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Biomedical subjects

L Hernádi

Publications and source records attributed to L Hernádi.

At least 19 recordsLinked to original sources

Thee effect of food intake on the central monoaminergic system in the snail, Lymnaea stagnalis.

We investigated the effect of food intake on the serotonin and dopamine levels of the CNS as well as on the spontaneous firing activity of the CGC in isolated preparations from starved, feeding and satiated animals. Furthermore we investigated the effects of 1 microM serotonin and/or dopamine and their mixture on the firing activity of the CGC. The HPLC assay of serotonin and dopamine showed that during food intake both the serotonin and dopamine levels of the CNS increased whereas in satiated animals their levels were not significantly more than the control levels. Recording from the CGC in isolated CNS preparation from starved, feeding or satiated animals showed that feeding increased the firing frequency of the CGC compared to the starved control. The application of 1 microM dopamine decreased the firing frequency whereas the application of 1 microM serotonin increased the firing frequency of the CGC. We conclude that during food intake the external and internal food stimuli increase the activity of the central monoaminergic system and also increase the levels of monoamines in the CNS. Furthermore, we also suggest that the increased dopamine and serotonin levels both affect the activity of the serotonergic neurons during the different phases of feeding.

Animals↗

Topographic organization of efferent neurons with different neurochemical characters in the cerebral ganglia of the snail Helix pomatia.

This study provides a description of the organization of neurons efferent to different head areas in the cerebral ganglia of Helix pomatia, revealed by simultaneous Ni-lysine and Co-lysine back-filling of different pairs of cerebral nerves. The backfills show that labeled cerebral neurons that innervate the head areas are concentrated in seven representation foci distributed in different parts of the cerebral ganglia. Almost each head area is represented in each focus. At a gross level, the representation of the different head areas in the representation foci shows a topographic arrangement. Each focus is constituted by neurochemically different groups of neurons. All head areas are innervated by serotonin-containing fibers from a single focus (Focus 2) and by dopamine-containing fibers from Foci 1, 2, and 4. However, they are innervated by CARP and FMRFamide-containing fibers from all of the foci. The combination of retrograde labeling with 5, 6-dihydroxytriptamine induced pigment labeling of serotonin-containing neurons or with fluorescence tyrosinehydroxylase immunocytochemistry to detect dopamine-containing neurons showed that the different head areas are topographycally represented in the clusters of both the serotonin- and dopamine-containing cells. The combination of Ni-lysine backfillings from different cerebral nerves with fluorescence CARP and FMRFamide immunocytochemistry revealed that the head areas are represented also in both the CARP and FMRFamide immunoreactive groups of neurons in the different foci.

Animals↗

Mytilus inhibitory peptides (MIP) in the central and peripheral nervous system of the pulmonate gastropods, Lymnaea stagnalis and Helix pomatia: distribution and physiological actions.

The distribution and neuroanatomy of Mytilus inhibitory peptides (MIP)-containing neurons in the central nervous system and their innervation pattern in the peripheral nervous system of the pulmonate snail species, Lymnaea stagnalis and Helix pomatia, have been investigated immunocytochemically, by applying an antibody raised to GSPMFVamide. A significant number of immunoreactive neurons occurs in the central nervous system of both species (Lymnaea: ca 600-700, Helix: ca 400-500), but their distribution is different. In Lymnaea, labeled neurons are found in all central ganglia where a number of large and giant neurons, previously identified physiologically, reveal MIP immunoreactivity. In Helix, most of the immunolabeled neurons are small (12-30 microm) and concentrated in the buccal and cerebral ganglia; the parietal ganglia are free of labeled cells. In both species, the ganglionic neuropils, peripheral nerves, connectives, and commissures are richly supplied with immunolabeled fibers. The MIP-immunoreactive innervation pattern in the heart, intestine, buccal mass and radula, and foot is similar in both species, with labeled axonal bundles and terminal-like arborizations (buccal mass, foot) or a network of varicose fibers (heart, intestine). Intrinsic neurons are not present in these tissues. The application of GSPYFVamide inhibits the spontaneous contractions of the esophageal longitudinal musculature in Helix, indicating the bioactivity of the peptide. An outside-out patch-clamp technique has demonstrated that GSPYFVamide opens the K+ channels in central nerve cells of Helix. Injection of GSPYFVamide into the body cavity inhibits the feeding of starved Helix. A wide modulatory role of MIP at central and peripheral levels is suggested in Lymnaea and Helix, including the participation in intercellular signalling processes and remote neurohormonal-like control effects.

Animals↗

The presence and specificity of crustacean cardioactive peptide (CCAP)-immunoreactivity in gastropod neurons.

CCAP-like immunoreactivity was detected in central neurons with small and medium diameters in both Helix and Lymnaea CNS. The intensity of immunoreactivity showed seasonal changes with a maximum intensity during spring. The overwhelming majority of nerve cell bodies exhibiting CCAP immunoreactivity is located in the cerebral and parietal ganglia of both Helix and Lymnaea. The neurons of pleural and buccal ganglia were devoid of CCAP-immunoreactivity. Following preabsorbtion of CCAP antibody in 1:15000 dilution with 10(-3) M CCAP or CCAP-related peptide (Helix -CCAP), immunoreactivity could not be observed in neurons, demonstrating the specificity of the antibody to CCAP-related molecules in both Helix and Lymnaea.

Amino Acid Sequence↗

The possible roles of the monoaminergic system in the feeding of the snail Helix pomatia.

The possible role of serotonin and dopamine in the feeding of Helix pomatia was studied applying immunocytochemical, biochemical, and behavioral techniques as well as bioassay experiments. Immunocytochemistry showed that dopamine-containing (thyrosin-hydroxylase-immunoreactive) neuronal elements of the crop and the gizzard belong to the intrinsic part, whereas serotonin-containing (serotonin-immunoreactive) neuronal elements belong to the extrinsic part of the gastrointestinal nervous system. Bioassay studies on the spontaneous contractions of the crop and the gizzard showed that dopamine affected only the longitudinal muscle contractions by increasing both the tonus and contractility, whereas serotonin was effective on both the longitudinal and circular muscle contractions. Serotonin increased the tonus and contractility of longitudinal muscles in the crop but decreased them in the gizzard. Serotonin decreased the tonus and contractility of the circular muscles in the crop but increased them in the gizzard. Serotonin effects on the circular muscle of the gizzard were concentration dependent between a range of 10(-5) M-3 x 10(-5) M. HPLC measurements of monoamines in starved and satiated animals showed that the concentration of both dopamine and serotonin significantly decreased in both the CNS and different parts of the gastrointestinal tract of satiated animals, suggesting a significant monoamine liberation during feeding. The injection of monoamines (10(-3) and 10(-2) M) into the body cavity of starved animals showed that only dopamine was able to induce feeding whereas serotonin increased the general activity of the animals suggesting that the initiation of feeding is rather dopamine than serotonin dependent.

Animals↗

Topographic organization of serotonergic and dopaminergic neurons in the cerebral ganglia and their peripheral projection patterns in the head areas of the snail Helix pomatia.

The distribution of monoaminergic neurons within the cerebral ganglia was investigated in the pulmonate snail Helix pomatia. Simultaneous serotonin and tyrosine hydroxylase double immunostaining revealed that the immunoreactive cell groups are concentrated in a putative monoaminergic center on the ventral surface of the cerebral ganglia. Simultaneous cobalt (Co)- and nickel (Ni)-lysine backfills of cerebral nerves were combined with 5, 6-dihydroxytryptamine pigment-labelling of serotonergic neurons, or with fluorescence immunocytochemistry of dopaminergic neurons. This showed that the serotonergic and dopaminergic cell groups can be divided into smaller subgroups on the basis of their axonal projections into different cerebral nerves. These subgroups show a topographic organization within the serotonergic and dopaminergic neuronal clusters. In the serotonergic system, the different regions of the head are represented in a rostrocaudal direction, whereas a caudorostral organization is characteristic for the dopaminergic system. No serotonin- or dopamine-immunoreative cell bodies but numerous fibers were observed in the head areas, indicating that these are innervated by cerebral monoaminergic neurons and show different innervation patterns. Serotonin-immunoreactive fibers mostly innervate muscle fibers, whereas dopamine-immunoreactive processes do not innervate effector cells, but terminate within the nerve branches of the head areas. On the basis of their innervation pattern, we suggest that dopaminergic neurons may take part in en route modulation of sensory afferent and efferent processes in an as yet unknown manner. The serotonergic neurons, on the other hand, may play a direct role in the modulation of muscle function.

Animals↗

The organization of serotonin-, dopamine-, and FMRFamide-containing neuronal elements and their possible role in the regulation of spontaneous contraction of the gastrointestinal tract in the snail Helix pomatia.

The distribution of serotonin-, tyrosine hydroxylase-, and FMRFamide-immunoreactive neuronal elements, as well as the concentrations of serotonin and dopamine in the different parts of the gastrointestinal tract, were studied in the snail Helix pomatia. The sensitivity of the spontaneous contractions of the alimentary tract to serotonin, dopamine, and FMRFamide was also tested. Serotonin-, tyrosine hydroxylase-, and FMRFamide-immunoreactive elements could be demonstrated in each part of the gastrointestinal tract, but they showed different innervation patterns. Serotonin- and tyrosine hydroxylase-immunoreactive elements were dominant in the submucosal layer, whereas FMRFamide-immunoreactive elements were dominant in both the mucosal and submucosal layers. Tyrosine hydroxylase-immunoreactive elements were confined to the longitudinal muscle trabeculae of submucosa, whereas serotonin-immunoreactive elements were distributed throughout the submucosal layer. No serotonin-immunoreactive cell bodies, but only fibers, could be detected in the gastrointestinal tract, and therefore they represent extrinsic elements. Tyrosine hydroxylase- and FMRFamide-immunoreactive cell bodies represent intrinsic elements of the tract. The occurrence and density of the serotonin- and tyrosine hydroxylase-immunoreactive elements showed significant differences in the different parts of the alimentary tract, in accordance with HPLC assays, which revealed a significant frontocaudal decrease in both the serotonin (from 2.11 to 1.21 pM/mg) and dopamine (from 3.28 to 0.52 pM/mg) contents of the different parts of the alimentary tract. Dopamine at 10(-5) M concentration proved to be effective only on the longitudinal muscles by increasing the tone and frequency of contractions, but was ineffective on the circular muscles. Serotonin affected both the longitudinal and circular muscles. Serotonin at 10(-5) M concentration decreased the tone and increased the frequency of low-amplitude contractions of the longitudinal muscles of the esophagus and the gizzard but increased both the tone and frequency of the crop. Serotonin at 10(-9) M concentration slightly decreased the tone and blocked the contractions of the circular muscles in the crop but at 10(-5) M concentration induced contractions of the circular muscles in the gizzard. FMRFamide at 10(-6) M concentration decreased the tone and was shown to block the contractions of both the longitudinal and circular muscles.

Animals↗

Screening for fetal anomalies in the 12th week of pregnancy by transvaginal sonography in an unselected population.

The advantages and limitations of transvaginal (TV) sonography in detecting fetal anomalies in the 12th week of pregnancy were examined in a prospective screening study of an unselected population. During a 3-year period, 3991 examinations were performed and 35 fetuses were identified as having 43 anomalies (0.9 per cent). Most of these malformations were either severe structural disorders or isolated nuchal changes when karyotyping revealed chromosomal aberration in six cases. Twenty-one pregnancies were terminated and three fetuses died. Routine transabdominal (TA) ultrasonographic examinations were performed at 18 and 30 weeks in all those pregnancies where the TV scan had not found fetal anomalies. TA sonography identified 19 abnormal fetuses and ten cases remained undetected. TV sonography detected 51 per cent of malformed fetuses which were diagnosed prenatally (not including cases with nuchal oedema) and 41 per cent of the total were found in this study. Besides offering the possibility of early termination, first trimester screening has the advantage of identifying a transient sonographic sign, nuchal oedema, which can be used as a marker in screening for fetal chromosomal abnormalities. However, standard mid-second-trimester TA scanning is still recommended, since a significant number of malformations cannot be detected so early in pregnancy.

Congenital Abnormalities↗

[Prenatal ultrasonic diagnosis during the first pregnancy trimester].

A case in which routine transvaginal sonography detected a rare fetal obstructive uropathy, bladder outlet obstruction at 12 weeks' gestation is reported. The ultrasonic appearance of the malformation is discussed and intrauterine therapeutic approaches are reviewed.

Abnormalities, Multiple↗

[Treatment of ectopic pregnancy by transvaginal ultrasonography-guided puncture and local application of methotrexate].

The early detection of ectopic pregnancy--using transvaginal sonography, beta-human chorionic gonadotropin determination in blood and laparoscopy--allow us to perform conservative therapeutic approaches to preserve future fertility. The authors report their experiences on five patients treated by local administration of methotrexate. The drug was injected to the ectopic gestational sac by transvaginally performed, sonographically directed puncture. The technique of the method, the criteria of selection and follow-up of patients have been discussed. Giving an overview on the other conservative methods, their increasing role is suggested in the management of early ectopic pregnancies.

Administration, Topical↗

Distribution of catch-relaxing peptide (CARP)-like immunoreactive neurons in the central and peripheral nervous system of Helix pomatia.

Immunocytochemistry was performed on the nervous system of Helix by the use of an antibody raised against a myotropic neuropeptide, the catch-relaxing peptide (CARP), isolated from Mytilus edulis. In each ganglion of the central nervous system of Helix pomatia, numerous CARP-immunoreactive cell bodies and a dense immunoreactive fiber system could be observed with a dominancy in the cerebral and pedal ganglia. The majority of the immunoreactive neurons are unipolar, although multipolar neurons also occur. In the neuropil areas, CARP-immunoreactive fibers show extensive arborization, which may indicate a central role of CARP. CARP-immunoreactive elements could be observed in each investigated peripheral nerve and peripheral areas, namely in the intestine, heart, aorta, buccal mass, lips, and foot. However, CARP-immunoreactive cell bodies could only be demonstrated in the intestine and the foot musculature. Thin varicose CARP-immunoreactive fibers were observed over both muscle and gland cells in the different peripheral organs, suggesting a peripheral role of CARP. In vivo CARP injection into the body cavity (10(-3), 10(-4), 10(-5) M) altered the general behavioral state of the animals and induced the relaxation of the musculature of the whole body wall indicating that CARP has a significant role in the regulation of muscle contraction.

Amino Acid Sequence↗

In vitro capsaicin-induced cytological changes and alteration in calcium distribution in giant serotonergic neurons of the snail Helix pomatia: a light- and electron-microscopic study.

Morphological changes induced by capsaicin were studied in the serotonergic metacerebral giant neurons of the cerebral ganglia of Helix pomatia under in vitro conditions. Capsaicin at a concentration of 10(-4)M caused characteristic structural alterations in the giant serotonergic neurons but did not significantly influence serotonin immunoreactivity in the neurons. At the light-microscopic level, the most conspiciuous structural alterations were swelling of the cell bodies, which contained a swollen pale nucleus. Under the electron microscope, the nuclei, mitochondria and the cisternae of the endoplasmic reticulum were swollen in the capsaicin-affected metacerebral giant neurons. Electron-microscopic cytochemical techniques for calcium demonstration revealed electron-dense deposits in the swollen mitochondria and in the cisternae of the endoplasmic reticulum, suggesting an increased Ca2+ influx. The serotonergic metacerebral giant neurons could be labelled by cobalt (1mM) in the presence of capsaicin (10(-4)M) suggesting that capsaicin opens the cation chanels of the capsaicin-sensitive neuronal membrane. The morphological and cytochemical alterations induced by capsaicin in the serotonergic metacerebral giant neurons of Helix pomatia closely resemble those induced in sensory neurons of mammalian dorsal root ganglion.

Animals↗

Neurons with different immunoreactivity form clusters in the CNS of Helix pomatia.

The distribution of serotonin (5HT-ir), FMRF amide (FMRF a-ir), catch-relaxing-peptide (CARP-ir), dopamine (DA-ir), gamma-amino-butyric-acid (GABA-ir), and leucokinin (LK-ir) immunoreactive neurons were compared in the ganglia of Helix CNS. These neurons are not distributed randomly, but their location outlines distinct groups in the ganglia. In a few groups only DA-ir, GABA-ir and LK-ir neurons can be seen, whereas in the majority of groups FMRFa-ir, CARP-ir and 5HT-ir neurons are localized together. In the latter groups of immunoreactive neurons either FMRFa- and CARP- or 5HT- and FMRFa-immunoreactivities coexist in numerous neurons. Immunoreactive groups composed of DA-ir, GABA-ir and LK-ir neurons are localized exclusively in the areas of the origin of skin nerves, suggesting that these neurons are related to the processing of cutaneous afferent information. Other groups constituted by 5HT-ir, FMRFa-ir and CARP-ir neurons are localized first of all in ganglia the neurons of which innervate large masses of muscle fibers. The primary role of these neurons in motor/efferent processes is assumed.

Animals↗

Tachykinin- and leucokinin-related peptides in the molluscan nervous system.

Distribution of locustatachykinin-like immunoreactive (LomTKLI) and leucokinin like immunoreactive (LKLI) neurons in the central nervous system (CNS) of the pond snail, Lymnaea stagnalis was investigated and compared to that found in Helix pomatia. Occurrence of LomTKLI neurons in different ganglia of the freshwater bivalve, Anodonta cygnea, was also studied. Similar to Helix, the Lymnaea CNS contained LomTKLI and LKLI neurons mainly in the cerebral and pedal ganglia, but the number of labelled neurons was found to be significantly lower in Lymnaea (150-184 LomTKLI and 86-104 LKLI neurons). LomTKLI elements in anodonta ganglia were mainly confined to the neuropil, whereas the immunostained perikarya were only randomly distributed. LomTKLI and LKLI neurons were also demonstrated in a similar pattern of distribution in the intestine of Lymnaea and Helix. Analyzing the membrane effects of locustatachykinin-I, leucokinin-I and anodontatachykinin, Helix neurons were found to be either depolarized or hyperpolarized. Voltage-clamp experiments revealed the role of Ca- or K-currents in peptide effects. Our results indicate that the different tachykinin- and leucokinin-systems are involved in different central and peripheral regulatory processes of the molluscan nervous system.

Animals↗

[Examination of fetal developmental abnormalities by routine transvaginal ultrasonic screening in the 12th week of pregnancy].

The increased resolution of transvaginal sonography allows a detailed evaluation of fetal anatomy in the first trimester of pregnancy. According to the authors experiences screening for fetal anomalies is a real possibility when the fetus is bigger than 50 mms in size (crownrump-length). A prospective study was started in February 1992. Since that time transvaginal sonography has been offered to every woman in the 12th week of their pregnancies. Twenty structural anomalies have been diagnosed in 18 fetuses during a 17-month period. Besides of detecting "classical" congenital anomalies, nuchal oedema is considered to be a promising sign for screening chromosomal abnormalities especially Down syndrome. In this series 4 cases of trisomy 21 has been diagnosed by karyotyping in the presence of nuchal oedema. The results of their study suggest, that more and more fetal anomalies can be detected in the first trimester of pregnancy, therefore transvaginal sonography is offered to use as a screening method, being a powerful diagnostic tool for early diagnosis.

Chromosome Aberrations↗

Peptidergic neurons in the snail Helix pomatia: distribution of neurons in the central and peripheral nervous systems that react with an antibody raised to the insect neuropeptide, leucokinin I.

In this study, an antiserum raised against an insect myotropic peptide, leucokinin I (DPAFNSWGamide), was used for mapping leucokinin-like immunoreactive (LK-LI) neurons in the gastropod mollusc, Helix pomatia. Immunocytochemistry performed on both whole-mounts and cryostat sections demonstrated LK-LI neurons in all ganglia of the central nervous system (CNS), except the visceral ganglion. Altogether about 700 immunolabelled neurons have been found, with nearly one-half (46%) in the cerebral ganglia. A large proportion of the LK-LI neurons have small cell bodies and are likely to be interneurons. The most prominent LK-LI cell group is represented by the entire neuron population of the mesocerebri, which is the major source of a thick fiber bundle system, encircling and innervating the whole CNS. One single LK-LI giant neuron was found, which is located in the left pedal ganglion and is termed GLPdLKC (giant left pedal leucokinin immunoreactive cell). This cell has not been identified previously. The ganglion neuropils are heavily innervated by varicose LK-LI fiber arborizations. Some integrative centers, such as the medullary neuropil of the procerebri, reveal an extreme density of LK-LI innervation. All major peripheral nerves contain a large number of LK-LI axons, and LK-LI innervation is found in the musculature of different peripheral organs (buccal mass, lip, tentacles, oviduct, intestine). Among the peripheral organs investigated, the intestine contains a rich varicose LK-LI network, composed of both intrinsic and extrinsic elements. Radioimmunoassay (RIA) demonstrates a very high content of LK-LI material in Helix ganglion extracts (about 50 pmol/CNS). This is the first report on the occurrence of a substance resembling the myotropic neuropeptide leucokinin I in a phylum outside arthropods. Based on our immunocytochemical observations, a role for leucokinin-like peptides in both central and peripheral regulatory processes in Helix is suggested. According to double-labelling experiments, only a small number of the LK-LI neurons are labelled with an antibody to the vertebrate tachykinin substance P.

Amino Acid Sequence↗

Distribution and anatomy of GABA-like immunoreactive neurons in the central and peripheral nervous system of the snail Helix pomatia.

Gamma-aminobutyric acid (GABA)-like immunoreactive neurons were studied in the central and peripheral nervous system of Helix pomatia by applying immunocytochemistry on whole-mount preparations and serial paraffin sections. GABA-immunoreactive cell bodies were found in the buccal, cerebral and pedal ganglia, but only GABA-immunoreactive fibers were found in the viscero-parietal-pleural ganglion complex. The majority of GABA-immunoreactive cell bodies were located in the pedal ganglia but a few could be found in the buccal ganglia. Varicose GABA-ir fibers could be seen in the neuropil areas and in distinct areas of the cell body layer of the ganglia. The majority of GABA-ir axonal processes run into the connectives and commissures of the ganglia, indicating an important central integrative role of GABA-immunoreactive neurons. GABA may also have a peripheral role, since GABA-immunoreactive fibers could be demonstrated in peripheral nerves and the lips. Glutamate injection did not change the number or distribution of GABA-immunoreactive neurons, but induced GABA immunoreactivity in elements of the connective tissue ensheathing the muscle cells and fibers of the buccal musculature. This shows that GABA may be present in different non-neural tissues as a product of general metabolic pathways.

Animals↗

Peptidergic and aminergic centers in the Helix cerebral ganglia: somatotopy and immunocytochemistry.

In Helix cerebral ganglia the relationship between location of serotonin, dopamine, CARP, FMRFamide, Met-enkephalin, and substance P immunoreactive neurons and the different representation foci of the head areas was compared. The majority of immunoreactive neurons was located in representation foci, however, the extension of immunoreactive centers are larger than the representation foci. Therefore, the real extension of a representation focus with the additional non-efferent neurons might be larger than revealed by retrograde labelling.

Animals↗