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Biomedical subjects

M V Novotny

Publications and source records attributed to M V Novotny.

At least 37 records · Page 2Linked to original sources

NMR mapping of the recombinant mouse major urinary protein I binding site occupied by the pheromone 2-sec-butyl-4,5-dihydrothiazole.

The interactions between the mouse major urinary protein isoform MUP-I and the pheromone 2-sec-butyl-4,5-dihydrothiazole have been characterized in solution. (15)N-labeled and (15)N, (13)C-doubly-labeled recombinant MUP-I were produced in a bacterial expression system and purified to homogeneity. Racemic 2-sec-butyl-4, 5-dihydrothiazole was produced synthetically. An equilibrium diffusion assay and NMR titration revealed that both enantiomers of the pheromone bind to the recombinant protein with a stoichiometry of 1 equiv of protein to 1 equiv of racemic pheromone. A micromolar dissociation constant and slow-exchange regime dissociation kinetics were determined for the pheromone-protein complex. (1)H, (15)N, and (13)C chemical shifts of MUP-I were assigned using triple resonance and (15)N-correlated 3D NMR experiments. Changes in protein (1)H(N) and (15)N(H) chemical shifts upon addition of pheromone were used to identify the ligand binding site. Several amide signals, corresponding to residues on one side of the binding site, were split into two peaks in the saturated protein-ligand complex. Similarly, two overlapping ligand spin systems were present in isotope-filtered NMR spectra of labeled protein bound to unlabeled pheromone. The two sets of peaks were attributed to the two possible chiralities of the pheromone. Intermolecular NOEs indicated that the orientation of the pheromone in the MUP-I binding cavity is opposite to that modeled in a previous X-ray structure.

Amino Acid Sequence↗

Narrow-band collisional activation technique for ion trap mass spectrometers.

Narrow-bandwidth signals were applied to the end caps of an ion trap mass spectrometer to excite ions during collisional activation. Excitation waveforms were created from a single-frequency component and a random noise component using a multiplier circuit. Tandem and higher order mass spectrometry experiments (MS3) can be performed without optimization of the supplemental frequency applied to the end cap electrodes. The usefulness of this method of ion excitation is demonstrated using singly and multiply protonated peptide ions as well as sodium-cationized carbohydrates.

Amino Acid Sequence↗

N-linked oligosaccharides of vomeromodulin, a putative pheromone transporter in rat.

Vomeromodulin, a putative pheromone transporter of the rat vomeronasal organ, was isolated by lectin chromatography, purified, and subjected to a mass spectrometric (MS) system of glycan structural determination. Through a combination of exoglycosidase treatments and measurements by matrix-assisted laser desorption/ionization MS, the N-glycans of vomeromodulin were identified as mainly sialylated and fucosylated biantennary structures. The microheterogeneity of N-glycan structures was also due to the presence of galactose residues with different types of linkages.

Animals↗

Tandem mass spectrometry of model peptides modified with trans-2-hexenal, a product of lipid peroxidation.

Small molecules formed during lipid peroxidation can react with the basic groups in proteins through different mechanisms. Recently, substituted pyridinium moieties were observed during in vitro incubations of lysine-containing peptides with 2-alkenals. To explore the dissociation behavior of peptides with pyridinium-derivatized lysine residues, the peptide ions created through either matrix-assisted laser desorption/ionization or electrospray ionization were studied with tandem mass spectrometry. The permanently charged pyridinium ions fragment primarily through the charge-remote processes. Under high energy collision-induced dissociation, a number of diagnostic ions were observed that could potentially be used to identify modified residues in proteins. The origins of these ions were studied using deuterium exchange and higher-order mass spectrometry experiments using an ion trap instrument. Rational structures for these ions are proposed.

Aldehydes↗

A unique urinary constituent, 6-hydroxy-6-methyl-3-heptanone, is a pheromone that accelerates puberty in female mice.

BACKGROUND: Olfactorily mediated puberty acceleration in female mice (measured by an increase in uterine weight) has been observed since the 1960s without the active chemosignal being structurally identified. There are many controversies in the literature as to whether this male-originated pheromone is a volatile substance. We investigated the chemical nature of the urinary fractions that are responsible for the characteristic uterine weight increases. RESULTS: The active pheromone was identified as 5,5-dimethyl-2-ethyltetrahydrofuran-2-ol and/or its open-chain tautomer (6-hydroxy-6-methyl-3-heptanone). A series of cyclic vinyl ethers were isolated from chromatographically active fractions of the urine. Because these compounds did not accelerate puberty, we postulated that these ethers were degradation products of a lactol (5,5-dimethyl-2-ethyltetrahydrofuran-2-ol). The lactol was then detected directly in the mouse urine extract using a silylation agent. Synthetic 6-hydroxy-6-methyl-3-heptanone had strong biological activity, whereas its close structural analogs did not. CONCLUSIONS: The male house mouse excretes into its urine a large quantity of a volatile substance that has a unique lactol/hydroxyketone structure. This substance is capable of binding to the less volatile urinary constituents, such as proteins or peptides, and is active in puberty-acceleration bioassays. The controversies regarding the volatility of the puberty-accelerating pheromones can now be explained by considering a complex of volatile lactol/hydroxyketone and urinary proteins.

Animals↗

Increased protein backbone conformational entropy upon hydrophobic ligand binding.

For complexes between proteins and very small hydrophobic ligands, hydrophobic effects alone may be insufficient to outweigh the unfavorable entropic terms resulting from bimolecular association. NMR relaxation experiments indicate that the backbone flexibility of mouse major urinary protein increases upon binding the hydrophobic mouse pheromone 2-sec-butyl-4,5-dihydrothiazole. The associated increase in backbone conformational entropy of the protein appears to make a substantial contribution toward stabilization of the protein-pheromone complex. This term is likely comparable in magnitude to other important free energy contributions to binding and may represent a general mechanism to promote binding of very small ligands to macromolecules.

Animals↗

Induction of estrus in grouped female mice (Mus domesticus) by synthetic analogues of preputial gland constituents.

Two major volatile constituents of the male mouse preputial gland, E,E-alpha-farnesene and E-beta-farnesene, were examined for their role in inducing estrous cycles in grouped female mice. The results indicated that the mixture of the farnesenes was as effective as the homogenate of the intact preputial gland, while the extract of the castrate preputial tissue did not show a pronounced response.

Animals↗

Structural characterization of the N-linked oligosaccharides in bile salt-stimulated lipase originated from human breast milk.

The detailed structures of N- glycans derived from bile salt-stimulated lipase (BSSL) found in human milk were determined by combining exoglycosidase digestion with matrix-assisted laser desorption/ionization time-of-flight mass spectrometry. The N- glycan structures were conclusively determined in terms of complexity and degree of fucosylation. Ion-exchange chromatography with pulsed amperometric detection, together with mass-spectral analysis of the esterified N- glycans, indicated the presence of monosialylated structures. The molecular mass profile of esterified N- glycans present in BSSL further permitted the more detailed studies through collision-induced dissociation (CID) and sequential exoglycosidase cleavages. The N- glycan structures were elucidated to be complex/dibranched, fucosylated/complex/dibranched, monosialylated/complex/dibranched, and monosialylated/fucosylated/dibranched entities.

Carbohydrate Sequence↗

Matrix-assisted laser desorption/ionization mass spectrometry of neutral and acidic oligosaccharides with collision-induced dissociation.

Using ribonuclease B and human alpha 1-acid glycoprotein (AGP) as model glycoproteins, matrix-assisted laser desorption/ionization (MALDI) mass spectrometry with collision-induced dissociation (CID) is validated here as an effective tool for oligosaccharide sequencing. The spectra acquired for high-mannose and complex oligosaccharide structures show characteristic fragments resulting from cleavages of the glycosidic bonds and a few cross-ring cleavages. Esterification of the sialic acid residues is essential in stabilizing the acidic N-linked oligosaccharides. An important analytical feature observed in all acquired spectra is the occurrence of cleavages on the same antenna up to the branching point, as deduced from the absence of fragmentation due to the simultaneous cleavages on two or more antennas.

Carbohydrate Conformation↗

Mass spectrometric mapping and sequencing of N-linked oligosaccharides derived from submicrogram amounts of glycoproteins.

Very small quantities of glycoproteins were directly processed on a MALDI sampling plate prior to their mass spectrometric investigations. The on-plate digestion with N-glycanase released effectively the corresponding oligosaccharides in very short times, irrespective of their molecular mass. The following treatment with an array of exoglycosidase enzymes enables sequencing and a linkage-form determination in analysis times that are considerably shorter than achieved previously: the entire structural determination on a glycoprotein can be completed in one day, with a minimum substrate consumption. Ribonuclease B, bovine fetuin, human alpha 1-acid glycoprotein, and the diamine oxidase (from porcine kidney) have been used to illustrate different aspects of the on-plate sample treatment/MALDI mass spectrometry.

Animals↗

Matrix-assisted laser desorption/ionization mass spectrometry of acidic glycoconjugates facilitated by the use of spermine as a co-matrix.

Negative-ion matrix-assisted laser desorption/ionization mass spectra of sialyated glycoconjugates were acquired employing 2,5-dihydroxybenzoic acid (DHB) in conjunction with spermine as a co-matrix. The addition of spermine to DHB permitted an improved crystal formation as well as a higher analyte solubility. Moreover, DHB/spermine appears to minimize alkali adduct formation, thus allowing the sample analysis without desalting. The combined matrix permitted the analysis of complex sialylated and sialylated/fucosylated structures down to the femotomole range. The ability to use such a matrix also facilitates determination of the sialic acid linkages (in combination with a specific enzyme cleavage). The matrix also appears suitable for studies on gangliosides.

Animals↗

Reaction of N-acetylglycyllysine methyl ester with 2-alkenals: an alternative model for covalent modification of proteins.

Among the various reactions of lipid peroxidation products with proteins, 2-alkenals have been shown to react extensively with the epsilon-amino group of lysine residues [Zídek et al. (1997) Chem. Res. Toxicol. 10, 702-710]. To obtain additional information about the kinetic and mechanistic aspects of this modification, a model peptide (N-acetylglycyllysine O-methyl ester) was reacted with 2-hexenal. The reaction products were characterized through a combination of NMR and MS techniques. The structural elucidation efforts have shown the formation of pyridinium salts through the reaction of two or more alkenals with one amino group. Kinetic data were obtained using a continuous infusion of the reaction mixture into an electrospray ionization mass spectrometer. A mechanism is proposed that offers an alternative model for the formation of stable protein cross-links. The reaction progresses through a Schiff base intermediate to form a dihydropyridine species which can be alternatively reduced to form various 3,4- or 2,5-substituted pyridinium species or react with another Schiff base to form a trialkyl-substituted pyridinium structure. The stoichiometry of this structure (aldehyde/amine) is 3:2, in contrast to the widely accepted 1:2. Therefore, it represents another possible cross-linking mechanism for bifunctional products of lipid peroxidation.

Aldehydes↗

Role of the adrenal gland and adrenal-mediated chemosignals in suppression of estrus in the house mouse: the lee-boot effect revisited.

Mature female mice, grouped in the absence of a male stimulus, exhibit a suppressed estrous cycle (the so-called Lee-Boot effect). We have designed a series of experiments to elucidate the involvement of the adrenal gland in this phenomenon. Our initial results indicate that adrenalectomized mice exhibit a regular estrous cycle in either isolated or grouped conditions. A single, intact mouse caged with five adrenalectomized females showed repeated normal cycles. When the urine samples from group-caged intact mice or group-caged adrenalectomized mice were applied to the external nares of singly caged females, estrous cycles were inhibited in the animals receiving urine from the intact mice but not from the adrenalectomized mice. In addition, corticosterone therapy restored the function of estrus suppression in grouped, adrenalectomized mice. We had previously shown that the urinary excretion of several volatile compounds (2-heptanone, trans-5-hepten-2-one, trans-4-hepten-2-one, pentyl acetate, cis-2-penten-1-yl acetate, and 2,5-dimethylpyrazine) was adrenal mediated (Science 1986; 231:722-725). A further testing of these compounds in relation to estrus suppression has now revealed that a mixture of these compounds is effective, but removing 2, 5-dimethylpyrazine from the mixture abolished the biological response. The overall results of this study show conclusively an important role of the adrenal gland and adrenal-mediated urinary metabolites in estrus suppression.

Adrenal Glands↗

End-label free-solution electrophoresis of the low molecular weight heparins.

The intact heparins are highly charged oligosaccharides. Their charge polydispersity and the possible occurrence of numerous isomers complicate the analysis of these biomedically important glycoconjugates. After unsuccessful attempts to resolve the low molecular weight heparins in entangled matrixes, or through the use of counterions (Stefansson, M.; Novotny, M. V. Anal. Chem. 1994, 66, 3466-3471), we have designed a unique end-label reagent to incorporate both a fluorescent moiety and a desirable frictional increment to the analyte molecules. The resolution of small oligomers was improved dramatically following this approach. We also propose a scheme, based on the end-label free-solution electrophoresis model (Mayer, P.; Slater, G. W.; Drouin, G. Anal. Chem. 1994, 66, 1777-1780), that could potentially predict the migration times of some oligomers of complex heparin mixtures.

Electrophoresis, Capillary↗

2-Methyl-3-oxo-4-phenyl-2,3-dihydrofuran-2-yl acetate: a fluorogenic reagent for detection and analysis of primary amines.

A new fluorogenic reagent, 2-methyl-3-oxo-4-phenyl-2,3-dihydrofuran-2-yl acetate, has been developed for the analysis of primary amines and aminated carbohydrates by means of HPLC, CE, and MALDI/MS. Peptides at 1 pmol (2 x 10(-7) M) levels were successfully labeled and analyzed through CE. The fluorescent derivatives have good stability in both acidic and basic solutions, making their further manipulation and structural analysis possible. The derivatives can be analyzed in reversed-phase HPLC due to the hydrophobic nature of this fluorescent tag. Characteristic elution intervals between the diastereomeric peaks of the chiral peptide derivatives may be used in structural verification. The labeled peptides and neutral oligosaccharides are also readily detectable through MALDI/MS in its positive mode.

Acetates↗

Capillary biomolecular separations.

This article summarizes the recent advances in microcolumn separations of biopolymers. Microcolumn liquid chromatography is primarily emphasized for its role as a micropreparative and fractionation tool, whereas high-performance capillary electrophoresis is demonstrated as a highly efficient technique for final analyses. Following a brief discussion of new trends in instrumentation, the recent applications of capillary techniques to proteins, DNA and glycoconjugates are reviewed.

Chromatography, Liquid↗

Capillary zone electrophoresis of oligosaccharides derivatized with N-(4-aminobenzoyl)-L-glutamic acid for ultraviolet absorbance detection.

A charged and strongly UV-absorbing tag, N-(4-aminobenzoyl)-L-glutamic acid) (ABG), was coupled to oligosaccharides by reductive amination under mild conditions. The effectiveness of ABG as a derivatization agent is shown through the separation of isomaltooligosaccharides from a dextran hydrolysate. The minimum detectable quantities in the subpicomole range are demonstrated.

Amination↗

The use of osazones as matrices for the matrix-assisted laser desorption/ionization mass spectrometry of carbohydrates.

Fifteen sugar osazones were synthesized and evaluated for their use as matrix-assisted laser desorption/ ionization matrices. Various carbohydrate samples were analyzed, indicating that D- or L-arabinosazone, prepared from D- or L-arabinose and phenylhydrazine, gave the overall best performance. The arabinosazones facilitated superior analyses in providing a highly uniform distribution of sample molecules within the matrix microcrystals, and a possibility of using low laser energy for irradiation, leading to high spectral resolution and low matrix background. The arabinosazones with a moderate content of sodium ions promoted specific fragmentation for certain carbohydrates tested. The 50 fmol amounts of maltohexaose and maltoheptaose (present in 0.1 microliter of sample/matrix solution) were detected at a signal-to-background ratio of 3:1.

Arabinose↗