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Biomedical subjects

M Lysaght

Publications and source records attributed to M Lysaght.

7 recordsLinked to original sources

Gene therapy for amyotrophic lateral sclerosis (ALS) using a polymer encapsulated xenogenic cell line engineered to secrete hCNTF.

The gene therapy approach presented in this protocol employs a polymer encapsulated, xenogenic, transfected cell line to release human ciliary neurotrophic factor (hCNTF) for the treatment of Amyotrophic Lateral Sclerosis (ALS). A tethered device, containing around 10(6) genetically modified cells surrounded by a semipermeable membrane, is implanted intrathecally; it provides for slow continuous release of hCNTF at a rate of 0.25 to 1.0 micrograms/24 hours. The semipermeable membrane prevents immunologic rejection of the cells and interposes a physical, virally impermeable barrier between cells and host. Moreover, the device and the cells it contains may be retrieved in the event of side effects. A vector containing the human CNTF gene was transfected into a line of baby hamster kidney cells (BHK) with calcium phosphate using a dihydrofolate reductase-based selection vector with a SV40 promoter and contains a HSV-tk killer gene. hCNTF is a potent neurotrophic factor which may have utility for the treatment of ALS. Systemic delivery of hCNTF in humans has been frustrated by peripheral side effects, the molecule's short half life, and its inability to cross the blood-brain barrier. The gene therapy approach described in this protocol is expected to mitigate such difficulties by local intrathecal delivery of a known quantity of continuously-synthesized hCNTF from a retrievable implant.

Amyotrophic Lateral Sclerosis↗

Immunoisolated xenogenic chromaffin cell therapy for chronic pain. Initial clinical experience.

BACKGROUND: Chromaffin cells from the adrenal gland secrete a mixture of compounds that have a strong analgesic effect, especially when administered intrathecally. Many studies in animal models have shown that discordant xenogeneic cell isolates, including chromaffin cells, can survive and have biologic effects when transplanted within a semipermeable membrane capsule. METHODS: To evaluate the clinical potential of encapsulated cell therapy, a human-scale implant containing bovine chromaffin cells was developed, characterized, and implanted in the subarachnoid space of seven patients with severe chronic pain not satisfactorily managed with conventional therapies. Patients received no pharmacologic immunosuppression. Cell devices were implanted during minimally invasive surgery, and device design allowed retrieval. All devices were recovered after implant periods of 41 to 176 days. RESULTS: Postexplant histologic analysis, immunostaining, and secretory function all confirmed survival and biochemical function of the encapsulated cells. Reductions in morphine intake and improvement in pain ratings were observed in several patients. CONCLUSIONS: This study represents the first successful trial of encapsulated xenogeneic cells in humans. The preliminary findings of pain reduction warrant the initiation of a randomized, double-blind phase II study to evaluate the potential efficacy of the procedure.

Adult↗

High flux hemofiltration.

Experiments were performed using a new hollow fiber hemofilter. Ultrafiltration rates and whole blood urea clearances were measured in post-dilution hemofiltration. High ultrafiltration rates were obtained with the new hemofilter. No adverse effects were detected despite filtration fractions above 45%. These experiments suggest that it is possible in post-dilution hemofiltration to obtain small solute clearances comparable to those of hemodialysis without apparent deleterious effects.

Blood Proteins↗