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J K Morse

Publications and source records attributed to J K Morse.

13 recordsLinked to original sources

Brain-derived neurotrophic factor (BDNF) prevents the degeneration of medial septal cholinergic neurons following fimbria transection.

Brain-derived neurotrophic factor (BDNF), a member of the neurotrophin family, supports the survival of developing basal forebrain cholinergic neurons in vitro and is retrogradely transported by cholinergic neurons of the medial septum and diagonal band following intrahippocampal injections in vivo. To substantiate a potential role for BDNF in the maintenance of forebrain cholinergic neurons in the adult brain, we assessed the ability of BDNF to sustain the phenotype of medial septal cholinergic neurons following a unilateral transection of the fimbria. BDNF, NGF, or vehicle solutions were infused continuously in adult female rats either into the lateral ventricle (intracerebroventricularly) or directly into the septum for 2 weeks beginning at the time of the transection. In vehicle-infused animals, only 28% of the ChAT-immunoreactive neurons remained on the side ipsilateral to the lesion compared to the contralateral intact side. When infused intracerebroventricularly, both BDNF and NGF reduced the extent of the phenotypic loss, in that 44% and 68%, respectively, of the ChAT-immunopositive neurons remained on the lesioned side. Intraseptal infusion proved even more effective, in that following BDNF and NGF treatment 60% and 86%, respectively, of the normal complement of ChAT-immunopositive neurons were apparent on the side ipsilateral to the lesion. Similar results were obtained when an antibody to the low-affinity NGF receptor was used to identify the cholinergic neurons. To determine if the apparent greater efficacy of NGF compared to BDNF might be related to differences in delivery, we examined the patterns of distribution of radiolabeled BDNF and NGF injected into the lateral ventricle. 125I-BDNF showed only very little diffusion from the ventricles into the adjacent neural tissue and negligible retrograde labeling of the neurons within the basal forebrain. 125I-NGF, however, diffused readily into the brain, resulting in widespread retrograde labeling of basal forebrain neurons. A similarly limited distribution pattern was observed where BDNF was detected immunohistochemically in animals infused intracerebroventricularly (12 micrograms/d) for 2 weeks. In contrast, when delivered intraseptally, the same dose of BDNF exhibited a widespread diffusion within the surrounding neuropil and retrograde labeling of neurons in the medial septum and the vertical limb of the diagonal band. Thus, when delivered effectively, BDNF has a substantial capacity to rescue axotomized cholinergic neurons.

Animals↗

Neurotrophic effects of steroids on lesion-induced growth in the hippocampus. II. Hormone replacement.

The mediation of lesion-induced sprouting in the nervous system is a complex interaction of local membrane factors and circulating hormones. This series of studies examines the reactivity of the sprouting response of both male and female subjects under different hormonal conditions. Young adult male and female Sprague-Dawley rats which were gonadectomized (GDX) and adrenalectomized (ADX) underwent a unilateral entorhinal cortex lesion, which partially denervates the molecular layer of the ipsilateral hippocampal denate gyrus. At the time of the lesion, each animal received hormonal therapy. Fifteen days post-ERC-ablation the brains were analyzed for changes in reactive fiber outgrowth in the hippocampal commissural/associational afferents. Fiber outgrowth in females in the "asteroidal" (GDX/ADX) condition was unaffected. Asteroidal males demonstrated a decreased response. Gonadal steroid replacement, estrogen or testosterone, enhanced outgrowth in both asteroidal males and females. Glucocorticoid replacement suppressed outgrowth in both asteroidal males and females. Gonadal steroids clearly have neurotrophic activity which is interactive with glucocorticoid activity. Glucocorticoids under the GDX/ADX conditions in vivo have a negative impact on fiber outgrowth in both sexes. The effect of glucocorticoids is most dramatic when compared to the outgrowth of asteroidal animals without additional hormonal supplementation.

Adrenal Cortex Hormones↗

DSP4 treatment worsens hippocampal pyramidal cell damage after transient ischemia.

Recent studies in the rat have suggested that hippocampal norepinephrine can regulate the amount of damage seen after transient forebrain ischemia. We used the gerbil to study the role of norepinephrine in ischemic damage. Using tyrosine hydroxylase immunocytochemistry and chemical measurements of norepinephrine, we determined that the gerbil hippocampus has a similar but topographically different norepinephrine innervation than the rat. Brains from gerbils treated with 100 mg/kg of N-(2-chloroethyl)-N-methyl-2-bromobenzylamine (DSP4) had 60% less norepinephrine than saline-treated controls, similar to the effect of the drug in rats. We administered DSP4 to gerbils two weeks before exposing them to 5 min of bilateral carotid artery occlusion. Animals treated with DSP4 and subjected to ischemia had worse pyramidal cell loss in the CA3 and CA4 regions than saline-treated ischemic controls. CA1 pyramidal cell loss (about 90%) was severe in both the saline- and DSP4-treated animals. These data provide further evidence that norepinephrine can regulate the neuronal death in the hippocampal formation after transient forebrain ischemia. Furthermore, this is the first demonstration of that regulation in the gerbil and suggests that noradrenergic input to the hippocampus may be important in ischemia in other species besides the rat.

Animals↗

Regulation of ischemic hippocampal damage in the gerbil: adrenalectomy alters the rate of CA1 cell disappearance.

Adrenalectomy protects hippocampal pyramidal cells from transient ischemia in rats. We hypothesized that this effect of adrenalectomy could be generalized to the gerbil. We determined the effect of glucocorticoid manipulation on hippocampal CA1 cell death following transient forebrain ischemia in the gerbil. Adrenalectomy diminished hippocampal damage when performed immediately following transient forebrain ischemia, as in the rat, while glucocorticoid administration resulted in an increase in CA1 pyramidal cell damage. Furthermore adrenalectomy 24 h after the ischemic injury diminished hippocampal damage to roughly the same extent as immediate adrenalectomy. However, if gerbils were examined at longer survival periods after ischemia, the difference in hippocampal damage between adrenalectomized and sham-adrenalectomized was lost. These findings suggest that glucocorticoids influence the rate of hippocampal pyramidal cell disappearance following ischemia. Manipulation of glucocorticoids could be an important adjunct to therapy for preventing ischemic brain damage.

Adrenalectomy↗

Neurotrophic effects of steroids on lesion-induced growth in the hippocampus. I. The asteroidal condition.

Young adult male and female Sprague-Dawley rats were randomly assigned to be gonadectomized (GDX), adrenalectomized (ADX), gonadectomized and adrenalectomized (GDX/ADX) or left intact. One week following initial surgery all animals were subjected to a lesion of the entorhinal cortex (ERC) which partially denervates the ipsilateral hippocampal dentate gyrus. Fifteen days after the ERC ablation, the brains were analyzed for changes in reactive outgrowth of the hippocampal commissural-associational (C-A) afferents. Under intact conditions there were no differences between male and female subjects. Female subjects demonstrated a suppression of sprouting following GDX alone and an enhancement of growth following ADX alone. Reactive growth in male subjects was unaffected by GDX or ADX alone. When placed in the 'asteroidal' (GDX/ADX) condition, reactive outgrowth of male subjects is significantly impaired as compared to female subjects. The results suggest a complex inter-relationship between the gonadal and adrenal hormones and a possible neurotrophic effect for the gonadal steroids.

Adrenalectomy↗

Hydrocortisone differentially alters lesion-induced axon sprouting in male and female rats.

Hydrocortisone was administered to young adult male or female rats after removal of the entorhinal cortex. Lesion-induced outgrowth of the commissural-associational afferent fibers in the hippocampus was quantitated. The glucocorticoids caused a significant decline in axon sprouting in the male subjects and a significant increase in outgrowth in female subjects. Depending on the sex, the hormonal effects on lesion-induced axonal growth are markedly different in the rat.

Animals↗

Gonadal steroids influence axon sprouting in the hippocampal dentate gyrus: a sexually dimorphic response.

Young adult Sprague-Dawley rats of either sex were randomly assigned to be gonadectomized or left intact. Capsules containing either testosterone or estrogen were implanted in animals in both categories. Fifteen days after removal of the entorhinal cortex, the brains were analyzed for changes in reactive outgrowth of the commissural-associational afferent fibers in the hippocampal dentate gyrus. Both male and female control subjects showed identical sprouting responses. Only female subjects were significantly affected by gonadectomy, resulting in significant decreases in reactive fiber outgrowth. Hormone replacement therapy resulted in a return to control values in castrated females but had no affect on castrated males. The results suggest that sex hormones may regulate axon sprouting in the mature central nervous system.

Animals↗