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S J Filley

Publications and source records attributed to S J Filley.

8 recordsLinked to original sources

Plasma fatty acids, prostaglandin F2alpha metabolite, and reproductive response in postpartum heifers fed rumen bypass fat.

An experiment was conducted to determine whether feeding rumen-protected fatty acids (FA) to postpartum heifers would increase plasma concentrations of linoleic acid and PGF2, metabolite (PGFM), shorten the interval from calving to first increase in plasma concentrations of progesterone (P4), and increase pregnancy rate relative to controls. Hereford x Angus heifers (346 kg) were assigned randomly to treatments containing either lipid or barley supplemented diets for the first 30 d postpartum. Lipid was .23 kg.heifer(-1).d(-1) of calcium salts of FA (CSFA; n = 20), and an isocaloric amount of barley served as the control (n = 19). Supplements, with .23 kg of barley as a vehicle, and a basal diet of meadow and alfalfa hays were pen fed to heifers (5/pen). Heifers were bled on alternate days (d1 to 30) and twice weekly (d 30 to 2 wk after first estrus) for RIA of plasma PGFM and P4, respectively. Weight percentage of major FA in plasma on d1 and 7 was determined with gas chromatography. First behavioral estrus was detected by use of intact bulls and confirmed by an increase in plasma P4. On d 7, but not d 1, plasma from heifers fed CSFA had altered proportions of major FA (P < .01), including an increase in linoleic acid compared with those of controls (29.1 vs 25.6% of total FA; SE = .75; P < .01). Analysis of variance of contrast variables revealed an effect of treatment on direction of change in PGFM from d 3 to 5 (P < .01). By d 7 and on d 9, plasma concentrations of PGFM were greater in heifers fed CSFA than in controls (P = .02 and P = .06, respectively). There was no difference in plasma concentration of PGFM between treatments on d 1, 3, 5, 11, 13, and 15 postpartum (P = .80, .17, .52, .82, .46, and .77, respectively). Days to first estrus with ovulation, pregnancy rate, and calving interval were not affected by treatments (P = .58, .52, and .24, respectively). Although supplemental lipid fed to primiparous beef heifers increased plasma levels of linoleic acid and production of PGFM in the early postpartum period, it did not improve the fertility of these heifers in the subsequent breeding season.

Animals↗

Prostaglandin f(2alpha) concentrations, fatty acid profiles, and fertility in lipid-infused postpartum beef heifers.

Effects of lipid infusion into postpartum (PP) beef heifers on plasma concentrations of linoleic acid and prostaglandin (PG) F(2alpha) metabolite (PGFM), days to first estrus, and subsequent pregnancy rate were examined. Treatments (n = 5 per group) of 1 L intralipid (20% soybean oil; IL), 1 L 50% dextrose (DEXT; isocaloric to IL), 0.5 L intralipid (0.5 IL), and 1 L physiological saline (SAL) were infused i.v. over 4 h on each of Days 7 through 11 PP. Capacity of the uterus to produce PG was evaluated after i.v. injection of 150 IU of oxytocin (OT) to IL- and DEXT-treated heifers Day 12 PP. Change in plasma concentrations of PGFM from 0 to 4 h was greater for IL-treated heifers than for heifers given other treatments on Day 7 (P = 0.04) and on Day 11 (P = 0.01), but not on Day 9 (P>0.10). Plasma linoleic acid on Day 11 and OT-induced release of PGFM on Day 12 were greater in IL-treated heifers compared with DEXT-treated heifers (P<0.06 and P = 0.01, respectively). There were no significant differences among treatments for mean days to first estrus or pregnancy rate. Infusion of lipid increased systemic concentrations of linoleic acid and increased the capacity of PP heifers to produce uterine PGF(2alpha) as indicated by plasma PGFM concentration after OT injection.

Animals↗

Further characterization of Escherichia coli alanyl-tRNA synthetase.

Selected physical and thermodynamic parameters for Escherichia coli alanyl-tRNA synthetase (AlaRS) have been determined primarily to assess the quaternary structure of this enzyme. The extinction coefficient (epsilon) at 280 nm was determined experimentally to be 0.71 ml mg-1 cm-1, and the partial specific volume (nu) was calculated from the amino acid composition to be 0.73 ml g-1. From viscosity experiments the intrinsic viscosity (eta) of AlaRS was extrapolated to be 3.4 ml g-1 and the degree of hydration (delta 1) estimated to be 0.67 gH2O g(-1)(AlaRS). Laser light-scattering studies indicated some heterogeneity; a radius of 6.3 nm was calculated for the major fraction with a diffusion coefficient (D20,W) of 3.89 x 10(-7) cm2 s-1. In 50 mM Hepes, pH 7.5, 20 mM KCl, 2 mM 2-mercaptoethanol and at a protein concentration of 4.2 mg ml-1 the sedimentation coefficient (S20,W) was 6.36 S; this value increased slightly when the protein concentration was decreased. The combination of S20,W and D20,W under these conditions yielded a molecular weight of approximately 186,000 Da, corresponding to a dimer. The S20,W was virtually independent of temperature in the range of 10-37 degrees C, while an Arrhenius plot of aminoacylation activity was biphasic. The isoelectric point was determined experimentally to be 4.9. Sedimentation equilibrium data were best fit to a decamer association complex in which dimeric AlaRS is the predominant species at 25 degrees C.

Alanine-tRNA Ligase↗

A cysteine in the C-terminal region of alanyl-tRNA synthetase is important for aminoacylation activity.

Alanyl-tRNA synthetase (AlaRS) from Escherichia coli is a multimeric enzyme that catalyzes the esterification of alanine to tRNA(Ala) in the ATP-dependent aminoacylation reaction. The functional binding of all three substrates follows Michaelis-Menten kinetics. The role of cysteines in this enzyme has been evaluated via modification of these residues with p-(hydroxymercuri)phenylsulfonic acid, monobromobimane, and 5,5'-dithiobis(2-nitrobenzoic acid) (DTNB). The former two reagents induce nearly complete inactivation of AlaRS aminoacylation activity and the release of all tightly bound zinc. In the case of mild DTNB treatment, only two of the six cysteines in AlaRS are modified, with release of all zinc and partial loss of aminoacylation activity. These experiments indicate the importance of one or more cysteines, other than those thought to be coordinated with zinc, in the aminoacylation reaction. Substitution of each of the cysteine residues outside the zinc-binding motif with serine does not disrupt zinc binding. However, the cysteine most removed in primary sequence from the active site (Cys665) is identified as important in the aminoacylation step. Mutation of Cys665 to serine induces a 120-fold decrease in the catalytic efficiency of this enzyme, primarily through a kcat effect, and introduces sigmoidal kinetics (nH = 1.8) with respect to the RNA substrate. The results demonstrate that a simple manipulation in the C-terminal region can introduce positive cooperativity in this otherwise noncooperative enzyme.

Acylation↗

Cooperative binding of zinc to an aminoacyl-tRNA synthetase.

Zinc binds to tetrameric alanyl-tRNA synthetase from Escherichia coli with a stoichiometry of one g-atom of zinc per enzyme subunit. The nature of this metal-protein interaction is investigated here through a series of equilibrium dialysis and intrinsic fluorescence experiments. The dialysis data show that zinc binds to this synthetase in a cooperative manner, with half-maximal zinc binding at 0.97 microM free zinc and a Hill coefficient of 1.9. The cooperative feature is also observed in the zinc-induced quenching of the protein intrinsic fluorescence, indicating that zinc binding induces a conformational change. This is the first report of cooperative binding of zinc to an aminoacyl-tRNA synthetase, and the data provide a rationale for the oligomeric structure of the synthetase specific for alanine.

Alanine-tRNA Ligase↗

Amino acid substitutions at position 73 in motif 2 of Escherichia coli alanyl-tRNA synthetase.

Lysine73, located in the adenylate synthesis domain of Escherichia coli alanyl-tRNA synthetase (AlaRS), was previously indicated to be an important residue for the interaction of this enzyme with the acceptor stem of its cognate tRNA (tRNA(Ala)). Replacement of this residue with glutamine produced a reduction in the catalytic efficiency of AlaRS in the aminoacylation assay, primarily through an increase in the apparent KM for tRNA(Ala) [Hill, K., and Schimmel, P. (1989) Biochemistry 28, 2577-2586]. Studies on the role of residue 73 in the interaction of AlaRS with its substrates have now been extended using the additional substitutions of asparagine, alanine, and glutamate. Analysis of each substituted enzyme in the ATP-PPi exchange and aminoacylation reactions reveals kinetic characteristics similar to those obtained with the glutamine substitution, except that the glutamate substitution causes a fivefold decrease in the affinity for alanine. These data verify that the positive charge on lysine 73, rather than its hydrophilic side chain, is of importance in the binding of the cognate tRNA, but do not support an ionic interaction of this residue with the RNA phosphate backbone. The collective data support the prediction that lysine73 is in motif 2 of AlaRS [Cusack, S., Hartlein, M., and Leberman, R. (1991) Nucleic Acids Res. 19, 3489-3498], but question the predicted alignment of this motif with other enzymes in its class.

Alanine-tRNA Ligase↗

The relationship among adiposity, diet, and hormone concentrations in vegetarian and nonvegetarian postmenopausal women.

The relationships among anthropometric variables, dietary nutrients, and plasma steroid, polypeptide, and binding-protein hormone concentrations were investigated in 24 Seventh-day Adventist postmenopausal women, 12 vegetarian (SV) and 12 nonvegetarian (SNV). Fasting blood and 7-d dietary intake information were collected. SVs consumed significantly more crude and dietary fiber and fewer saturated fatty acids than did SNVs. The thigh and sum of three skinfold-thickness measurements were significantly greater for SNVs than for SVs. Plasma concentrations of estradiol-17 beta were significantly lower in SVs than in SNVs. Significant relationships were observed for the combined groups (SV and SNV) between estradiol-17 beta and triceps and suprailiac skinfold thickness and body fat. Plasma concentrations of estradiol-17 beta of the combined groups revealed a significant negative relationship between their crude and dietary fiber intakes. Further study delineating the effects of adiposity and dietary nutrients on basal concentrations of sex hormones is warranted.

Adipose Tissue↗