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Biomedical subjects

M Armanini

Publications and source records attributed to M Armanini.

6 recordsLinked to original sources

Recovery of cholinergic phenotype in the injured rat neostriatum: roles for endogenous and exogenous nerve growth factor.

Polyclonal antibodies against recombinant human nerve growth factor (rhNGF) potently inhibited PC12 neurite outgrowth, blocked high-affinity 125I-rhNGF binding but not its receptor, and cross-reacted with rat, mouse, and human nerve growth factor (NGF) but not with brain-derived neurotrophic factor, neurotrophin-3, ciliary neurotrophic factor, insulin-like growth factor, epidermal growth factor, or activin A. Immunocytochemistry revealed many NGF-positive neurons in the rat neostriatum. The NGF-positive neurons disappeared by 3 days after mechanical injury to the neostriatum and were replaced by intensely NGF- and glial fibrillary acidic protein-positive astrocytes. Enzyme-linked immunosorbent assay measurements revealed that the NGF content of the injured striatum was elevated by eightfold 3 days postinjury and by twofold 2 weeks later. The high-affinity choline uptake (HACU) into cholinergic nerve terminals was decreased by 23% at 2 and 4 weeks postinjury, yet choline acetyltransferase (ChAT) activity in these neurons was unchanged at 2 weeks and decreased by 14% at 4 weeks. Daily infusion of 1 microgram of rhNGF into the injury area did not alter the loss of HACU. However, this treatment elevated ChAT activity by 23-29% above intact neostriatal levels and by 53-65% relative to HACU at both survival times. Thus, lesion-induced increases in NGF levels within astrocytes are associated with maintenance of striatal ChAT activity at normal levels following cholinergic injury, even with decreases in HACU. Pharmacologic doses of rhNGF can further augment ChAT activity in damaged cholinergic neurons, showing the usefulness of exogenous NGF even when endogenous NGF is elevated in response to injury.

Animals

Increase in glia-derived nerve growth factor following destruction of hippocampal neurons.

It is currently believed that under normal conditions hippocampal neurons synthesize nerve growth factor (NGF) which may provide trophic support for cholinergic neurons projecting from the basal forebrain. The concept that glial cells are mobilized to increase the production of NGF following destruction of hippocampal neurons was examined. Excitotoxin-induced destruction of the dorsal hippocampal neurons resulted in a massive and prolonged increase in NGF-like immunoreactivity (LI). Immunostaining for NGF-LI and the glial marker, glial fibrillary acidic protein (GFAP), revealed that the source of increased NGF-LI production following the lesion were reactive astrocytes. Thus, glial cells assume the role of providing trophic support following loss of target neurons.

Animals

Increase in nerve growth factor-like immunoreactivity and decrease in choline acetyltransferase following contusive spinal cord injury.

We have previously described a graded spinal cord injury model in the rat. Mild contusive injury results in an initially severe functional deficit that is attenuated over time to reveal the mild chronic deficits that characterize this injury. In this study, we have shown that mild contusive injury also results in a significant decrease in choline acetyltransferase (ChAT) activity during the first week after injury. At 1 week ChAT activity is maximally reduced at the site of the contusion and is also significantly lowered throughout the spinal cord. ChAT activity then rebounds during the following 3 weeks, partially at the injury site where there is considerable loss of gray and white matter, and completely in rostral and caudal cord segments. The rebound in ChAT activity is temporally associated with the partial recovery of function. Further, the changes in ChAT activity after injury are mirrored by changes in nerve growth factor-like immunoreactivity (NGF-LI) as determined by a specific two-site ELISA. NGF-LI increases significantly after injury, reaching a maximum at 7 days after contusion and at the injury site. However, levels of NGF-LI are also significantly increased throughout the spinal cord. NGF-LI then decreases at 2 and 4 weeks as ChAT activity rebounds. Further experiments will be needed to examine the possibility of a role for NGF in promoting the recovery of function after spinal cord injury.

Animals

BDNF mRNA is decreased in the hippocampus of individuals with Alzheimer's disease.

In recent years, nerve growth factor (NGF) has gained attention as a potential therapeutic agent for Alzheimer's disease (AD). To study the expression of NGF and its homologs, brain-derived neurotrophic factor (BDNF) and neurotrophin 3 (NT-3), postmortem samples of hippocampus from AD and control donors were examined by in situ hybridization. Hybridization signal for BDNF, but not NGF or NT-3, was decreased in samples of hippocampus from donors with AD. Decreased transcript abundance of BDNF mRNA in hippocampi of individuals with AD was verified by an RNAase protection assay. These results suggest the possibility that decreased expression of BDNF may contribute to the progression of cell death in AD.

Alzheimer Disease

Medial-to-lateral gradient of neostriatal NGF receptors: relationship to cholinergic neurons and NGF-like immunoreactivity.

High-affinity binding sites for recombinant human NGF (rhNGF) were studied in the caudate-putamen of the adult rat and rabbit. Displaceable 125I-rhNGF binding sites were densely distributed throughout the caudate-putamen and were 2-3-fold more prevalant in the ventrolateral and lateral than in the medial caudate-putamen. The amount of nondisplaceable binding did not vary throughout the caudate-putamen. The medial-to-lateral receptor gradient was correlated (r = +0.99) with a 2-3-fold medial-to-lateral increase in ChAT activity. In contrast, NGF-like immunoreactivity (NGF-LI) was prevalent but uniformly distributed in the caudate-putamen. Lesions of intrinsic cholinergic neurons by quinolinic acid produced extensive gliosis in the medial, central, and lateral caudate-putamen, yet 125I-rhNGF binding was decreased in each of these regions. The activity of ChAT and 125I-rhNGF binding throughout the caudate-putamen were each decreased by 40% following quinolinic acid. Binding was not changed after 70-77% dopamine nerve terminal depletions induced by 6-hydroxydopamine, demonstrating a nonglial, nondopaminergic locus for striatal NGF binding sites. The cholinergiclike topography of NGF binding sites throughout the intact caudate-putamen, the parallel decreases of cholinergic neurons and NGF binding sites following intrinsic neuronal loss, and the uniform neostriatal gradient of NGF-LI are consistent with the trophic role of endogenous NGF for cholinergic interneurons of the caudate-putamen.

Animals

Stress and glucocorticoids in aging.

This article has considered two themes that have permeated the gerontologic literature--namely, that aging is a time of decreased efficiency in responding to stress and that chronic stress can accelerate aspects of aging. Given the restricted framework of considering adrenocortical function (as a component of the stress response) and glucocorticoid over-exposure (as a component of chronic stress), there is considerable evidence for both of these ideas. The capacity of glucocorticoids to damage the rat hippocampus slowly over the life span and the glucocorticoid hypersecretion that seems to ensue during aging as a result of such hippocampal damage support these long-standing ideas. It should be noted that these two components interact with each other--excessive glucocorticoid secretion damages the hippocampus, and hippocampal damage produces excessive glucocorticoid secretion. This dysregulatory cascade appears to be a normal part of aging in the rat. The role of glucocorticoids in triggering programmed aging and death, while quite dramatic, is probably a phylogenetically rare event; it remains to be seen if the dysregulatory cascade of glucocorticoid excess in the rat is of relevance to aging in other species. Numerous published studies suggest that this cascade is not an obligatory aspect of normal human aging; rather, it appears to be a significant factor in the explanation of some features of pathologies associated with human aging.

Adrenal Cortex