated intracellularly from L-arginine by the action of the enzyme nitric oxide synthase (NOS). The present investigation demonstrates immunoreactivity against NOS and nicotinamide adenine dinucleotide phosphate (NADPH)-diaphorase activity in nerve cells and fibers of the reproductive system of the female mouse. The density of nerve fibers staining for NOS varied among different genital organs. The ovary and Fallopian tube were devoid of NOS-positive nerves. The uterine horns received sparse innervation by NOS-containing nerve fibers. The most abundant NOergic innervation was found in the uterine cervix and vagina, where the nerve fibers ran parallel to the smooth muscle bundles and beneath the epithelium; they also accompanied intramural blood vessels. The vaginal muscular wall contained single or groups of NOS-reactive nerve cells. Clusters of NOS-containing neurons were located in Frankenhäuser's ganglion at the cervico-vaginal junction. NO may therefore act as a transmitter in the nervous control of the female reproductive tract.

Amino Acid Oxidoreductases↗

Nitric oxide--a novel autonomic neurotransmitter.

Considerable evidence suggests that nitric oxide (NO) acts as a nonadrenergic noncholinergic (NANC) transmitter at autonomic neuroeffector junctions. NO is generated enzymatically from L-arginine by a constitutive, cytosolic, Ca2+/calmodulin-activated NO synthase (NOS): NADPH- and tetrahydrobiopterin-dependent cytochrome P-450-type hemoprotein. Electrophysiological and pharmacological data indicate that NO fulfils most of the criteria for a neurotransmitter. It is released from axon terminals when invaded by action potentials and mimics the effect of nerve stimulation. The changes in the mechanical and/or electrical activity of smooth muscle preparations in response to transmural stimulation of NANC nerves are antagonized by inhibitors of NO synthesis or oxyhemoglobin, an NO scavenger. NO acts principally by stimulating soluble guanylate cyclase. Studies on the histochemical localization of NOS point to the involvement of the neural L-arginine-NO pathway in the regulation of vascular tone and of several aspects of respiratory, gastrointestinal, and genitourinary tract functions.

Animals↗

Histochemistry of NADPH-diaphorase, a marker for neuronal nitric oxide synthase, in the peripheral autonomic nervous system of the mouse.

In order to identify possible sites of synthesis of nitric oxide in the peripheral nervous system, several mouse organs were investigated for the presence of NADPH-diaphorase activity. Diaphorase-positive neurons and fibers were localized in the tongue, submandibular salivary glands, gastrointestinal and biliary duct systems, lower urinary tract and pelvic ganglia. By thionin counterstaining it was found that a distinct subpopulation of neurons was labeled. The present study indicates that nitric oxide synthase may be present in intrinsic neurons of various organs, suggesting a widespread function of nitric oxide in the peripheral autonomic nervous system.

Amino Acid Oxidoreductases↗