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Tandem mass spectrometry and structural elucidation of glycopeptides from a hydroxyproline-rich plant cell wall glycoprotein indicate that contiguous hydroxyproline residues are the major sites of hydroxyproline O-arabinosylation.

Hydroxyproline-rich glycoproteins (HRGPs) occur in the extracellular matrix of land plants and green algae. HRGPs contain from 2 to 95% of their dry weight as carbohydrate, predominantly as oligoarabinosides and/or as heteropolysaccharides which are O-linked to the hydroxyproline residues. A glycosylation code that determines the presence or absence and extent of arabinosylation at each hydroxyproline residue is likely, as each HRGP has a unique arabinosylation profile. Previously we noted a positive correlation between the contiguity of hydroxyproline residues and the extent of HRGP O-arabinosylation (Kieliszewski, M., deZacks, R., Leykam, J.F., and Lamport, D.T.A. (1992) Plant Physiol. 98, 919-926); most arabinosylated hydroxyproline residues and the longer arabinofuranoside chains occur in HRGPs where Hyp residues occur as blocks of tetrahydroxyproline, while those with little or no contiguous Hyp exhibit very little Hyp arabinosylation. In order to test this Hyp contiguity hypothesis, we have for the first time determined the arabinosylation site specifics of an HRGP, namely the proline and hydroxyproline-rich glycoprotein (PHRGP) isolated from Douglas fir (Pseudotsuga menziesii). Pronase digests of PHRGP yielded a major peptide and three glycopeptides whose structures were determined directly from the unfractionated underivatized Pronase digest by tandem mass spectrometry using collisionally induced dissociation. We corroborated the peptide and glycopeptide structures by Edman degradation, neutral sugar analyses, hydroxyproline arabinoside profiles, and further mass spectrometric analyses after purification of the major peptide and glycopeptides by a combination of hydrophilic interaction and reverse phase column chromatography. Consistent with the Hyp contiguity hypothesis, the structural analyses indicate that while the sequence Ile-Pro-Pro-Hyp is never arabinosylated and Lys-Pro-Hyp-Val-Hyp is only occasionally monoarabinosylated at Hyp-5, the peptide containing contiguous Hyp, Lys-Pro-Hyp-Hyp-Val, is always arabinosylated at Hyp-3, mainly by a triarabinoside. We also obtained precise molecular masses for both intact and anhydrous hydrogen fluoride-deglycosylated PHRGPs (73.113 and 53.834 kDa) via matrix-assisted laser desorption/ionization time of flight mass spectrometry, representing the first HRGP to be analyzed by this method.

Amino Acid Sequence↗

Hydroxyproline metabolism by the rat kidney: distribution of renal enzymes of hydroxyproline catabolism and renal conversion of hydroxyproline to glycine and serine.

The metabolism of hydroxyproline by the rat kidney leads to the production of significant quantities of both glycine and serine. This process was observed in both the isolated perfused kidney and in isolated cortical tubule suspensions. The rate of hydroxyproline metabolism was increased in both preparations by the addition of alanine. The distribution of hydroxyproline oxidase, hydroxyoxoglutarate aldolase and alanine-glyoxalate transaminase were determined in detail. All three enzymes were found exclusively in the renal cortex where they were restricted to the mitochondria. Cortical tubule fractionation studies indicated that the enzymes are located in the proximal convoluted and proximal straight segments at the nephron. The results suggest that hydroxyproline degradation could contribute significantly to the renal synthesis of serine.

Alanine Transaminase↗

Urinary hydroxyproline and hydroxylysine excretions in relation to hepatic hydroxyproline content in chronic liver disease.

In patients with or without various chronic liver diseases, the total urinary excretion of hydroxyproline and hydroxylysine and the hepatic content of hydroxyproline were examined. In 7 patients without liver disease, the urinary excretion of hydroxyproline and hydroxylysine were 10.3 +/- 1.5 and 1.31 +/- 0.21 mmol/mol creatinine, respectively, and the hepatic content of hydroxyproline was 4.9 +/- 0.6 mumol/g of wet liver. In 33 patients with liver disease, the urinary excretion of hydroxyproline and hydroxylysine and the hepatic content of hydroxyproline were increased in proportion to the severity of liver disease. The hepatic content of hydroxyproline showed a significant correlation with the urinary excretion of hydroxyproline and hydroxylysine (r = +0.406 and r = +0.531, respectively). These results suggest that the study of urinary hydroxyproline and hydroxylysine excretion may yield useful information on the metabolism of hepatic collagen in chronic liver disease. Moreover, urinary hydroxylysine excretion seemed to be a better index of hepatic collagen metabolism than urinary hydroxyproline excretion; perhaps urinary hydroxylysine excretion is not much affected by dietary collagen intake.

Adult↗

Inhibition of formation of protein-bound hydroxyproline by free hydroxyproline in Avena coleoptiles.

Free hydroxyproline inhibits the formation of protein-bound hydroxyproline from proline to a considerably greater extent than it does the incorporation of proline into protein of auxin-treated Avena coleoptiles. This inhibition is greater in the wall than in the cytoplasmic fraction. In the absence of auxin, free hydroxyproline exerts little or no inhibition of hydroxyproline formation. Furthermore free hydroxyproline has no effect on respiration, RNA synthesis or the incorporation of leucine into protein. Hydroxyproline is not a general inhibitor of metabolism or protein synthesis in Avena coleoptiles.These results suggest that free hydroxyproline may inhibit auxin-induced cell elongation by blocking the formation or utilization of a particular hydroxyproline-rich protein which must be incorporated into the cell wall during auxin-induced wall extension.

Journal Article↗

[Animal experiments on the relationship between urinary excretion of hydroxyproline and serum hydroxyproline fractions].

Hydroxyproline excreted withh the urine and the free and peptide-bound hydroxyproline in the serum originate from collagen catabolism in the connective tissue. The relation of protein-bound hydroxyproline in the serum to the collagen metabolism is still contradictory. In normal and lathyritic rats the time dependent changes of specific hydroxyproline activity in the urine and serum after intraperitoneal application of C-14-proline were determined. In normal rats the main part of hydroxyproline excreted in urine and of the protein-bound hydroxyproline in serum have corresponding half-life periods of 0,6-0,7 days and co-ordinate with the neutral salt soluble collagen. Also in lathyritic rats with their increased amount of neutral salt soluble collagen due to an increase collagen synthesis and a retarded transition from soluble to insoluble collagen these two parameters of collagen metabolisms are in agreement.

Animals↗

Inducible degradation of hydroxyproline in Pseudomonas putida: pathway regulation and hydroxyproline uptake.

Studies in Pseudomonas putida of the inducible degradation of hydroxyproline to alpha-ketoglutarate have indicated that either of the two epimers, hydroxy-l-proline or allohydroxy-d-proline, acts as an inducer of all the pathway enzymes. In a mutant lacking the first enzyme of the sequence, hydroxyproline-2-epimerase, which interconverts these two hydroxyproline epimers, either epimer is still equally active as an inducer of the remaining three enzymes, suggesting that each epimer has intrinsic inducer activity. The second and third enzymes of the sequence were induced coordinately. The induction process appeared to be insensitive to catabolite repression under a number of experimental conditions. The induced enzymes were stable even under conditions of nitrogen starvation and other conditions designed to increase protein turnover. In addition to inducing the degradative enzymes, the two hydroxyproline epimers were also found to induce an uptake system that concentrates hydroxyproline intracellularly. Either amino acid induced the uptake system for its epimer as well as for itself.

Alcohol Oxidoreductases↗

Sequence position of 3-hydroxyproline in basement membrane collagen. Isolation of glycyl-3-hydroxyprolyl-4-hydroxyproline from swine kidney.

The position of 3-hydroxyproline was investigated in the triplet sequences of peptides released by collagenase digestion of a collagen preparation from kidney cortex. Composition of the collagen preparation indicated that it was largely or wholly of basement membrane origin. 3-Hydroxyproline was detected in only one sequence, the tripeptide, glycyl-3-hydroxyprolyl-4-hydroxyproline, which accounted for a major fraction of the total 3-hydroxyproline obtained in the peptides released by collagenase. Preliminary data, based on sequencing the peptide mixture released by collagenase treatment, suggested that, in contrast, 4-hydroxyproline occurs predominantly if not exclusively in the Y position of Gly-X-Y triplet sequences in the collagen preparation studied.

Amino Acid Sequence↗

New marker of bone resorption: hydroxyproline-containing peptide. High-performance liquid chromatographic assay without hydrolysis as an alternative to hydroxyproline determination: a preliminary report.

A high-performance liquid chromatographic (HPLC) assay for a urinary hydroxyproline-containing peptide (hydroxy-proline peptide, HypP) is described. This peptide represents about 50% of urinary hydroxyproline-containing peptides. Its concentration and total 4-hydroxyproline (Hyp) concentration evaluated in 325 urine samples have been shown to be closely correlated (r = 0.972; y = 0.499 x -1.5), which may indicate that the two markers provide the same information. The HypP assay, similar to Hyp assay, is carried out without hydrolysis of urine samples. After the blocking of primary amino acids by o-phthaldialdehyde (OPA) and derivatization of secondary amino acids by 9-fluorenylmethyl chloroformate (FMOC-CI), the FMOC derivatives of HypP and 3,4-dehydroproline (internal standard) were separated on a strong anion-exchange column and detected fluorimetrically. HypP concentration was calculated by measurement of peak-area ratios of HypP and the hydroxyproline standard. The HypP/creatinine (mmol/mol) ratio in fasting urine samples from healthy adults was found to be 8.2 (S.D. = 1.6, n = 33) in 27-44-year-old premenopausal women and 6.9 (S.D. = 1.7, n = 21) in 28-49-year-old men.

Adult↗

Effects of dietary NaCl supplementation on bone synthesis of hydroxyproline, urinary hydroxyproline excretion and bone 45Ca uptake in the rat.

High sodium chloride intakes are regarded as a risk factor for osteoporosis because they increase the obligatory urinary calcium loss and stimulate parathyroid activity. Sodium chloride loads induce osteopenia in the rat. The effect could be due to a decrease in bone formation or a rise in bone resorption. Two experiments were undertaken to study the effects of dietary NaCl supplementation on 3H-hydroxyproline synthesis and 45Ca uptake in femoral bone. Salt-treated rats excreted 1.7 times more total urinary hydroxyproline (P less than 0.001) and 2.1 times more recently labelled 3H-hydroxyproline than controls (P less than 0.02) but they did not accumulate less 3H-hydroxyproline or less 45Ca in their bones than controls. These results indicate that salt-mediated osteopenia is due to an increase in bone resorption, rather than to a decrease in bone formation.

Animals↗

Structural and functional changes in lung tissue of mice fed with beta-aminopropionitrile fumarate, L-3-cis-hydroxyproline, and L-4-cis-hydroxyproline.

Structural and functional changes in lung tissue of mice fed with beta-aminopropionitrile fumarate, L-3-cis-hydroxyproline, and L-4-cis-hydroxyproline. We fed 0.1% solutions of 3-cis-hydroxyproline (3cisHP), 4-cis-hydroxyproline (4cisHP) or beta-aminopropionitrile fumarate (beta APN) to 5-week-old mice for 1 month and studied the effect of each of these substances on the lung function and structure. Compared to control animals the compliance of the respiratory system in the mean was increased by 3-15% in the mice fed beta APN or 3cisHP, and decreased by 2-8% in the mice fed 4cisHP. On electron microscopial examination no overt morphological changes were detectable although as proven by biochemical analysis 3cisHP and 4cisHP were incorporated into the collagen of the mice who received these substances. We conclude that the effect of substances interfering with the normal production of collagen molecules depends on the kind of collagen affected and on the rate of collagen turnover.

Aminopropionitrile↗

Fibroblast procollagen production rates in vitro based on [3H]hydroxyproline production and procollagen hydroxyproline specific activity.

In vitro procollagen production rates can be determined by culturing cells in the presence of [3H]proline and measuring the subsequent formation of [3H]hydroxyproline. Values of actual procollagen production can be calculated if the total radioactivity and the specific activity of the newly synthesized procollagen is known. A simple microanalytical method for measuring procollagen specific activity in order to determine procollagen production by lung fibroblasts in vitro is reported. Confluent fibroblasts (IMR-90) were cultured in fresh medium containing [3H]proline, and [3H]hydroxyproline production and prolyl hydroxylation were measured. Hydroxyproline specific activity of nondialyzable procollagen in culture medium as well as extracellular and intracellular free proline specific activity were determined by an ultramicromethod in which the radiolabeled amino acids were reacted with [14C]dansyl chloride of known specific activity [Airhart et al. (1979) Anal. Biochem. 96, 45-55]. Procollagen production rates were readily determined by this method using 5 to 20 microCi [3H]proline and approximately 10(6) cells. It was found that 3H-procollagen production rate into culture medium was constant after a lag of 1.6 h, while procollagen production rate (0.23 pmol/microgram DNA . h) was constant from time zero to 9 h. The specific activities of extracellular and intracellular free proline were not constant during the labeling period, nor were they equal to procollagen specific activity. These data indicate that free proline pool specific activities are not a valid measure of procollagen specific activity. The experimental approach described obviates the need to define or characterize the proline precursor pool from which procollagen is synthesized, and may be readily applied to determine fibroblast procollagen production rates in vitro.

Fetus↗

Fractionation and structure of several hydroxyproline-containing urinary peptides, with special reference to some 3-hydroxyproline-containing peptides.

After a preliminary separation of the hydroxyproline-containing peptides on Biogel P 2, the largest peptides are fractionated on phosphocellulose and the smallest ones on QAE-Sephadex. The fractions obtained from QAE-Sephadex are subfractionated on a column of Dowex 50-M-82. The total number of hydroxyproline-containing peptides from human urine is not less than 78. Sixteen di, tri and pentapeptides have been purified, their N-terminal amino acids and amino acid compositions determined and a structure is proposed. 3 of these peptides contain 3-hydroxyproline and one of these 3 peptides probably originates from basement membrane collagen.

Chromatography, Ion Exchange↗

High-performance liquid chromatographic analysis of free hydroxyproline and proline in blood plasma and of free and peptide-bound hydroxyproline in urine.

A rapid, accurate and sensitive method for the determination of free hydroxyproline and proline in plasma and of total hydroxyproline in urine has been developed. Free imino acids and internal standard are extracted from plasma by trichloroacetic acid precipitation of protein and they are selectively derivatized with 4-chloro-7-nitrobenzofurazan, after reaction of the acid extract with o-phthalaldehyde. The highly fluorescent adducts of imino acids are separated on a Spherisorb ODS 2 reversed-phase column using acetonitrile-0.1 M sodium phosphate buffer, pH 7.2 (9:91, v/v) as mobile phase, followed by fluorometric detection. Total hydroxyproline determination in urine hydrolysates is carried out by reaction of the imino acid with 4-chloro-7-nitrobenzofurazan after clean-up on a Sep-Pak C18 cartridge of the o-phthalaldehyde-treated sample, high-performance liquid chromatographic separation and fluorometric quantitation of the derivative.

Chromatography, High Pressure Liquid↗

Analysis of hydroxyproline and hydroxyproline-arabinosides of plant origin by high-performance anion-exchange chromatography-pulsed amperometric detection.

The plant cell wall hydroxyproline-rich glycoprotein (HRGP), also called extensin, contains arabinose and oligoarabinoside side chains O-glycosidically linked to hydroxyproline (Hyp). We present a highly sensitive method for determining both the glycosylation pattern and the Hyp content of HRGP requiring only nanomole amounts of each Hyp-compound for accurate determination. This method is based on anion-exchange chromatography followed by pulsed amperometric detection of the Hyp-oligoarabinosides and Hyp released from HRGP by 0.22 M Ba(OH)2 hydrolysis, which cleaves only peptidyl bonds. A sodium acetate gradient (0-250 mM) in 150 mM NaOH elutes Hyp and the Hyp-oligoarabinosides Hyp-(Ara)1-5 in less than 40 min. We have used this procedure to determine the glycosylation pattern of Hyp in plant cell walls, without prior isolation of HRGP.

Anion Exchange Resins↗

Contiguous hydroxyproline residues direct hydroxyproline arabinosylation in Nicotiana tabacum.

Hydroxyproline (Hyp) O-glycosylation characterizes the hydroxyproline-rich glycoprotein (HRGP) superfamily of the plant extracellular matrix. Hyp glycosylation occurs in two modes: Arabinosylation adds short oligoarabinosides (Hyp-arabinosides) while galactosylation leads to the addition of larger arabinogalactan polysaccharides (Hyp-polysaccharides). We hypothesize that sequence-dependent glycosylation of small peptide motifs results in glycomodules. These small functional units in combination with other repetitive peptide modules define the properties of HRGPs. The Hyp contiguity hypothesis predicts arabinosylation of contiguous Hyp residues and galactosylation of clustered noncontiguous Hyp residues. To determine the minimum level of Hyp contiguity that directs arabinosylation, we designed a series of synthetic genes encoding repetitive (Ser-Pro(2))(n), (Ser-Pro(3))(n), and (Ser-Pro(4))(n). A signal sequence targeted these endogenous substrates to the endoplasmic reticulum/Golgi for post-translational proline hydroxylation and glycosylation in transformed Nicotiana tabacum cells. The fusion glycoproteins also contained green fluorescence protein, facilitating their detection and isolation. The (Ser-Pro(2))(n) and (Ser-Hyp(4))(n) fusion glycoproteins yielded Hyp-arabinosides but no Hyp-polysaccharide. The motif (Ser-Pro(3))(n) was incompletely hydroxylated, yielding mixed contiguous/noncontiguous Hyp and a corresponding mixture of Hyp-arabinosides and Hyp-polysaccharides. These results plus circular dichroic spectra of the glycosylated and deglycosylated (Ser-Pro(2))(n), (Ser-Pro(3))(n), and (Ser-Pro(4))(n) modules corroborate the Hyp contiguity hypothesis and indicate that Hyp O-glycosylation is indeed sequence-driven.

Base Sequence↗