Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Nervous System”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 91 records · Page 5Linked to original sources

Differences in systemic and central nervous system cellular immunity relevant to relapsing-remitting multiple sclerosis.

In order to elucidate the differences between systemic and central nervous system (CNS) immunity that are relevant to exacerbations of multiple sclerosis (MS), paired peripheral blood and cerebrospinal fluid (CSF) samples obtained from 36 non-treated patients with relapsing-remitting MS (RRMS) were simultaneously examined using flow cytometry to determine the percentages of functional lymphocyte subsets, as well as enzyme-linked immunosorbent assays for measuring soluble immune mediators. Active RRMS patients (n = 27) were characterized by an increase in CD4+ CXCR3+ Th1 cells in blood as compared with inactive patients (n = 9), and this parameter was inversely correlated with plasma levels of IL-10 and IL- 12p70. In contrast, an increase in the percentage of CD4+ CD25+ cells and a decrease in the percentage of CD8+ CD11a(high) cells were features of CSF samples from those with active RRMS. Further, CSF CD4+ CD25+ cells had a close association with leukocyte counts as well as albumin and CXCL10 levels in the CSF, and, thus, could be useful as a measure for inflammatory reactions in the CNS. On the other hand, CD8+ CD11a(high) cells may function as immunoregulatory cells, as their percentage in the CSF showed a positive correlation with CSF levels of the anti-inflammatory cytokine IL-4. These findings suggest that MS relapses occur in a combination with altered cell-mediated immunity that differs between the peripheral blood and CSF compartments, while measurement of lymphocyte subsets may be helpful for monitoring disease status.

Antigens, CD↗

Modulation of electrical activity and cyclic nucleotide metabolism in molluscan nervous system by a peptide-containing nervous system extract.

A peptide-containing extract (PE) from Helix nervous system modifies the endogenous bursting pattern of electrical activity in Helix neurone F-1. This effect is similar to that induced in neuron F-1 by certain phosphodiesterase inhibitors and cAMP derivatives. The PE, and the vertebrate peptide hormones vasopressin and oxytocin, also cause an accumulation of cAMP in Helix ganglia in vitro. The factor in the PE which causes the cAMP accumulation is destroyed by Pronase, is lost on dialysis, and is stable to boiling. In all these respects it is identical to the factor which causes the change in neuronal electrical activity. The PE also stimulates adenylate cyclase activity in a crude membrane fraction prepared from Helix ganglion homogenates. This stimulation is abolished by prior dialysis of the PE, or pretreatment of the PE with pepsin, but is not affected by boiling of the PE. Pepsin-treated PE has no effect on electrical activity in neuron F-1. The adenylate cyclase-stimulating activity of the PE, like the factor which modifies neurone F-1 electrical activity, elutes in the void volume of a Sephadex G-10 column. The included volume of this column contains a factor which inhibits PE modification of neuronal electrical activity, and also inhibits both basal and PE-stimulated adenylate cyclase activity. The data are consistent with the possibility that cAMP mediates the effects of the PE on electrical activity in molluscan neurones.

Adenylyl Cyclases↗

Genes required for specifying cell fates in Drosophila embryonic sensory nervous system.

The nervous system contains a diverse group of cells. Specification of the correct cell fate is obviously important for the proper function of the nervous system, yet how are the fates of different neurons determined during development? Very little is known about the underlying molecular mechanisms used in the mammalian nervous system. How, for example, are certain cells directed to form pyramidal cells rather than local interneurons? In the fruit fly Drosophila melanogaster, and the nematode Caenorhabditis elegans, some progress has been made in studying neuronal fate determination. For instance, in Drosophila, a number of genes acting at different levels have been found to control this process. They function to (1) endow a subset of the ectodermal cells in the early embryo with the potential to become neuronal precursors, (2) commit some of these cells to the fate of neuronal precursors, (3) specify the identity of these neuronal precursors, and (4) specify the identity of the individual progeny cells of a neuronal precursor. In this review, we discuss first the rationale of the genetic approach, then outline the working hypothesis and, finally, briefly describe the genes known to be involved in the formation of the sensory nervous system in Drosophila. We also discuss the prospects for extrapolating these molecular mechanisms and principles to vertebrate and invertebrate neural development.

Animals↗

Evidence for an enkephalinergic system in the nervous system of the pond snail, Lymnaea stagnalis.

Evidence for the presence of an enkephalinergic system in the ganglia of the pond snail, Lymnaea stagnalis, has been obtained with 3 experimental approaches. Scatchard analysis with [3H]etorphine reveals a monophasic high-affinity opiate binding site (Kd 2.3 nM) which is naloxone-sensitive. Immunocytochemical localization of Met- and Leu-enkephalin-like substances as well as alpha-MSH- and ACTH-like materials was demonstrated within specific populations of neurons. Substances with Met- and Leu-enkephalin and Met-enkephalin sulfoxide RIA reactivities were detected also in HPLC fractions corresponding to the retention times of authentic enkephalin standards. Together, the results provide strong evidence for the presence of enkephalinergic mechanisms in the nervous system of Lymnaea stagnalis. Additionally, the report provides indirect evidence for the existence of a macromolecular opioid precursor. This enkephalinergic system shows striking similarities to opioid mechanisms found in vertebrates and bespeaks a common evolutionary origin.

Animals↗

Influence of thyroid in nervous system growth.

Nervous system growth and differentiation are closely correlated with the presence of iodine and thyroid hormones in initial development stages. In the human species, encephalon maturation during the first quarter of pregnancy is affected according to recent studies by the transplacenta passage of maternal thyroid hormones while it depends on initial iodiothyronin secretion by the foetal gland after the 12th week of pregnancy. Thyroid hormone deficiency during nervous system development causes altered noble nervous cells, such as the pyramidal cortical and Purkinje cells, during glial cell proliferation and differentiation alike. Neurons present cell hypoplasia with reduced axon count, dendritic branching, synaptic spikes and interneuron connections. Oligodendrocytes decrease in number and average myelin content consequently drops. Biochemical studies on hypothyroid rats have demonstrated alterations to neuron intraplasmatic microtubule content and organisation, changed mitochondria number and arrangement and anomalies in T3 nuclear and citoplasmatic receptor maturation. Alterations to microtubules are probably responsible for involvement of the axon-dendrite system, and are the consequence of deficient thyroid hormone action on the mitochondria, the mitochondria enzymes and proteins associated with microtubules. Nuclear and citoplasmatic receptors have been identified and gene clonation studies have shown two families of nuclear receptors that include several sub-groups in their turn. A complex scheme of temporal and spatial expression of these receptors exists, so they probably contribute with one complementary function, although their physiological role differs. The action of thyroid hormones occurs by changing cell protein levels because of their regulation at the transcriptional or post-transcriptional level. Genes submitted to thyroid hormone control are either expressed by oligodendrytes, which are myelin protein coders or glial differentiation mediators, or are nervous cell specific, genes coding neurotropins or proteins involved in synaptic excitation. The use of new PMRS and MRI non-invasive techniques has enabled identification of metabolic and biochemical markers for alterations in the encephalon of untreated hypothyroid children. Even an excess of thyroid hormones during early nervous system development can cause permanent effects. Hyperthyroidism in fact initially induces accelerated maturation process including cell migration and differentiation, extension of dendritic processes and synaptogenesis but a later excess of thyroid hormones causes reduction of the total number of dendritic spikes, due to early interruption of neuron proliferation. Experimental studies and clinical research have clarified not only the correlation between nervous system maturation and thyroid function during early development stages and the certain finding from this research is that both excess and deficient thyroid hormones can cause permanent anatomo-functional alterations to the nervous system.

Animals↗

[Dysautonomia and multi-systemic atrophy of the nervous system (Shy-Drager's syndrome)].

The clinical expressions of primary autonomic nervous system failure are more or less numerous, orthostatic hypotension being only one of them. Clinical analysis reveals 3 categories of manifestations: pure progressive dysautonomia, dysautonomia associated with Parkinson's disease, and dysautonomia associated with multiple system atrophy of the nervous system also known as Shy-Drager syndrome. Neuropathological studies show that lesions of the efferent autonomic nervous system (tractus intermediolateralis, sympathetic ganglia) are frequently associated with lesions of the central nervous system the role of which in dysautonomia is still imperfectly known. Lesions of the central nervous system may present as genuine Parkinson's disease with Lew bodies or as multiple systemic atrophy with its two best individualized aspects: striatonigral atrophy and olivopontocerebellar atrophy. These various neurological aspects have their counterpart in biochemical abnormalities, prognosis and response to treatment.

Aged↗

Macrophages in the peripheral nervous system and astroglia in the central nervous system of rat commonly express apolipoprotein E during development but differ in their response to injury.

Macrophages have been identified by immunocytochemical methods in rat sciatic nerve neonatal development expressing significant amounts of apolipoprotein E (apo E). In contrast, in mature peripheral nerve apo E appears to be associated with the basal lamina. Following sciatic nerve crush apo E-immunoreactive macrophages reappear in the denervated distal stump within 3 days. In the optic nerve and spinal cord of newborn rat apo E is associated with the astroglia. During maturation of the central nervous system the number of apo E-immunoreactive astrocytes significantly increases, but as a specific response to injury this protein rapidly disappears from the astroglial cell bodies.

Aging↗

Apoptosis in development and disease of the nervous system: 1. Naturally occurring cell death in the developing nervous system.

In recent years, apoptosis, the process by which cells orchestrate their own demise, has been the subject of increasingly intense investigation, both from the stand-point of basic mechanisms of signal transduction and with regard to its role in normal and pathological processes in the nervous system. For the neurologist, an understanding of the mechanisms by which apoptosis determines at a cellular level the normal form of the nervous system, an appreciation of how both unchecked apoptosis and failure of enactment of the apoptotic pathway contribute to nervous system pathology and a sense of how both induction and inhibition of apoptosis can be exploited therapeutically are critical to applying the basic knowledge in this field to human disease. Early studies made it clear that substances produced by the target tissue influenced the survival of developing neurons. More recent investigations have demonstrated that they do so by influencing the production of a series of endogenous mediators and modulators of neuronal survival. Furthermore, it is evident that apoptosis is important for the development of both neuronal and non-neuronal cells in the peripheral and central nervous systems.

Animals↗

Genetic variation in the renin-angiotensin system and autonomic nervous system function in young healthy Japanese subjects.

CONTEXT: The renin-angiotensin system (RAS) interacts with the autonomic nervous system (ANS) in the regulation of blood pressure and cardiovascular function. Several genetic polymorphisms in the RAS have been identified and have been implicated as a cause of hypertension and cardiovascular disease. OBJECTIVE: The aim of the present study was to evaluate the relation between genetic polymorphisms of the RAS (M235T of AGT gene, insertion/deletion of ACE gene, A1166C of AT1R gene, and A1675G of AT2R gene) and ANS function. SUBJECTS: One hundred forty-nine young healthy Japanese males were genotyped for each RAS polymorphism. MAIN OUTCOME MEASURES: ANS function was evaluated by power spectral analysis of heart rate variability (HRV) during supine rest and in a standing position. RESULTS: In a supine position, subjects homozygous for the AGT 235T allele had a higher HRV sympathetic index than 235M allele carriers, whereas the orthostatic change in this index was relatively blunted in AGT 235TT carriers. In the analysis of gene-gene interaction, these effects of the AGT 235T homozygotes on HRV sympathetic index were more apparent in the presence of the ACE D allele. Meanwhile, the AT1R 1166C allele was significantly associated with higher HRV low-frequency power and sympathetic index in a standing position. These data suggest that the AGT M235T polymorphism is associated with sympathetic predominance at rest, and AT1R 1166C allele carriers have potentially increased sympathetic response. CONCLUSIONS: Cardiac autonomic function can be modulated by genetic variation in the RAS even in young and healthy states.

Adolescent↗

Vascular renin-angiotensin system and sympathetic nervous system activity in human hypertension.

Experimental data indicate the existence of a vascular tissue renin-angiotensin system in several different vessels from various animal models. Active renin can be locally synthesized into the vessel wall or taken up from circulating plasma to produce vascular angiotensin II. Using the human forearm technique, we produced evidence indicating the release of active and inactive renin and of angiotensin II from the vessels of hypertensive patients. Moreover, the production of vascular angiotensin II seems to be strictly correlated to the circulating renin profile, suggesting the possibility that vascular renin might be at least partially taken up from plasma. To investigate a possible function of the vascular renin-angiotensin system, we studied its interaction with sympathetic neurotransmission in essential hypertensive patients. In line with animal studies, vascular angiotensin II increases the vasoconstriction induced by the stimulation of the sympathetic nervous system through the potentiation of noradrenaline release at a presynaptic level, and this effect seems to be mediated by beta-adrenoceptor activation. This facilitating effect on sympathetic neurotransmission exerted by vascular angiotensin II can be antagonized by both angiotensin II antagonists and angiotensin-converting enzyme inhibitors.

Blood Vessels↗

Renin-angiotensin system and sympathetic nervous system in cardiac pressure-overload hypertrophy.

Angiotensin II and norepinephrine (NE) have been implicated in the neurohumoral response to pressure overload and the development of left ventricular hypertrophy. The purpose of this study was to determine the temporal sequence for activation of the renin-angiotensin and sympathetic nervous systems in the rat after 3-60 days of pressure overload induced by aortic constriction. Initially on pressure overload, there was transient activation of the systemic renin-angiotensin system coinciding with the appearance of left ventricular hypertrophy (day 3). At day 10, there was a marked increase in AT(1) receptor density in the left ventricle, increased plasma NE concentration, and elevated cardiac epinephrine content. Moreover, the inotropic response to isoproterenol was reduced in the isolated, perfused heart at 10 days of pressure overload. The affinity of the beta(2)-adrenergic receptor in the left ventricle was decreased at 60 days. Despite these alterations, there was no decline in resting left ventricular function, beta-adrenergic receptor density, or the relative distribution of beta(1)- and beta(2)-receptor sites in the left ventricle over 60 days of pressure overload. Thus activation of the renin-angiotensin system is an early response to pressure overload and may contribute to the initial development of cardiac hypertrophy and sympathetic activation in the compensated heart.

Adrenergic beta-Antagonists↗

[AIDS and opportunistic infections of the central nervous system].

Central nervous system diseases occur frequently in patients with AIDS. From 20 to 40% of all these patients develop neurological symptoms and in about 10% of AIDS patients the onset of the disease is characterized by neurological symptoms. These may be related to primary HIV infection or to any of a large number of opportunistic viral and non-viral infections. Moreover, the observation of multiple central nervous system infections is frequent, making the diagnosis difficult. AIDS-related opportunistic infections of the central nervous system are discussed, presenting both a review of the literature and several case reports.

Acquired Immunodeficiency Syndrome↗