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Biomedical subjects

S Hua

Publications and source records attributed to S Hua.

12 recordsLinked to original sources

Mutation in the interdomain tether influences the stability and refolding of the enzyme rhodanese.

Rhodanese is a single polypeptide chain of 293 amino acids that is folded into two globular domains of nearly equal size that are connected by a 16 amino acid tether. Two amino acids, Val-Asp (VD), were inserted into the interdomain tether through site-directed mutagenesis to produce the new interdomain sequence, E145PSRPEPAIFKAVDTLNR. The purified mutant protein, when unperturbed, was virtually indistiguishable in all properties tested and gave a specific activity that was at least 90% of the WT. However, the tether mutant was considerably less stable to perturbation compared with the WT enzyme. The interdomain hydrophobic surfaces in the mutant were more easily exposed, and the formation of intermediate folding states was facilitated. The rate of unassisted refolding was slightly less for the mutant, and the yield of active enzyme was somewhat reduced. The mutation introduced a new V8 proteinase cleavage site, but this site was not accessible in the native mutant which was as resistant to proteolysis as the WT enzyme. However, perturbation with low concentrations of urea that could form folding intermediate(s), allowed facile cleavage of the mutant to give fragments that appeared to represent the individual domains. In addition, the perturbed mutant could be proteolyzed close to one end of the polypeptide, a position that is far from the site of mutation, and which was not readily cleaved in the WT enzyme or the native form of the mutant. These results indicate that mutation in the interdomain tether can have dramatic effects on the stability and conformational transitions of rhodanese.

Amino Acid Sequence

Rhodanese conformational changes permit oxidation to give disulfides that form in a kinetically determined sequence.

When the structure of the monomeric enzyme rhodanese is perturbed by urea or SDS and heat, sulfhydryl assays combined with SDS gel analyses reveal that intrachain disulfides are formed rapidly. Two intrachain disulfide bonded species can be distinguished. One contains a single disulfide and comigrates on SDS gels with fully reduced rhodanese (Band I), while a second species contains two disulfides and migrates faster than the reduced enzyme (Band II). The kinetic path and identity of the participating sulfhydryl groups are suggested by the results with sulfhydryl mutants. On mild oxidation or perturbation, a single disulfide forms that involves two of the three sulfhydryl groups in C-terminal domain of the protein, i.e., two of the sulfhydryl groups from among the three residues: the active-site Cys-247, Cys-254 and Cys-263. These disulfides are the same as those that are formed upon oxidation of the native enzyme. The remaining sulfhydryl group of these three, in a kinetically slower process, can form a disulfide with Cys-63 which is in the N-terminal domain in native rhodanese. The resulting looped structure is so conformationally constrained that its shape and/or altered SDS binding gives rise to the 'fast' Band II on the SDS gels. The conformationally constrained species with two disulfides may be related to oxidized rhodanese species that are difficult to reduce.

Cysteine

Synthesis and interaction of fluorescent thapsigargin derivatives with the sarcoplasmic reticulum ATPase membrane-bound region.

Fluorescent derivatives of thapsigargin (TG) were synthesized by replacing the C8-butanoyl chain with a dansyl (DTG) or eosin (ETG) moiety. DTG and ETG retain the inhibitory effect of TG on the sarcoplasmic reticulum (SR) ATPase, displaying a 2 and 10 microM Ki, respectively. Steady state and lifetime fluorescence measurements are consistent with energy transfer between tryptophanyl residues assigned to the ATPase membrane-bound region and DTG. This phenomenon exhibits saturation behavior, occurs in the presence of DTG concentrations producing ATPase inhibition, and is partially prevented by inhibitory concentrations of TG. Although long range conformational effects of TG binding affect the fluorescence properties of endogenous tryptophans as well as of a fluorescein 5'-isothiocyanate (FITC) label of the ATPase extramembranous region, no significant energy transfer was detected between DTG and the FITC label. It is concluded that the inhibitors partition within the membrane and the binding domain resides within or near the membrane-bound region of the ATPase.

Animals

Hydrophobic surfaces that are hidden in chaperonin Cpn60 can be exposed by formation of assembly-competent monomers or by ionic perturbation of the oligomer.

The oligomeric form (14-mer) of the chaperonin protein, Cpn60 (GroEL) from Eschericia coli, displays restricted hydrophobic surfaces and binds tightly one to two molecules of the fluorescent hydrophobic reporter, 1,1'-bi(4-anilino)naphthalene-5,5'-disulfonic acid (bisANS). The 14-mer is resistant to proteolysis by chymotrypsin, and none of the three sulfhydryl groups/monomer react with 6-iodoacetamidofluorescein. When monomers of Cpn60 that are folded and competent to participate in protein folding are formed by low concentrations of urea (< 2.5 M), the hydrophobic exposure increases to accommodate approximately 14 molecules of bisANS/14-mer, the binding affinity for bisANS decreases, and 1 sulfhydryl group/monomer reacts with 6-iodoacetamidofluorescein. These monomers display limited proteolysis by chymotrypsin at several points within a hydrophobic sequence centered around residue 250 to produce a relatively stable N-terminal fragment (approximately = to 26 kDa) and a partially overlapping C-terminal fragment (approximately = to 44 kDa). The exposure of hydrophobic surfaces is facilitated by ATPMg. Ions increase hydrophobic exposure more effectively than urea without dissociation of Cpn60. For example, subdenaturing concentrations of guanidinium chloride (< or = 0.75 M) or the stabilizing salt, guanidinium sulfate, as well as NaCl or KCl are effective. The trivalent cation, spermidine, induces maximum exposure at 5 mM. The results suggest that hydrophobic surfaces can be involved in stabilizing the oligomer and/or in binding proteins to be folded, and they are consistent with suggestions that amphiphilic structures, presenting hydrophobic surfaces within a charged context, would be particularly effective in binding to Cpn60.

Amino Acid Sequence

Cholinergic differentiation in neurogenic basal forebrain cultures.

To study early events in the central nervous system (CNS) cholinergic development, cells from rat basal forebrain tissue were placed in culture at an age when neurogenesis in vivo is still active [embryonic day (E) 15]. The rapid mortality of these cells in defined medium, with 50% mortality after 5-10 h, was blocked completely by soluble proteins from the olfactory bulb (a basal forebrain target), extending earlier observations (Lambert, Megerian, Garden, and Klein, 1988). Treated cultures were capable of incorporating thymidine into DNA, and most cells incorporating 3H-thymidine (greater than 90%) also stained positive for neurofilament, confirming neuronal proliferation in the supplemented cultures. A small percentage of 3H-thymidine labelled cells were glial fibrillary acidic protein (GFAP) positive, but growth factors that support astroglial proliferation [epidermal growth factor (EGF), basic fibroblast growth factor (bFGF), and insulin-like growth factor (IGF-1)] were not sufficient for neuronal support. After 5 culture days with supplemented medium, almost 50% of the cells showed choline acetyltransferase (ChAT) immunofluorescence. The cholinergic neurons typically formed clusters separate from noncholinergic cells. These mature cultures did not develop if young cultures were treated with aphidicolin to block DNA synthesis. The data show that cultures of very young rat basal forebrain cells can be neurogenic, giving rise to abundant cholinergic neurons, and that early cell proliferation is essential for long-term culture survival.

Acetylcholinesterase

Mass balance strategy for protein sequencing. Application to a protein with an extended DNPNNP repeating motif.

The value of the mass balance strategy is illustrated in the sequence determination of S. aureus V8 protease. Capillary electrophoresis, electrospray mass spectrometry, and high performance tandem mass spectrometry are used as well as proteolysis and Edman degradation. The carboxy terminus is found to contain 17 irregularly repeating units of the triptych motifs NNP and DNP, which provide a challenge to any strategy involving mapping, sequencing, and overlapping of hydrolytic peptides.

Amino Acid Sequence

Gas chromatographic determination of aldicarb and its metabolites in urine.

A method is described for the determination of aldicarb and its metabolites (the sulphoxide and sulphone) in urine by gas chromatography with flame photometric detection (GC-FPD). The sample was concentrated with a column containing activated charcoal and Florisil, and then eluted with dichloromethane-acetone (1:1, v/v). The aldicarb and aldicarb sulphoxide in the eluate solution were oxidized to aldicarb sulphone and the total sulphone concentration was determined by GC-FPD after extraction with dichloromethane and clean-up with an activated charcoal column. The detection limit was 0.0024 mg/l. The mean recoveries from spiked urine in the range 0.04-0.12 mg/l were 90.9%, 86.6%, 92.6% for aldicarb, aldicarb sulphoxide and aldicarb sulphone, respectively.

Aldicarb

Assay and purity control of metacycline by thin-layer chromatography combined with UV and fluorescence densitometry--a comparison with liquid chromatography.

A thin-layer chromatographic (TLC) method involving UV and fluorescence densitometry is described for the assay and purity control of metacycline. With a mobile phase dichloromethane-methanol-water (58:35:7, v/v/v) and a silica gel thin-layer, previously sprayed with 10% sodium edetate solution adjusted to pH 9.0, all the potential impurities of metacycline were well separated from the main component and from each other. Results obtained with UV densitometry (TLC-UV) and fluorescence densitometry (TLC-F) were compared with those obtained by a liquid chromatography (LC) method using a poly(styrene-divinylbenzene) stationary phase. The correlation coefficients (r) for TLC-UV and LC or TLC-F and LC were better than 0.9999. For TLC-UV the relative standard deviation (RSD) for the assay of the main component was less than 2%, for TLC-F less than 3.0% and for LC less than 1.0%.

Anti-Bacterial Agents

Protein components of bacteriophages lambda and lambda virulent.

Parallel studies have been made of the protein coats of the temperate bacteriophage lambda and of a deletion mutant, lambda virulent. A new method for preparing ghosts of both phages by the action of Cu(++) is described. Protein ghosts of both phages can be dissolved in citrate at pH values below 3, more rapidly in the presence of 8 m urea. Both phages yielded three apparently identical protein components which can be separated by thin-layer gel filtration and thin-layer gel electrophoresis. The protein of molecular weight 47,000 +/- 1,500 represents about 55% of the protein of the ghosts and is therefore likely to be the subunit of the head. The other proteins of molecular weight 30,000 +/- 1,500 and 16,000 +/- 1,500 represent approximately 25% and 20% of the protein, respectively. Amino acid analyses of the ghosts from the two phages have been carried out and show no significant differences. The buoyant density of phage lambda virulent is 0.016 g/ml less than that of lambda. Since no differences have been found in the protein components of the two phages, this indicates that the virulent mutant contains approximately 16% less deoxyribonucleic acid than the temperate phage.

Amino Acids