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F Morrell

Publications and source records attributed to F Morrell.

At least 37 records · Page 2Linked to original sources

The brain's record of experience: kindling-induced enlargement of the active zone in hippocampal perforated synapses.

Kindling is a consequence of intermittent electrical stimulation of a local forebrain area leading to a durable augmentation of synaptic responsiveness in the stimulated circuit. The basis for this functional change is unknown, but there is evidence suggesting that it entails a structural modification of synapses. The present report demonstrates that hippocampal kindling induces a selective enlargement of active zones in perforated axospinous synapses formed by stimulated axons. Since the active zone is the site of intracellular transmission, its enlargement involving only a certain subpopulation of synapses provides a likely structural substrate of synaptic plasticity associated with kindling.

Animals

Increase in the relative proportion of perforated axospinous synapses following hippocampal kindling is specific for the synaptic field of stimulated axons.

A comparative analysis of axospinous synapses was performed in the middle (MML) and inner (IML) molecular layer of the hippocampal dentate gyrus of rats kindled via medial perforant path stimulation and sacrificed 4 weeks after reaching a criterion of 5 generalized seizures. The MML was a directly stimulated structure, while the IML was not. Both are immediately adjacent synaptic fields likely to be equally susceptible to any generalized effects of convulsions and hypoxia. In these two subdivisions of the molecular layer, the so-called perforated and non-perforated synapses, distinguished respectively by a discontinuous or continuous postsynaptic density, were differentially quantified. In the MML, the ratio of perforated to non-perforated synapses was found to be markedly increased in kindled rats relative to controls. In the IML, however, no change in this ratio was detected following kindling. Thus, the shift in the relative preponderance of perforated synapses over non-perforated ones is not a consequence of generalized phenomena accompanying the kindling process.

Animals

Perforated synapses on double-headed dendritic spines: a possible structural substrate of synaptic plasticity.

Examination of axospinous synapses in serial sections obtained from the middle molecular layer of the rat dentate gyrus has revealed that some of them involve double-headed dendritic spines. Each spine head is apposed by a separate axon terminal with which it always forms a perforated synaptic contact distinguished by a discontinuous postsynaptic density. The number of perforated synapses on double-headed spines was estimated as a synapse-to-neuron ratio with the aid of the disector technique and found to be significantly increased in rats kindled via medial perforant path stimulation. These results support the notion that perforated synapses involving double-headed dendritic spines represent a structural modification related to enhanced synaptic efficacy.

Animals

Varieties of human secondary epileptogenesis.

This article has three goals: (1) to review the evidence that bears upon the occurrence of secondary epileptogenesis in man, (2) to set forth the criteria that distinguish secondary epileptogenesis from multifocal epilepsy--both clinically and by pharmacologic means--and (3) to indicate the importance of an understanding of the pathophysiology of secondary epileptogenesis to clinical decision making in the care of epileptic patients. In Section I, the three different developmental stages of secondary epileptogenesis defined in experimental preparations are outlined, and particular emphasis is placed on the remarkable similarity in the electrographic manifestations reported from animal species ranging from reptile to baboon. The clinical manifestations differ depending, within species, on exactly where in the brain the primary focus is situated and, between species, on the different organizations of the neural substrate within which epileptiform discharge is engendered. Section II is devoted to a review of three separate series of patients whose presenting symptom was epilepsy and in whom the etiology proved to be a histologically verified brain tumor or malformation. The choice of patient material was dictated by the conclusion that the main barrier to acceptance of human secondary epileptogenesis is the difficulty of distinguishing between multiple primary lesions maturing at different rates and those secondarily induced by an already existing single one. In the vast majority of patients where trauma, infection, anoxia, and vascular disease represent the most common etiologies, multiple primary structural injury is an ever-present possibility. Restricting our analysis to tumors of neural, glial, or vascular origin eliminates, as far as practicable, the issue of multiple primary lesions. A significant number of patients with focal epilepsy develop secondary epileptogenic lesions. The evidence presented shows that a primary epileptogenic lesion in man may induce a trans-synaptic and long-lasting alteration in nerve cell behavior characterized by paroxysmal electrographic manifestations and clinical seizures. Furthermore, the more frequent the seizures, the more likely is a secondary focus to become permanent. These observations underscore the importance of rigorous seizure control (electrographic as well as behavioral) and raise the question of earlier surgical intervention where medicinal therapy fails.

Brain Neoplasms

Multiple subpial transection: a new approach to the surgical treatment of focal epilepsy.

A new operative approach has been designed for the relief of medically intractable focal epilepsy. It is intended particularly to be used in those cases where the epileptogenic lesion lies in "unresectable" cortex; that is, those cerebral regions subserving speech, memory, and primary motor and sensory function. The procedure is based upon experimental evidence indicating 1) that epileptogenic discharge requires substantial side-to-side or horizontal interaction of cortical neurons, and 2) that the major functional properties of cortical tissue depend upon the vertical fiber connections of the columnar units. The technique requires severing of tangential intracortical fibers while preserving the vertical fiber connections of both incoming and outgoing nerve pathways and of the penetrating blood vessels which also have a vertical orientation. In this study, the effect of multiple subpial transection was assessed on both function and seizure control. The effect on function was reviewed in 32 cases; only 20 cases were evaluated with respect to seizure control, since a follow-up period of 5 years or more (5 to 22 years) is required before conclusions can be drawn. Multiple subpial transection was applied to the precentral gyrus in 16 cases, the postcentral gyrus in six, Broca's area in five, and Wernicke's area in five. With respect to function, the major finding was that none of the 32 patients has suffered a clinically significant behavioral deficit (although subtle deficits could be detected by careful neurological examination). Complete control of seizures has been obtained in 11 (55%) of the 20 cases evaluated. Nine patients developed recurrent seizures consequent to progressive disease unsuspected before operation (Rasmussen's encephalitis in five, tumor in three, and subacute sclerosing panencephalitis in one). In none of these cases, however, did the recurrent seizures arise in the transected zone. Thus, the results indicate that multiple subpial transection is about as effective as standard excisional therapy, and can be successfully employed when epileptogenic lesions encroach upon cortical territories, the removal of which would be functionally incapacitating.

Adolescent

Prevalence of psychologic disorders after surgical treatment of seizures.

To investigate whether surgical treatment of refractory epilepsy is associated with increased risk for serious psychopathology, 25 treated patients were compared with 25 current candidates for surgery matched on demographic and neuroepileptic characteristics. Diagnoses were made by the National Institute of Mental Health Diagnostic Interview Schedule. No differences between groups in lifetime or point prevalence rates were significant. The rate of psychosis in the postoperative group (8%) approximated the lower estimates in previous studies. Thus, surgical treatment of seizures did not increase the risk for psychopathology. However, patients with temporal lobe electroencephalogram foci or tumor as the epileptogenic lesion were more likely to have serious disorders than other patients. Also, anxiety disorders were more prevalent in our patient groups than in the general population.

Adolescent

Remodeling of synaptic architecture during hippocampal "kindling".

The "kindling" phenomenon is associated with long-lasting facilitation of synaptic transmission. A possible mechanism of such facilitation could involve changes in the number of synaptic contacts. However, previous attempts to demonstrate a synaptic morphological alteration that could account for the long-term effects of kindling had failed, possibly due to the unavailability, at the time, of unbiased methods for synapse quantitation. Using the unbiased stereological disector technique, we estimated the number of synapses per neuron in the middle molecular layer of the hippocampal dentate gyrus in rats kindled by electrical stimulation of the medial perforant path with implanted electrodes. Unkindled but stimulated (coulombic control) and unstimulated but implanted rats served as controls. Animals were coded and killed 4 weeks after reaching the kindling criterion of five generalized seizures. The most important results were obtained when axospinous synapses with continuous or discontinuous postsynaptic densities ("nonperforated" or "perforated" synapses) were differentially analyzed. Kindling resulted in a selective loss of nonperforated synaptic contacts in contrast to preservation of perforated ones. Furthermore, the ratio of perforated to nonperforated synapses was increased by 45% or 40% in kindled rats relative to unstimulated or coulombic controls, respectively. These findings suggest that synaptic efficacy may depend on a balance of the two synaptic types; selective elimination of nonperforated synapses may augment the potency of remaining synaptic contacts, a process reminiscent of synaptic remodeling during development.

Algorithms

Axospinous synapses with segmented postsynaptic densities: a morphologically distinct synaptic subtype contributing to the number of profiles of 'perforated' synapses visualized in random sections.

Axospinous synapses were examined in the molecular layer of the rat dentate gyrus. Serial section analysis of synapses, which exhibited a discontinuity of the postsynaptic density (PSD) in at least one consecutive section, was performed. Reconstruction of each discontinuous PSD was made in a plane perpendicular to that of serial sections. The results obtained confirm earlier observations that profiles of 'perforated' synapses visualized in random sections of osmicated material are produced by sectioning of synapses with perforated and horseshoe-shaped PSDs. Additionally, it has been found that two other synaptic subtypes, namely synapses with notched and segmented PSD, contribute to the number of profiles of 'perforated' synapses. Synaptic contacts with notched PSD are characterized by an indentation of an otherwise continuous PSD, relatively small dimensions and simple shape. They appear to be unrelated to the category of synapses with discontinuous PSD. Synaptic contacts with segmented PSD are distinguished by the presence of 2-5 discrete PSD segments at the interface between a presynaptic axon terminal and a postsynaptic dendritic spine. Some PSD segments exhibit 1-3 perforations, while others are horseshoe-shaped. It is postulated that the segmented PSD may evolve through the stages of perforated and horseshoe-shaped PSD to form a specialized synaptic contact of an unusually high efficacy. Every PSD segment is a component of a separate synaptic complex, each one comparable to that of a small, simple-shaped synapse. A concerted activation of several synaptic complexes belonging to a single synaptic junction may provide a mechanism for an amplification of synaptic transmission.

Aging

Synapses on dendritic shafts exhibit a perforated postsynaptic density.

Synapses on dendritic shafts were examined in electron micrographs of serial sections obtained from the molecular layer of the rat dentate gyrus. Some of these synapses have been found to exhibit profiles of a discontinuous postsynaptic density (PSD). PSD reconstructions from serial sections were performed in a plane perpendicular to that of the sections. The results obtained indicate that profiles of discontinuous PSDs observed in random sections of dendritic shaft synapses are generated by sectioning of PSD plates that contain 1-3 holes or perforations. Earlier serial section studies of osmicated material have demonstrated that a proportion of axospinous synapses also exhibit a perforated PSD. It appears, therefore, that the presence of PSD perforations is a general phenomenon shared by subpopulations of different types of synapses, both those involving dendritic shafts and those involving dendritic spines.

Aging

Aged rats need a preserved complement of perforated axospinous synapses per hippocampal neuron to maintain good spatial memory.

Spatial working memory, which crucially depends on the structural integrity of the hippocampal formation and its afferent connections, is impaired in the most, but not all, of aged rats. This study was designed to verify whether aged animals that do not exhibit the spatial memory deficit are the ones in which the hippocampal synaptic connectivity remains preserved with advancing chronological age. Young adult rats with good spatial memory, aged rats with impaired spatial memory and equally aged rats with intact spatial memory were compared. The number of synapses per neuron was estimated in the hippocampal dentate gyrus. The most important results were obtained when axospinous synapses were divided into perforated and non-perforated ones according to the appearance of their postsynaptic density. A significant decrease in the number of perforated synapses was found in memory-impaired aged rats as compared to either young adults or aged animals without memory deficits. The number of non-perforated synapses per neuron was diminished in memory-deficient aged rats relative to young adults, but not to memory-intact aged rats. However, it was only the loss of perforated synapses which correlated with the degree of spatial memory impairment. Thus, aged rats need a preserved complement of hippocampal perforated synapses to maintain good spatial memory.

Aging

Control of scar formation in experimentally induced epilepsy.

Penfield proposed that the meningocerebral scar that forms following trauma to the brain plays an important role in the development of posttraumatic epilepsy. Although the epileptogenic scar has come to be widely accepted as a cause of epilepsy, there is no direct evidence that scar formation contributes to epileptogenesis. This current study showed that procedures that control the development of collagen in a fibroblastic scar may modify the development of epilepsy. Epilepsy induced in the guinea pig by injection of metallic aluminum powder into the cerebral cortex was used as a model of posttraumatic epilepsy. Following application of aluminum and implantation of epidural electrodes, animals received either daily injections of prednisolone or an ascorbic acid-deficient diet to block scar formation. Control animals also had an injection of aluminum, but afterward received saline injections or a normal diet. Control animals developed epileptic spikes and often exhibited focal seizures. All manifestations of epileptogenesis were markedly reduced in animals treated with prednisolone or the ascorbic acid-deficient diet. The reduction in epileptiform activity corresponded to reduced collagenous scar formation in the treated animals. Although effective when given prophylactically, prednisolone did not inhibit the activity of an already established epileptic focus whether induced by aluminum or by amygdala kindling, nor did it block pentylenetetrazol-induced seizures. The finding that epileptogenesis is blocked by two procedures that inhibit scar formation but show no evidence of a direct anticonvulsant effect, suggests that scar formation is a significant factor in epileptogenesis induced by metallic aluminum. The collagenous component appears to be more significant than the glial component of the scar.

Action Potentials

Loss of perforated synapses in the dentate gyrus: morphological substrate of memory deficit in aged rats.

Most, but not all, aged rats exhibit a profound deficit in spatial memory when tested in a radial maze--a task known to depend on the integrity of the hippocampal formation. In this study, animals were divided into three groups based on their spatial memory capacity: young adult rats with good memory, aged rats with impaired memory, and aged rats with good memory. Memory-impaired aged animals showed a loss of perforated axospinous synapses in the dentate gyrus of the hippocampal formation in comparison with either young adults or aged rats with good memory. This finding suggests that the loss of perforated axospinous synapses in the hippocampal formation underlies the age-related deficit in spatial memory.

Aging

Secondary epileptogenesis in man.

It is difficult to prove the existence of secondary epileptogenesis in man. In the majority of cases of human focal epilepsy, where the cause is likely to be trauma, infection, or vascular disease, the occurrence of additional or new epileptogenic foci is usually attributed to multiple primary injuries (maturing at different rates), or to progressive disease. Cerebral tumor is the only common cause in which the probability of multiple primary lesions is vanishingly low. Therefore, a personally followed series of cases of cerebral tumor seen as epilepsy are reviewed in which clinical, electrophysiologic, and pharmacologic data are analyzed for evidence of secondary epileptogenesis. Such evidence was found in 34% of our tumor patients. It was possible to demonstrate, in humans, the three stages of secondary epileptogenesis previously documented in animals. A pharmacologic test is described that separates the reversible from the irreversible stage of secondary epileptogenesis and allows prediction of the results of surgical removal of the primary focus.

Animals