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Biomedical subjects

F D Collins

Publications and source records attributed to F D Collins.

At least 19 recordsLinked to original sources

Long-term survival effects of GDNF on neonatal rat facial motoneurons after axotomy.

Glial cell-line derived neurotrophic factor (GDNF) has survival promoting effects on axotomized neonatal motoneurons. We examined how long it could sustain motoneurons after postnatal day O (PND) facial nerve axotomy. GDNF, or cytochrome c as a negative control, were locally administered by Gelfoam implants at the time of axotomy and some were re-implanted on PND 14. The surviving motoneurons were quantified on PND 14 and 28. GDNF completely rescued lesioned motoneurons from axotomy-induced cell death at 14 days and was still effective (about 40%) at PND 28. GDNF also prevented axotomy-induced atrophy at both PND 14 and 28, indicating that the neurotrophic effects of GDNF on neonatal motoneurons are long-term.

Animals↗

Nonfunctioning parathyroid carcinoma: a case history.

Parathyroid carcinoma is an uncommon endocrine tumor. Its usual clinical presentation is that of primary hyperparathyroidism with elevated serum calcium and parathormone levels. Nonfunctioning carcinoma of the parathyroid gland with normal serum calcium levels is very rare. There are 12 reported cases in the literature. This paper is a case report of a nonfunctioning parathyroid carcinoma and a review of the literature.

Aged↗

Automatic collector of expired 14CO2 for liquid scintillation counting.

A filtration technique was employed to trap 14CO2 continuously for liquid scintillation counting. Devices for delivering scintillator and ethanolamine solutions were combined symmetrically with two fritted-glass aspirators for alternating operation. The collector was regulated by a fraction collector timer. Trial and animal tests indicated that the described method was efficient, reliable, and more convenient for frequent collection over long periods than alternative methods. The automatic collector was used for metabolic studies of [1-14C] arachidonic acid in rats kept in metabolic cages and the results were processed by multicompartmental analysis.

Animals↗

Incorporation of [2-3H] ethanolamine into rat muscle phosphoglycerides.

The contribution of phosphatidylethanolamine methylation to phosphatidylcholine biosynthesis in rat muscle was investigated by studying the incorporation of [2-3H] ethanolamine. The specific radioactivities of individual molecular species of muscle phosphoglycerides were measured by a combination of argentation thin-layer chromatography and countercurrent distribution. The specific radioactivity of phosphatidylethanolamine was approximately one thousand times that of phosphatidylcholine. Amongst individual phosphatidylethanolamines, hexaenoic species possessed the highest specific radioactivities and tetraenoic the lowest. Because of the very low incorporation into phosphatidylcholine, the specific radioactivities of combined rather than of individual fractions were measured. The results indicate that the contribution of phosphatidylethanolamine methylation to the overall biosynthesis of phosphatidylcholine in muscle is of minor importance.

Animals↗

Incorporation of ortho[32P]phosphate into phosphatidylcholines and phosphatidylethanolamines in rat skeletal muscle.

1. The specific radioactivities of individual molecular species of muscle phosphatidylcholine and phosphatidylethanolamine have been measured by a combination of argentation thin-layer chromatography and countercurrent distribution. 2. The specific radioactivities of individual molecular species of muscle phosphoglycerides have been determined 3 h after intraperitoneal injection of ortho[32 P] phosphate. Under these conditions the specific radioactivities of the species present in rat muscle were found to be measures of the relative turnover times of these molecules. 3. The specificity radioactivity of phosphatidylcholine was approx. three times that of phosphatidylethanolamine. The 1-palmitoyl-2-oleoyl and 1-oleoyl-2-linoleoyl phosphatidylcholines had the fastest turnover and the 1-palmitoyl-2-arachidonoyl the slowest. Of the phosphatidylethanolamines, the linoleoyl and the docosahexaenoyl species showed the fastest turnover and 1-stearoyl-2-arachidonoyl the slowest. 4. The results indicate that phosphoglycerides in muscle turn over more slowly and more evenly than do liver phosphoglycerides.

Animals↗

Biosynthesis of phosphoglycerides in skeletal muscle in control rats and in rats deficient in essential fatty acids.

1. The specific radioactivities of individual molecular species of phosphoglycerides in the skeletal muscles of control rats and of rats deficient in essential fatty acids have been determined 3 h after intraperitoneal injection of ortho[32P] phosphate. 2. It has been demonstrated that the high average specific radioactivity of phosphoglycerides in muscles of rats deficient in essential fatty acids is due to both increased amounts and increased turnover of 1-palmitoyl-2-oleoyl phosphatidylcholine and phosphatidylethanolamine. 3. The 1-stearoyl-2-arachidonoyl phosphatidylcholine was found to turn over faster than the 1-palmitoyl-2-arachidonoyl species. In rats deficient in essential fatty acids, the 1-stearoyl-2-(5,6,11-eicosatrienoyl) phosphatidylcholine turned over more rapidly than the 1-palmitoyl-2-(5,8,11-eicosatrienoyl) species. Both findings are in constant with similar findings for liver.

Animals↗

Mechanism of Mengo virus-induced cell injury in L cells: use of inhibitors of protein synthesis to dissociate virus-specific events.

L cells were infected with Mengo virus in the presence of varying concentrations of protein synthesis inhibitors (azetidine-2-carboxylic acid, p-fluorophenylalanine, puromycin), and examined with respect to the effects of the inhibitors on several features of virus-induced cell injury. The virus-specific events in the cells could be dissociated into three groups, based on their sensitivity to the inhibitors: (i) viral ribonucleic acid (RNA) synthesis, bulk viral protein synthesis, and infectious particle production, all of which were prevented by low inhibitor concentrations; (ii) the cytopathic effect (CPE) and stimulation of phosphatidylcholine synthesis, which were sensitive to intermediate concentrations of the inhibitors; and (iii) the virus-induced inhibitions of host RNA and protein synthesis, which were resistart to the inhibitors of protein synthesis except at very high concentrations. It is concluded from this that the virus-induced CPE and stimulation of phosphatidylcholine synthesis are not consequences of the inhibition of cellular RNA or protein synthesis. Analysis of the virus-specific protein and RNA synthesized at several concentrations of azetidine and puromycin suggests that the CPE may be induced by a viral protein precursor. Virus-induced inhibition of host RNA and protein synthesis occurred at azetidine concentrations which blocked the synthesis of over 99.7% of the total viral RNA and over 99% of the viral double-stranded RNA (dsRNA). Calculations show that this would correspond to less than 150 dsRNA molecules per infected cell, resulting in a dsRNA-polysome ratio of less than 1:1,000; this indicates that host protein synthesis cannot be inhibited by an irreversible binding of dsRNA to polysomes.

Amino Acids↗

Very low density lipoproteins and lipoprotein lipase in serum of rats deficient in essential fatty acids.

Rats fed a diet deficient in essential fatty acids have a low level of serum very low density lipoproteins (VLDL). It was found that after intraperitoneal injection of heparin, deficient rats had a higher level of lipoprotein lipase activity in their plasma than did normal rats. VLDL isolated from serum of normal and deficient rats were compared as substrates for postheparin lipase of rat plasma. There was no significant difference in V(max) between the two preparations of lipoproteins, but the apparent K(m) for lipoproteins from deficient animals was significantly less than that for normal animals. These observations suggest that the low concentration of VLDL in deficient rats may be explained (a) by an increased activity of lipoprotein lipase in the tissues of these animals and (b) by the VLDL of deficient rats being more rapidly hydrolyzed at low concentrations by lipoprotein lipase than VLDL from normal rats.

Animals↗