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Laminar organization of the developing lateral olfactory tract revealed by differential expression of cell recognition molecules.

The projection neurons in the olfactory bulb (mitral and tufted cells) send axons through the lateral olfactory tract (LOT) onto several structures of the olfactory cortex. However, little is known of the molecular and cellular mechanisms underlying establishment of functional connectivity from the bulb to the cortex. Here, we investigated the developmental process of LOT formation by observing expression patterns of cell recognition molecules in embryonic mice. We immunohistochemically identified a dozen molecules expressed in the developing LOT and some of them were localized to subsets of mitral cell axons. Combinatorial immunostaining for these molecules revealed that the developing LOT consists of three laminas: superficial, middle, and deep. Detailed immunohistochemical, in situ hybridization, and 5-bromodeoxyuridine labeling analyses suggested that the laminar organization reflects: 1) the segregated pathways from the accessory and main olfactory bulbs, and 2) the different maturity of mitral cell axons. Mitral cell axons of the accessory olfactory bulb were localized to the deep lamina, segregated from those of the main olfactory bulb. In the main olfactory pathway, axons of mature mitral cells, whose somata is located in the apical sublayer of the mitral cell layer, were localized to the middle lamina within LOT, while those of immature mitral cells that located in the basal sublayer were complementarily localized to the superficial lamina. These results suggest that newly generated immature axons are added to the most superficial lamina of LOT successively, leading to the formation of piled laminas with different maturational stages of the mitral cell axons.

Animals↗

Validation and optimization of statistical approaches for modeling odorant-induced fMRI signal changes in olfactory-related brain areas.

Recent neuroimaging studies have converged to show that odorant-induced responses to prolonged stimulation in primary olfactory cortex (POC) are characterized by a rapidly habituating time course. Different statistical approaches have effectively modeled this time course. One approach explicitly modeled rapid habituation using an exponentially decaying reference waveform that decreased to baseline levels within 30 to 40 s. A second approach modeled an early transient response by simply shortening the odorant 'ON' period to be less than the actual stimulation period (i.e., 9 of 40 s). The goal of the current study was to validate, compare, and optimize these methodological approaches by applying them to an olfactory fMRI block-design dataset from 10 healthy young subjects presented with odorants for 12 s (ON), alternating with 30 s of clear air (OFF). Both approaches significantly improved sensitivity to odorant-induced signal changes in POC relative to a square-wave model based on the actual stimulation period. Our findings further demonstrate that the 'optimal' model fit to the data was achieved by shortening the odorant 'ON' period to approximately 6 s. These results suggest that sensitivity to odorant-induced POC activity in block-design experiments can be optimized by modeling an early phasic response followed by a precipitous rather than specific exponential decrease to baseline levels. Notably, whole brain voxel-wise analyses further established that modeling rapid habituation in this way is not only sensitive, but also highly specific to odorant-induced activation in a well-established network of olfactory-related brain areas.

Adult↗

Transient increase in endogenous basic fibroblast growth factor in neurons of ischemic rat brains.

An antiserum against basic fibroblast growth factor (bFGF) was shown to recognize an 18-kDa protein (possibly bFGF) in crude neocortical extracts by immunoblot and used to investigate the changes of bFGF immunoreactivity in neurons and astrocytes of the cerebral cortex of rats 1-21 days after unilateral occlusion of the middle cerebral artery (MCA). The mildly ischemic neocortex exhibited no signs of cell loss or degeneration in Nissl-stained sections 1-14 days after MCA occlusion, but it contained pyramidal cell bodies and processes with more intense bFGF immunoreactivity than did the control neocortex. bFGF immunoreactivity in the ischemic hemisphere gradually declined in intensity and by 21 days after MCA occlusion, it had reached the control level. On the other hand, there were many bFGF immunoreactive astrocytes in the primary olfactory cortex on the side of infarction. These findings suggest that MCA occlusion causes an increase in bFGF content not only in astrocytes but also in neurons, depending on the severity of the ischemic insult in individual cortical regions. The transient augmentation of bFGF expression or accumulation in mildly ischemic pyramidal neurons but not in astrocytes is in line with previous studies suggesting the neurotrophism of exogenously applied bFGF.

Animals↗

Effect of in vivo hypoxic preconditioning on changes in intracellular calcium content induced by long-term anoxia in rat brain slices.

We studied changes in intracellular calcium content induced by 10-min anoxia in olfactory cortex slices from rats exposed to single or 3-fold moderate hypobaric hypoxia ("ascend" at 5000 m). Repeated preconditioning with moderate hypobaric hypoxia produced a neuroprotective effect. This treatment abolished pathological calcium overload in brain slices induced in vitro by 10-min test anoxia.

Animals↗

Effect of stimulating the nucleus of the horizontal limb of the diagonal band on single unit activity in the olfactory bulb.

The effects of centrifugal afferents on single unit discharge in the main olfactory bulb were studied in anaesthetized rats. Recording with extracellular micropipettes revealed spontaneous firing in all bulb layers. Units were located to different laminae using evoked field-potential profiles and histological verification. Output neurons were identified by antidromic response to stimulation of the lateral olfactory tract. Single- or brief multiple-pulse stimulation in the nucleus of the horizontal limb of the diagonal band, but not in adjacent regions, facilitated 17 out of 27 mitral cells with no effect on 10, but inhibited 21 out of 33 granule cell layer units with no effect on 12. Of 13 presumed tufted cells, six were facilitated and the rest unaffected. In contrast, stimulation of olfactory cortex inhibited mitral cells and facilitated most granule layer cells. The results are consistent with an inhibition of tonic granule cell discharge by the horizontal diagonal band nucleus, with resultant disinhibition of mitral cells via the dendrodendritic synapses of granule cells on mitral cell secondary dendrites.

Animals↗

Estrogen increases the density of 5-hydroxytryptamine(2A) receptors in cerebral cortex and nucleus accumbens in the female rat.

Estrogen exerts a profound effect on mood and mental function in man. Based on our finding that estradiol selectively stimulates the expression of 5-hydroxytryptamine(2A) (5-HT2A) receptor mRNA in the dorsal raphe nucleus of the female rat, we investigated the effects of estradiol on the density of 5-HT2A receptors in brain. The distribution and density of 5-HT2A receptors were determined by in vitro binding of [3H]ketanserin in the presence of prazosin to exclude binding to alpha 1-adrenoreceptors. Brains were collected, processed and analysed in pairs from six estradiol- and six vehicle-treated animals. Our results show that a single pulse of estradiol induces a significant increase in the density of 5-HT2A receptors in female rat forebrain, particularly the anterior frontal, anterior cingulate and primary olfactory cortex and the nucleus accumbens. Since these brain regions play a pivotal role in cognition and emotion, as well as neuroendocrine and motor control, our findings provide the first experimental evidence for the fact that estrogen could alter mood and mental state by increasing the density of 5-HT2A receptors in cerebral cortex and nucleus accumbens.

Animals↗

Contralateral connections of the dog's frontal association cortex.

We studied the topography of contralateral connections of both prefrontal and premotor regions of the dog's frontal association cortex (FAC) by charting distributions of retrogradely labeled cells following unilateral HRP injections to various areas of this cortex. Generally, in the contralateral hemisphere the labeled cells were most numerous in the FAC areas localized homotopically to the injection sites, less numerous in FAC areas heterotopic to injections, and the least numerous in cortical areas situated outside the frontal lobe. The nonfrontal areas which project to the dorsal and ventral FAC differ from one another. Dorso-caudal parts of the cingular and insular areas, as well as the auditory, somatosensory and visual association cortices project to the dorsal FAC, while the ventro-rostral parts of the cingular and insular areas, together with the prepiriform and periamygdaloid areas of the olfactory cortex as well as the subcallosal area send their axons to the ventral FAC. Thus, the dorsal and ventral FAC areas are supplied by contralateral afferents originating from different cortical areas. Similar organization of ipsilateral FAC connections was described previously.

Animals↗

Concentration dependence of adenosine and the protection of rat cortical neurones during anoxia.

Aglycaemic/anoxic slices of rat olfactory cortex lose all electrical activity. On reoxygenation, 10 microM adenosine enhanced recovery from 23 +/- 7% to 53 +/- 12%; an increased tissue endurance of 5-7 min. 100 microM adenosine slightly depressed recovery to 11.5 +/- 2.1%. Dipyridamole increased whereas adenosine deaminase reduced recovery. These observations question the therapeutic effectiveness of high adenosine concentrations.

Adenosine↗

Slow-waves in the olfactory system: an olfactory perspective on cortical rhythms.

Over the past few years, it has become clear that oscillatory dynamics of cortical networks are closely involved in sensory coding, attention, memory and sleep. Although most experimental and theoretical studies have focused on the neocortex, we believe that progress in understanding cortical oscillations can be advanced by also considering the olfactory system--which shares many basic properties with the neocortex and shows similar oscillatory patterns. Besides offering the advantage of a greater experimental tractability, the olfactory cortex might prove to be instrumental in uncovering general functional principles of neocortical oscillations, by virtue of the potentially important role of olfaction during neocortical evolution. In this article, we illustrate how such an evolution-based comparative approach can provide novel insights into neocortical slow-wave sleep oscillations and their relationship to respiration.

Animals↗

Circadian modulation of fos responses to odor of the red fox, a rodent predator, in the rat olfactory system.

We have previously shown that neuronal responses to a biologically neutral odor, cedar wood oil, in the olfactory system are greater in the subjective night compared to subjective day. In the present study, we confirm these results and extend them to a biologically relevant odor, the urine of the red fox, a rodent predator. Fos induced by exposure of rats to fox urine or a neutral odor, mineral oil, was markedly enhanced during the subjective night compared to subjective day in the main olfactory bulb, primary olfactory cortex, and other structures related to olfaction. These results show that neuronal responses to an ethologically relevant odor follow a circadian rhythm similar to biologically neutral odors. Fos responses induced by fox urine were observed to be of greater magnitude than a neutral odor in brain areas involved in fear responses, suggesting that fox urine activates fear circuitry.

Animals↗

Characterization of a neurokinin B receptor site in rat brain using a highly selective radioligand.

We have recently characterized a tachykinin receptor subtype (SP-N) whose preferred ligand is the mammalian neuropeptide, neurokinin B (Laufer, R., Wormser, U., Friedman, Z. Y., Gilon, C., Chorev, M., and Selinger, Z. (1985) Proc. Natl. Acad. Sci. U.S.A. 82, 7444-7448). To investigate this novel tachykinin receptor, we have now prepared a radiolabeled peptide, N alpha-[( 125I]desamino-3-iodotyrosyl)-[Asp5,6, N-methyl-Phe8]substance P (5-11) heptapeptide (125I-BH-NH-Senktide), which selectively interacts with the SP-N receptor subtype. The binding of 125I-BH-NH-Senktide to rat cerebral cortex membranes was studied under conditions that minimized nonspecific binding. Unlike other tachykinin receptor probes, this radioligand is not degraded during the binding experiment. Binding of 125I-BH-NH-Senktide is reversible, saturable, and of high affinity (KD = 0.9 nM). The radioligand labels a single class of binding site (122 fmol binding sites/mg of protein), as indicated by a linear Scatchard plot and a Hill coefficient close to unity (nH = 1.05). The pharmacological specificity of this binding site corresponds to that of the neuronal SP-N receptor in guinea pig ileum myenteric plexus, which was determined by a functional bioassay. Among various rat brain regions, the highest binding was observed in the cerebral cortex, olfactory bulb, hypothalamus, and hippocampus. These results suggest the existence and specific distribution of a neurokinin B receptor site of the SP-N type in rat brain. 125I-BH-NH-Senktide is the first selective and potent probe for this receptor and is thus an important tool for further studies of its distribution, regulation, and functional role.

Animals↗

[The effect of the perfusates from tetanized donor slices on the induction of long-term potentiation in recipient slices].

Perfusate collected during tetanic stimulation of the lateral olfactory tract from the donor rat olfactory cortex induced long-term changes of the focal potentials in recipient slices: the perfusate of the depression response to the tetanization-induced potentiation, and vice versa, in the recipient slices. The donor slices seem to release some active substances during tetanization which are able to modulate the electric activity in the recipient slices.

Animals↗

[The role of the phosphoinositide signal system and phosphatidylethanolamine methylation in the development of long-term posttetanic potentiation in rats].

A long-term potentiation of the rat olfactory cortex slices induced by a high-frequency stimulation is followed by membrane phospholipid changes. Activation of the phosphoinositide metabolism and normalising of phosphatidylethanolamine methylation occurs within 60 min after tetanisation when the potentiation fades. The findings reveal a regulating role of the phospholipid signal system at different stages of the long-term potentiation.

Animals↗

Heat shock protein HSP70 increases the resistance of cortical cells to glutamate excitotoxicity.

Preincubation of cultured slices of the olfactory cortex of rat brain with heat shock protein in a concentration of 1 microg/ml protected the pre- and postsynaptic mechanisms of glutamatergic synaptic transmission from glutamate excitotoxicity (50 mM) inducing blockade of excitatory postsynaptic function and reducing presynaptic processes. It was hypothesized that heat shock protein protects AMPA and NMDA receptor-mediated processes.

Animals↗

In vivo imaging of functional disruption, recovery and alteration in rat olfactory circuitry after lesion.

Compensatory changes following disruption of neuronal circuitry have been indicated by previous imaging studies of stroke and other brain injury, but evidence of the pathways involved in such dynamic changes has not been shown in vivo. We imaged rats before and after lesion-induced disruption of the lateral olfactory tract to investigate the subsequent recovery and/or reorganization of functional neuronal circuitry. Serial magnetic resonance imaging was performed following intranasal administration of a paramagnetic track tracer Mn(2+). Images were analyzed using statistical mapping techniques in the stereotactic coordinate system. At 1 week post-lesion, Mn(2+) transport caudal to lesion was reduced as expected, and more importantly, increased transport through the anterior commissure was seen. At 4 weeks post-lesion, there was recovery of transport caudal to lesion, and increased transport through the anterior commissure extended to the contralateral olfactory cortex. Correlation analysis of regional Mn(2+) transport indicated that contralateral enhancement was not simply due to septal window spillover. This study demonstrates for the first time in vivo evidence of compensatory changes in functional neuronal activity to a contralateral pathway through the commissure following brain injury.

Administration, Intranasal↗

Estrogen control of central neurotransmission: effect on mood, mental state, and memory.

1. Estrogen exerts profound effects on mood, mental state and memory by acting on both "classical" monoamine and neuropeptide transmitter mechanisms in brain. Here we review an example of each type of action. 2. With respect to the effect of estrogen on central monoamine neurotransmission, low levels of estrogen in women are associated with the premenstrual syndrome, postnatal depression and post-menopausal depression. Sex differences in schizophrenia have also been attributed to estrogen. Previous studies have shown that estrogen stimulates a significant increase in dopamine2 (D2) receptors in the striatum. Here we show for the first time that estrogen also stimulates a significant increase in the density of 5-hydroxytryptamine2A (5-HT2A) binding sites in anterior frontal, cingulate and primary olfactory cortex and in the nucleus accumbens, areas of the brain concerned with the control of mood, mental state, cognition, emotion and behavior. These findings explain, for example, the efficacy of estrogen therapy or 5-HT uptake blockers such as fluoxetine in treating the depressive symptoms of the premenstrual syndrome. and suggest that the sex differences in schizophrenia may also be due to an action of estrogen mediated by way of 5-HT2A receptors. 3. With respect to the effect of estrogen on central neuropeptide transmission, estrogen stimulates the expression of the arginine vasopressin (AVP) gene in the bed nucleus of the stria terminalis (BNST) in rodents. This results in a 100-fold increase in AVP mRNA in the BNST and a massive increase in AVP peptide in the BNST and its projections to the lateral septum and lateral habenula. The BNST-AVP system enhances and/or maintains "social" or "olfactory" memory, and thus provides a powerful model for correlating transcriptional control of neuropeptide gene expression with behavior. Whether similar mechanisms operate in the human remain to be determined. 4. These two examples of the action of estrogen on central neurotransmission are discussed in terms of their immediate clinical importance for the treatment of depressive symptoms, their use as powerful models for investigations on the steroid control of central neurotransmitter mechanisms, and the role of estrogen as "Nature's" psychoprotectant.

Affect↗

Light microscopic immunocytochemical localization of pyruvate dehydrogenase complex in rat brain: topographical distribution and relation to cholinergic and catecholaminergic nuclei.

Pyruvate dehydrogenase complex (PDHC; EC 1.2.4.1, EC 2.3.1.12 and EC 1.6.4.3) includes 3 catalytically active mitochondrial enzymes involved in the formation of cellular energy through the tricarboxylic acid cycle and in the synthesis of ACh. We sought to determine whether immunocytochemically detected PDHC was enriched in neurons of the rat CNS, and, if so, whether the perikarya containing higher levels of PDHC immunoreactivity were differentially distributed with respect to their size or location within nuclear groups containing ACh, catecholamines or other unidentified transmitters. Under the labeling conditions used in this study, the peroxidase-antiperoxidase immunoreaction product for PDHC was detectable principally in neuronal perikarya. The intensity of immunoreactivity within perikarya was variable as judged visually and by cellular, computer-assisted densitometry. In the forebrain, the most intensely labeled perikarya were seen in the medial septal nuclei, the nuclei of the diagonal band, the nuclei basalis, the dorsal and ventral striatum, and the entorhinal cortex. More caudally, intense immunoreactivity was detected in perikarya in the supraoptic hypothalamic nuclei, reticular thalamic nuclei, lateral substantia nigra, most of the tegmental nuclei, lateral nuclei of the trapezoid body, raphe pontis and obscuris, and the caudal part of the lateral reticular nuclei. In addition, many of the motor nuclei of the cranial nerves, including the dorsal motor nuclei of the vagus and the hypoglossal nuclei, and the nucleus ambiguus contained perikarya with intense PDHC labeling. Densitometry revealed no differences in intensity of immunoreactivity in soma of varying sizes. However, the intensity of neuronal labeling for PDHC was significantly greater in several nuclear groups that were shown in adjacent sections to contain cholinergic, but not catecholaminergic, enzymes. In contrast, the primary olfactory cortex, pyramidal cell layer of the regio inferior of hippocampus, and the Purkinje cell layer of the cerebellum were regions having perikarya with intense PDHC immunoreactivity but lacking both the synthetic and the degradative enzymes for ACh. These results provide the first morphological evidence that PDHC, a general metabolic enzyme complex, is enriched in selective perikarya that are heterogeneously distributed in brain and are especially abundant in many of the regions containing cholinergic neurons. The heterogeneity of PDHC immunoreactivity suggests that certain cholinergic as well as noncholinergic nuclei may be selectively vulnerable to mitochondrial diseases involving pyruvate utilization.

Animals↗

Olfactory learning-related NCAM expression is state, time, and location specific and is correlated with individual learning capabilities.

The notion that long-term synaptic plasticity is generated by activity-induced molecular modifications is widely accepted. It is well established that neural cell adhesion molecule (NCAM) is one of the prominent modulators of synaptic plasticity. NCAM can be polysialylated (PSA-NCAM), a reaction that provides it with anti-adhesion properties. In this study we have focused on NCAM and on its polysialylated state, and their relation to learning of an olfactory discrimination task, which depends on both the piriform (olfactory) cortex and hippocampus. We trained rats to distinguish between pairs of odors until rule learning was achieved, a process that normally lasts 6-8 days. At four time points, during training and after training completion, synaptic NCAM and PSA-NCAM expression were assessed in the piriform cortex and hippocampus. We report that NCAM modulation is specific to PSA-NCAM, which is upregulated in the hippocampus one day after training completion. We also report a correlation between the performance of individual rats in an early training stage and their NCAM expression, both in the piriform cortex and hippocampus. Since individual early performance in our odor discrimination task is correlated with the performance throughout the training period, we conclude that early NCAM expression is associated with odor learning capability. We therefore suggest that early synaptic NCAM expression may be one of the factors determining the capability of rats to learn.

Animals↗