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Biomedical subjects

C Noyes

Publications and source records attributed to C Noyes.

17 recordsLinked to original sources

Effects of dietary carbohydrate on delayed onset muscle soreness and reactive oxygen species after contraction induced muscle damage.

BACKGROUND: Delayed onset muscle soreness (DOMS) occurs after unaccustomed exercise and has been suggested to be attributable to reactive oxygen species (ROS). Previous studies have shown increased ROS after lengthening contractions, attributable to invading phagocytes. Plasma glucose is a vital fuel for phagocytes, therefore carbohydrate (CHO) status before exercise may influence ROS production and DOMS. OBJECTIVE: To examine the effect of pre-exercise CHO status on DOMS, ROS production, and muscle function after contraction induced muscle damage. METHOD: Twelve subjects performed two downhill runs, one after a high CHO diet and one after a low CHO diet. Blood samples were drawn for analysis of malondialdehyde, total glutathione, creatine kinase, non-esterified fatty acids, lactate, glucose, and leucocytes. DOMS and muscle function were assessed daily. RESULTS: The high CHO diet resulted in higher respiratory exchange ratio and lactate concentrations than the low CHO diet before exercise. The low CHO diet resulted in higher non-esterified fatty acid concentrations before exercise. DOMS developed after exercise and remained for up to 96 hours, after both diets. A biphasic response in creatine kinase occurred after both diets at 24 and 96 hours after exercise. Malondialdehyde had increased 72 hours after exercise after both diets, and muscle function was attenuated up to this time. CONCLUSIONS: Downhill running resulted in increased ROS production and ratings of DOMS and secondary increases in muscle damage. CHO status before exercise had no effect.

Adult↗

Locus of a histidine-based, stable trifunctional, helix to helix collagen cross-link: stereospecific collagen structure of type I skin fibrils.

The loci of the three amino acid residues that contribute their prosthetic groups to form the stable, nonreducible, trifunctional intermolecular cross-link histidinohydroxylysinonorleucine in skin collagen fibrils were identified. Two apparently homogeneous three-chained histidinohydroxylysinonorleucine cross-linked peptides were chromatographically isolated. They were obtained from a tryptic digest of denatured unreduced 6 M guanidine hydrochloride insoluble bovine skin collagen. Amino acid and sequence analyses demonstrated that the prosthetic groups of alpha 1(I)-chain Hyl-87, alpha 1(I)-chain Lys-16c, and alpha 2(I)-chain His-92 formed the cross-link. The latter results served to define the locus of the stable, nonreducible trifunctional moiety. Identical types of analyses were performed on the three-chained peptides isolated after bacterial collagenase digestion of the cross-linked tryptic peptides. This confirmed the initial identification and location of the three peptides linked by the cross-link. In addition, data reported here provide for a correction of the micromolecular structure for the alpha 2(I) chain. Stereochemical considerations concerning this trifunctional cross-link's specific locus indicate that the steric relationships between the alpha chains of skin and skeletal tissue collagens are fundamentally different and the intermolecular relationships in skin fibrils are specific for skin. The same molecular relationships also indicate that histidinohydroxylysinonorleucine links three molecules of collagen. The stereochemistry of cross-linking for skin collagen is in accordance with and explains the X-ray findings of a 65-nm periodicity found for this tissue [Stinson, R. H., & Sweeny, P. R. (1980) Biochim. Biophys. Acta 621, 158; Brodsky, B., Eikenberry, E. F., & Cassidy, K. (1980) Biochim. Biophys. Acta 621, 162].

Amino Acid Sequence↗

Collagen structural microheterogeneity and a possible role for glycosylated hydroxylysine in type I collagen.

A three-chained peptide from type I collagen, crosslinked by hydroxyaldolhistidine, has been isolated from a tryptic digest of 5 M guanidine.HCl-insoluble bovine skin collagen (a small but as yet unknown percentage of the total collagen in whole skin). OsO(4)/NaIO(4) specifically cleaved the crosslink at its double bond into a two-chained crosslink peptide and a single peptide. The sequence of the two-chained peptide containing the bifunctional crosslink was determined after amino acid analysis of the separated peptides. The crosslink consists of an aldehyde derived from hydroxylysine-87 in the aldehyde-containing cyanogen bromide fragment alpha1CB5(ald) and an aldehyde derived from the lysine in the COOH-terminal nonhelical region of the alpha1CB6(ald) fragment. The alpha1CB6(ald) portion of the peptide exhibited structural microheterogeneity, containing the inverted sequence Ala-Lys-His instead of the normal sequence Lys-Ala-His. This indicates that another structural gene exists for alpha1(I) chain. The original three-chained peptide did not contain any glycosylated hydroxylysine or glycosylated hydroxyaldolhistidine. The lack of glycosylation of hydroxylysine-87 in alpha1CB5, which is usually glycosylated, allowed formation of the aldehyde, and this, coupled with the sequence inversion, may have allowed formation of the nonreducible crosslink hydroxyaldolhistidine. We suggest that the role of glycosylation, a posttranslational modification, of specific hydroxylysine residues is to prevent their oxidative deamination to aldehydes, thereby precluding formation of complex stable crosslinks. Complex crosslinks would decrease the rate of collagen turnover. The decrease, with time, would increase the population of stable crosslinked collagen molecules, which would eventually accumulate with age.

Amino Acid Sequence↗

Shared N-terminal sequences in monclonal IgMkappa and IgGkappa proteins from a patient with a complex multiple paraprotein disorder.

The N-terminal sequence analyses were performed on the heavy (H) and light (L) chains of the idiotypically identical IgM kappa and IgG kappa paraproteins isolated from the serum of patient, Cam. The N-terminal 39 residues of the kappa chains of the IgM and IgG were identical and belonged to the human V kappa III subgroup. This sequenced stretch included the first L chain hypervariable region. The N-terminal 27 residues of the variable regions (VH) of the respective mu and gamma heavy chains were also identical and belonged to the human VHIII subgroup. These identical VH sequences were unique with lysine residues at positions 13 and 19. This dual lysine substitution has not been seen in 37 other human VHIII sequences reported in the literature. This N-terminal sequence homology in the V-regions of Cam IgM kappa and IgG kappa paraproteins and the shared idiotypy expressed by Cam IgM, IgG, and IgA proteins strongly suggest the existence of complete structural homology in the variable regions of the and L chains of these Ig molecules of three separate Ig classes. At the cellular and genetic level, these results point toward a common clonal origin for the idiotypically related Ig molecules and suggest that identical V-region (VH and VL) genes were utilized by the Cam lymphoid clone in the biosynthesis of the respective IgM, IgC, and IgA proteins.

Amino Acid Sequence↗

Covalent structure of apolipoprotein A-II from Macaca mulatta serum high-density lipoproteins.

The covalent structure of apolipoprotein A-II, isolated from the serum high-density lipoprotein of a single male Rhesus monkey (Macaca mulatta), was determined. The amino acid sequence of this 77-residue polypeptide is: less than Glu-Ala-Glu-Glu-Pro5-Ser-Val-Glu-Ser-Leu10-Val-Ser-Gln-Tyr-Phe15-Gln-Thr-Val-Thr-Asp20-Tyr-Gly-Lys-Asp-Leu25-Met-Glu-Lys-Val-Lys30-Ser-Pro-Glu-Leu-Gln35-Ala-Gln-Ala-Lys-Ala40-Tyr-Phe-Glu-Lys-Ser45-Lys-Glu-Gln-Leu-Thr50-Pro-Leu-Val-Lys-Lys55-Ala-Gly-Thr-Asp-Leu60-Val-Asn-Phe-Leu-Ser65-Tyr-Phe-Val-Glu-Leu70-Arg-Thr-Gln-Pro-Ala75-Thr-Gln-COOH. A comparison of this structure to that of the monomeric form of human apolipoprotein A-II reveals a high degree of homology except for six conservative amino acid replacements (positions 3, 6, 40, 53, 59, and 71). Of particular structural significance is the replacement of cysteine by serine in position 6. This explaines why Rhesus A-II exists in monomeric form, contrary to the established dimeric nature of the human protein.

Amino Acid Sequence↗

Comparative studies on monotypic IgMlamba and IgGkappa from an individual patient. II. Amino-terminal sequence analyses.

Amino terminal sequence analyses were performed on the H and L chains of the idiotypically related IgMlambda and IgGkappa paraproteins isolated from the sera of a patient, Br. The N-terminal 41 residues of the Br k-chain belonged to the Vkiii subgroup, and L chains derived from BrIgMlambda revealed a blocked N-terminus characteristics of lambda-chains. Comparative sequence analysis of the Br mu- and gamma-chains indicated that, although both possessed an unblocked N-terminal glutamic acid, the respective VH regions belonged to seperate subgroups. The N-terminal 27 residues of the Br mu-chain reflected a typical VHiii subgroup sequence. The Br gamma-chain sequence demonstrated a VHI pattern with an unblocked N-terminus. These structural data stand in contrast to previously reported serologic evidence, which indicated that the BrIgMlambda and BrIgGkappa proteins possessed highly similar Vh-associated idiotypic determinants. Final interpretation of these findings of similar Vh idiotypic determinants expressed by H chains belonging to seperate Vh subgroups must await complete sequence analysis of hypervariable segments of the Br gamma- and mu-chains.

Amino Acid Sequence↗

The amino acid sequence of a testis-specific basic protein that is associated with spermatogenesis.

The amino acid sequence of the COOH-terminal cyanogen bromide fragment (residues 12 to 54) of the testis-specific basic protein of the rat has been determined. This analysis completes the primary structure of the whole protein by over-lapping the sequence of the 23 residues from the NH-2 terminus previously published (Kistler, W. S., Noyes, C., and Heinrikson, R.L. (1974) Biochem. Biophys. Res. Commun. 57, 341-347). The complete sequence of this small, highly basic protein is: (see article for formular).

Amino Acid Sequence↗

Phytohemagglutinin mitogenic proteins. Structural evidence for a family of isomitogenic proteins.

The phytohemagglutinin (PHAP) glycoproteins derived from Phaseolus vulgaris consist of five isomitogens that are tetrameric structures made up of two different glycoprotein subunits. Although identical in size (mol wt = 34,000), the subunits differ in their isoelectric points and amino acid sequences for six of the first seven amino-terminal residues, but are identical in primary structure from the 8th through the 24th amino acid residue. The isomitogen containing four L subunits (L-PHAP) is a potent leukoagglutinin and mitogen that lacks hemagglutinating properties. The isomitogen made up of four R subunits (4R H-PHAP) is a potent hemagglutinin. The hybrid isomitogens consisting of varying proportions of the two subunits (3L-1R, 2L-2R, 1L-3R) are capable of causing mixed erythrocyte-lymphocyte agglutination. These studies provide a structural basis for explaining the differences in biological activities of the various PHAP isomitogens.

Amino Acid Sequence↗

NAD(P) glycohydrolase deficiency in human erythrocytes and alteration of cytosol NADH-methemoglobin diaphorase by membrane NAD-glycohydrolase activity.

Erythrocytic NADH methemoglobin diaphorase acquires NADH-dichlorophenolindophenol diaphorase activity when enzyme-associated NAD is removed. This transformation is reversible and can be mediated by membrane NAD glycohydrolase (EC 3.2.2.5) in hemolysates as well as in intact cells exposed to hydrogen peroxide. It is abolished either in NADH methemoglobin diaphorase deficiency or in NAD(P) glycohydrolase (EC 3.2.2.6) deficiency which is common in Afro-American but not in European-American adults. Activities of erythrocytic NADP glycohydrolase and NAD glycohydrolase appear to depend on a single membrane enzyme.

Cell Membrane↗