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1.
Placenta ; 90: 42-44, 2020 01 15.
Article in English | MEDLINE | ID: mdl-32056550

ABSTRACT

The umbilical cord (UC) connects the fetal blood supply to the placenta, so is exposed to all systemic endo- and xenobiotics. We have extensive experience using UC as an analytical matrix for detecting and/or quantitating drugs, chemicals and endogenous compounds. This technical note describes advantages (large amount available, ease of collection, small sample needed for use, rapid availability) and challenges (clinical relationships, processing difficulties, matrix effects on analytes and detection technologies) of UC as an analytical matrix in ELISA and LC/MS platforms, and provides guidance for successfully working with this tissue.


Subject(s)
Drug Evaluation, Preclinical/methods , Mass Spectrometry , Umbilical Cord/chemistry , Fetal Blood/chemistry , Humans
2.
Glycobiology ; 17(8): 857-67, 2007 Aug.
Article in English | MEDLINE | ID: mdl-17567734

ABSTRACT

The human beta1,3-glucuronosyltransferases galactose-beta1,3-glucuronosyltransferase I (GlcAT-I) and galactose-beta1,3-glucuronosyltransferase P (GlcAT-P) are key enzymes involved in proteoglycan and HNK-1 carbohydrate epitope synthesis, respectively. Analysis of their acceptor specificity revealed that GlcAT-I was selective toward Galbeta1,3Gal (referred to as Gal2-Gal1), whereas GlcAT-P presented a broader profile. To understand the molecular basis of acceptor substrate recognition, we constructed mutants and chimeric enzymes based on multiple sequence alignment and structural information. The drastic effect of mutations of Glu227, Arg247, Asp252, and Glu281 on GlcAT-I activity indicated a key role for the hydrogen bond network formed by these four conserved residues in dictating Gal2 binding. Investigation of GlcAT-I determinants governing Gal1 recognition showed that Trp243 could not be replaced by its counterpart Phe in GlcAT-P. This result combined with molecular modeling provided evidence for the importance of stacking interactions with Trp at position 243 in the selectivity of GlcAT-I toward Galbeta1,3Gal. Mutation of Gln318 predicted to be hydrogen-bonded to 6-hydroxyl of Gal1 had little effect on GlcAT-I activity, reinforcing the role of Trp243 in Gal1 binding. Substitution of Phe245 in GlcAT-P by Ala selectively abolished Galbeta1,3Gal activity, also highlighting the importance of an aromatic residue at this position in defining the specificity of GlcAT-P. Finally, substituting Phe245, Val320, or Asn321 in GlcAT-P predicted to interact with N-acetylglucosamine (GlcNAc), by their counterpart in GlcAT-I, moderately affected the activity toward the reference substrate of GlcAT-P, N-acetyllactosamine, indicating that its active site tolerates amino acid substitutions, an observation that parallels its promiscuous substrate profile. Taken together, the data clearly define key residues governing the specificity of beta1,3-glucuronosyltransferases.


Subject(s)
CD57 Antigens/biosynthesis , Epitopes/biosynthesis , Glucuronosyltransferase/chemistry , Glucuronosyltransferase/metabolism , Glycosaminoglycans/biosynthesis , Amino Acid Sequence , Binding Sites , CD57 Antigens/chemistry , CD57 Antigens/immunology , Glycosaminoglycans/chemistry , Glycosaminoglycans/immunology , Humans , Models, Molecular , Molecular Sequence Data , Substrate Specificity
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