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Biomedical subjects

T G Yuen

Publications and source records attributed to T G Yuen.

33 records · Page 2Linked to original sources

Ultrastructural observations suggesting apocrine secretion in the choroid plexus: a comparative study.

Ultrastructural studies were carried out on the choroid plexus of eight species including amphibian, reptilian, and mammalian forms with special attention directed toward the phenomenon of apical blebbing in choroid plexus epithelial cells. Choroidal blebs in various stages of formation, release, and maturation were observed in all species examined. Evidence presented by this and previous studies suggests that choroidal and ependymal blebbing represents a physiological significant mechanism by which proteins and/or other molecules enter the cerebrospinal fluid (CSF).

Animals

Intracellular calcium deposition in brain following electrical stimulation.

The effects of electrical stimulation of the cat cerebral cortex have been evaluated by light and electron microscopy following a wide variety of stimulation parameters (QD/ph of 10 - 300 muC/cm2/ph). Platinum or rhodium disc electrode arrays were bilaterally implanted subdurally on the parietal cortex and subjected to 36-hour stimulations (9 hrs./day for 4 days). Prominent among the degenerative changes shown by electron microscopy were dense crystalline inclusions that were identified as calcium hydroxyapatite (CHA) crystals by electron diffraction and energy dispersive X-ray analysis. The appearance of intracellular calcification generally paralleled the onset of other degenerative changes in stimulated tissue, including gliosis, mitochondrial swelling, lipid inclusions, degenerating cells, neuronal loss, and phagocytic activity. A preferential deposition of calcium was noted in mitochondria of several cell types and in postsynaptic dendrites. The mechanism of the apparently electroresponsive calcium deposition is obscure; however, a plausible explanation is that increased cyclic AMP levels, known to occur with electrical stimulation of nervous tissue, result in enhanced calcium plasmalemmal permeability.

Animals

Evaluation of electrode array material for neural prostheses.

Matrix support materials for brain surface electrodes used in neuroprosthetic applications were evaluated after chronic subdural implantation over the parietal cortex of the cat. Four types of array fabricated with Silastic, Dacron mesh, or platinum wire annuli were implanted for periods ranging from 5 weeks to 1 year. We evaluated the arrays by access resistance measurements and gross and histological observations of the tissue beneath both nonstimulated and stimulated electrodes. A porous type matrix constructed of Dacron mesh proved to be the superior design because of its minimal compression of the cortical surface, facility of handling during implantation and autopsy, and satisfactory electrical characteristics provided by a good electrode-brain interface. (Neurosurgery, 5: 681--686, 1979).

Animals

Neuropathological effects of intracerebral platinum salt injections.

Multiple intracerebral injections of a mixture of platinum salts were made in 9 adult cats and the brains studied by light and electron microscopy at 5-12 days post injection. At the center of the lesions normal cortical architecture was completely replaced by edematous areas containing lipid-laden macrophages and cellular debris. The lesion periphery was characterized by perivascular edema and degenerative changes including cytoplasmic lipid inclusions and vacuolations with selective vulnerability of neurons. Membranous cytoplasmic bodies (MCB), zebra bodies and multiple nucleoli were observed in several cell types. This ultrastructural pattern, mimicked to some extent, that observed following electrical stimulation of brain following chronically implanted platinum and rhodium electrodes. The induction of zebra bodies and MCB, both of which are morphologic features of human neurolipidoses associated with congenital enzyme deficiencies, suggests an inhibitory effect of platinum on brain enzymes. Functional electrical stimulation of brain and other organs is currently being employed in a wide variety of clinical applications (14, 15). A mandatory consideration is that of the long-term effects of the stimuli as well as the electrodes themselves on the tissues involved. The histological effects and mechanisms of tissue damage following chronic application of electrical stimuli to brain have been the subject of several investigations in this laboratory (1, 14-18). Factors contributing to neural damage induced by electrical stimulation include noxious products resulting from electrode dissolution. In vitro studies employing electrochemical (3,9) and scanning electron microscopy (6) techniques have established that erosion of noble metal electrodes occurs, even when passing relatively small stimulation currents. Such electrode dissolution is of particular importance in long term applications of neural prostheses. The present study was initiated to assess the contribution of platinum electrode erosion products to neurla damage following electrical stimulation of brain, specifically to distinguish morphological changes resulting directly from electrode solubilization as opposed to electrical factors. Accordingly, intracerebral injections of graded volumes of platinum salts were made in an attempt to stimulate the presence of platinum electrode dissolution products.

Animals

Electrical stimulation of the brain. IV. Ultrastructural studies.

The ultrastructural response of tissues of the cat's central nervous system to chronic electrical stimulation with various parameters has been evaluated at four and a half days post stimulation. Cellular alterations included widespread cytoplasmic vacuolations, architectural derangement and disruption of plasmalemma and other membranes. Lipid inclusions and dense crystalline bodies were prominent in astrocyte-like phagocytic cells in the more severe lesions. Despite endothelial damage in brain parenchymal capillaries, significant extravasation of horseradish peroxidase was not observed. The ultrastructural damage observed following electrical stimulation varied from mild to severe. Although none of the parameters tested was found to be "safe" for clinical applications, it should be emphasized that the stimulations delivered in the present study were essentially continuous.

Animals

Ultrastructural effects of Conray 60 and Pantopaque on ependyma and choroid plexus following intraventricular injections.

Electron microscope evaluation of choroid plexus and ependyma following single cerebral intraventricular injections of Conray 60 and Pantopaque was carried out on 35 rats and 4 dogs. The animals were sacrificed at periods ranging from 1 hour to 4 months. Conray was not detected with the light or electron microscope; however, Pantopaque was presumptively localized as electron-dense masses associated with lipid-like bodies at the ventricular interface of both choroidal and ependymal epithelium. Conray 60 injections consistently induced convulsions in rats. Histological studies demonstrated moderate cellular damage and multilayered proliferation of ependymal epithelium. Morphological damage following Pantopaque was more severe and widespread in both choroid plexus and ependyma suggesting that, of the two agents, Conray may have the greater clinical potential provided that the associated convulsions are controlled by appropriate measures.

Animals

Adverse effects of electrical energy applied to the nervous system.

Neural prostheses activated by radiofrequency transmission are currently being implanted to treat a variety of clinical problems. It is essential that neither the materials used in these prostheses, particularly the electrodes, nor the stimulus parameters that are employed will cause neural damage. The experiences of investigators engaged in both the experimental laboratory and clinical studies of the effects of electrical stimulation are reported herein.

Animals