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Biomedical subjects

U Hahn

Publications and source records attributed to U Hahn.

At least 163 records · Page 9Linked to original sources

Folding of RNase T1 is decelerated by a specific tertiary contact in a folding intermediate.

The replacement of tryptophan 59 of ribonuclease T1 by a tyrosine residue does not change the stability of the protein. However, it leads to a strong acceleration of a major, proline-limited reaction that is unusually slow in the refolding of the wild-type protein. The distribution of fast- and slow-folding species and the kinetic mechanism of slow folding are not changed by the mutation. Trp-59 is in close contact to Pro-39 in native RNase T1 and probably also in an intermediate that forms rapidly during folding. We suggest that this specific interaction interferes with the trans----cis reisomerization of the Tyr-38-Pro-39 bond at the stage of a native-like folding intermediate. The steric hindrance is abolished either by changing Trp-59 to a less bulky residue, such as tyrosine, or, by a destabilization of folding intermediates at increased concentrations of denaturant. Under such conditions folding of the wild-type protein and of the W59Y variant no longer differ. These results provide strong support for the proposal that trans----cis isomerization of Pro-39 is responsible for the major, very slow refolding reaction of RNase T1. They also indicate that specific tertiary interactions in folding intermediates do exist, but do not necessarily facilitate folding. They can have adverse effects and decelerate rate-limiting steps by trapping partially folded structures.

Models, Molecular↗

Improving purification of recombinant ribonuclease T1.

Purification of recombinant RNase T1 and its mutants has been improved by optimizing bacterial growth conditions, periplasmic fraction preparation and the use of a precolumn. The main part of the chromatographic separation could be automated due to the reproducibility of the procedure.

Aspergillus oryzae↗

Synthesis and kinetic study of transition state analogs for ribonuclease T1.

Based on the proposal that ribonucleases cleave the RNA phosphodiester bond with a mechanism involving pentacovalent phosphorous as transition state, complexes of guanosine and inosine with vanadate-(IV, V), molybdate-(VI), tungstate-(VI), chromate-(VI) and hexacyanochromate-(III) were synthesized and probed as inhibitors of recombinant ribonuclease T1, obtained from an E. coli. overproducing strain. The apparent dissociation constants of these inhibitors and RNase T1, as determined by Michaelis-Menten kinetics, vary between 0.5-0.9 microM and indicate very strong binding, 100- to 1000-fold stronger than the binding of guanosine (Kd = 545 microM) and inosine (Kd = 780 microM), and 50-100-fold stronger than the binding of the product 3' GMP (Kd = 55 microM). Therefore the synthesized inhibitors may be considered as genuine transition state analogs for the enzyme.

Binding Sites↗

Two-dimensional 1H, 15N-NMR investigation of uniformly 15N-labeled ribonuclease T1. Complete assignment of 15N resonances.

Uniformly 15N-enriched ribonuclease T1 (RNase T1) was obtained from Escherichia coli by recombinant techniques. Heteronuclear 1H, 15N-shift correlation spectra were recorded utilizing proton detection. Direct 1H, 15N connectivities were established applying the heteronuclear multiple-quantum coherence technique. Additional 1H, 1H-TOCSY or 1H, 1H-NOESY transfer steps allowed for sequential assignments. Nitrogen atoms without directly bonded protons were detected by means of the heteronuclear multiple-bond correlation experiment. Signals emerging from 15NH and 15NH2 groups were distinguished by heteronuclear triple-quantum filtering methods. 119 nitrogen resonances out of the expected 127 were assigned unambiguously; in addition, previously obtained proton assignments were extended. Preliminary 1H, 15N NMR investigation were performed on the RNase-T1-3'GMP inhibitor complex. Results were interpreted with respect to nucleotide binding.

Magnetic Resonance Spectroscopy↗

Studies on RNase T1 mutants affecting enzyme catalysis.

Using an Escherichia coli overproducing strain secreting Aspergillus oryzae RNase T1, we have constructed and characterized mutants where amino acid residues in the catalytic center have been substituted. The mutants are His40----Thr, Glu58----Asp, Glu58----Gln, His92----Ala and His92----Phe. His92----Ala and His92----Phe mutants are inactive. On the basis of their kcat/Km values, the mutants Glu58----Asp and Glu58----Gln show 10% and 7% residual activity, relative to wild-type RNase T1, whereas the His40----Thr mutant shows 2% activity. The effect of amino acid substitutions on the enzymatic activity of RNase T1 lends further support for a mechanism where Glu58 (possibly activated by His40 and His92 act as general base and acid respectively; this is discussed in terms of the known three-dimensional structure of the enzyme.

Amino Acid Sequence↗

Thermodynamic analysis of the equilibrium, association and dissociation of 2'GMP and 3'GMP with ribonuclease T1 at pH 5.3.

Fluorescence titrations and temperature-jump relaxation experiments were performed as a function of temperature on ribonuclease T1 with the inhibitors 2'GMP and 3'GMP to obtain information on the energetics and molecular events controlling the binding of those inhibitors. Results from the titration and temperature-jump experiments were in agreement concerning the equilibrium constant. The larger equilibrium constant for 2'GMP is enthalpic in origin and is due to both a higher on rate and a lower off rate as compared to 3'GMP. On rates for both inhibitors appear to be below the diffusion controlled limit, apparently due to conformational changes in the portion of the active site responsible for recognition of the guanine base. Comparison of the measured enthalpic and entropic terms associated with the equilibrium constant determined from the fluorescence titrations are in disagreement with those calculated from the on and off rates indicating the presence of an induced conformational change in the 2'GMP-enzyme complex. This second conformational change appears to be due to additional interactions between 2'GMP and the catalytic portion of the active site, which may also be responsible for the differences in the binding constant, the on rate and the off rate between 2'GMP and 3'GMP.

Binding Sites↗

High-level expression of a semisynthetic dam gene in Escherichia coli.

We constructed a semisynthetic gene encoding a DNA-adenine-methyltransferase (Dam) that codes for the same amino acid sequence as the wild type (wt) Escherichia coli dam gene. Since for unknown reasons the entire wt sequence, from the start codon to the end of the gene, could not be cloned, a gene was constructed consisting of a chemically synthesized 5' portion and a 3' portion from the E. coli chromosome. Introduction of this semisynthetic gene into a suitable vector allows overproduction of E. coli Dam in mg amounts per liter E. coli culture, with optimum expression of the gene in the vector pJLA503. This plasmid places the target gene under control of the strong, tandemly arranged pR pL promoters from bacteriophage lambda, regulated by a temperature-sensitive lambda repressor. A rapid, two-column purification protocol is described that allows for very fast purification of the protein. The 32-kDa recombinant protein methylates the sequence GATC.

Amino Acid Sequence↗

The value of immunohistochemistry in the differential diagnosis of endometrial carcinomas.

Endometrial carcinomas may originate from endometrial glandular epithelium and show endometrial differentiation, or from various types of metaplasias developing in the endometrium from pluripotent Müllerian epithelium. They then show endocervical or serous papillary differentiation. Because of their differences in spread, speed of growth and survival rates, it is important to subclassify these endometrial carcinomas. Immunohistochemically, adenocarcinoma with endometrial differentiation including adenoacanthomas and adenosquamous carcinomas can be recognized by their coexpression of cytokeratin 8 and vimentin, and by their negative reaction for CEA. Distinction from adenocarcinomas with mucinous differentiation, including mucoepidermoid adenocarcinomas, is possible by their negative reaction for vimentin and by their positive reaction for CEA. On the other hand, carcinomas with mucinous differentiation primarily located in the endometrium can not be distinguished from those primarily located in the endocervix by immunohistochemistry; that distinction must be made topographically. The same holds true for clear cell carcinomas of both locations. Over the past decade, mucinous adenocarcinomas and clear cell carcinomas originating from the endometrium have increased, whereas adenocarcinomas with endometrial differentiation have become less frequent. This shift is closely related to the altered postmenopausal hormone substitution with the addition of the synthetic gestagens. These apparently stimulate proliferation of endocervical epithelium not only in the endocervix, but also that arising in endocervical metaplasias of the endometrium.

Adenocarcinoma↗

A general method for rapid site-directed mutagenesis using the polymerase chain reaction.

We have developed a general and rapid method for site-directed mutagenesis using primed amplification by the polymerase chain reaction. Starting from a double-stranded DNA template, this method requires only one single specific mutagenic primer and two universal sequencing primers flanking the region to be mutated further upstream and downstream, respectively. To test the method, two different mutants of the RNase T1-encoding gene have been constructed by this technique. Twelve sequenced mutant clones all showed the expected mutations without any wild-type background.

Base Sequence↗

Stability of recombinant Lys25-ribonuclease T1.

The conformational stability of recombinant Lys25-ribonuclease T1 has been determined by differential scanning microcalorimetry (DSC), UV-monitored thermal denaturation measurements, and isothermal Gdn.HCl unfolding studies. Although rather different extrapolation procedures are involved in calculating the Gibbs free energy of stabilization, there is fair agreement between the delta G degrees values derived from the three different experimental techniques at pH 5, theta = 25 degrees C: DSC, 46.6 +/- 2.1 kJ/mol; UV melting curves, 48.7 +/- 5 kJ/mol; Gdn.HCl transition curves, 40.8 +/- 1.5 kJ/mol. Thermal unfolding of the enzyme is a reversible process, and the ratio of the van't Hoff and calorimetric enthalpy, delta HvH/delta Hcal, is 0.97 +/- 0.06. This result strongly suggests that the unfolding equilibrium of Lys25-ribonuclease T1 is adequately described by a simple two-state model. Upon unfolding the heat capacity increases by delta Cp degrees = 5.1 +/- 0.5 kJ/(mol.K). Similar values have been found for the unfolding of other small proteins. Surprisingly, this denaturational heat capacity change practically vanishes in the presence of moderate NaCl concentrations. The molecular origin of this effect is not clear; it is not observed to the same extent in the unfolding of bovine pancreatic ribonuclease A, which was employed in control experiments. NaCl stabilizes Lys25-ribonuclease T1. The transition temperature varies with NaCl activity in a manner that suggests two limiting binding equilibria to be operative. Below approximately 0.2 M NaCl activity unfolding is associated with dissociation of about one ion, whereas above that concentration about four ions are released in the unfolding reaction.(ABSTRACT TRUNCATED AT 250 WORDS)

Calorimetry, Differential Scanning↗

Expression of the chemically synthesized coding region for the cytotoxin alpha-sarcin in Escherichia coli using a secretion cloning vector.

The coding region for the cytotoxin alpha-sarcin from Aspergillus giganteus has been chemically synthesized by the ligation of 19 overlapping oligodeoxyribonucleotides. An Escherichia coli clone producing the cytotoxin was constructed by inserting the synthesized gene directly downstream to the region coding for the signal peptide of the OmpA protein (a major outer membrane protein of E. coli), using the secretion cloning vector pIN-III-OmpA2. The enzyme encoded by the chemically synthesized gene expressed in E. coli displayed properties identical to those of native alpha-sarcin isolated from A. giganteus with respect to its chemistry, antigenicity and ribonucleolytic activity in qualitative assays.

Amino Acid Sequence↗

Replacement of a cis proline simplifies the mechanism of ribonuclease T1 folding.

The refolding of ribonuclease T1 is dominated by two major slow kinetic phases that show properties of proline isomerization reactions. We report here that the molecular origin of one of these processes is the trans----cis isomerization of the Ser54-Pro55 peptide bond, which is cis in the native protein but predominantly trans in unfolded ribonuclease T1. This is shown by a comparison of the wild type and a designed mutant protein where Ser54 and Pro55 were replaced by Gly54 and Asn55, respectively. This mutation leaves the thermal stability of the protein almost unchanged; however, in the absence of Pro55 one of the two slow phases in folding is abolished and the kinetic mechanism of refolding is dramatically simplified.

Aspergillus oryzae↗

Folding of ribonuclease T1. 1. Existence of multiple unfolded states created by proline isomerization.

It is our aim to elucidate molecular aspects of the mechanism of protein folding. We use ribonuclease T1 as a model protein, because it is a small single-domain protein with a well-defined secondary and tertiary structure, which is stable in the presence and absence of disulfide bonds. Also, an efficient mutagenesis system is available to produce protein molecules with defined sequence variations. Here we present a preliminary characterization of the folding kinetics of ribonuclease T1. Its unfolding and refolding reactions are reversible, which is shown by the quantitative recovery of the catalytic activity after an unfolding/refolding cycle. Refolding is a complex process, where native protein is formed on three distinguishable pathways. There are 3.5% fast-folding molecules, which refold within the millisecond time range, and 96.5% slow-folding species, which regain the native state in the time range of minutes to hours. These slow-folding molecules give rise to two major, parallel refolding reactions. The mixture of fast- and slow-folding molecules is produced slowly after unfolding by chain equilibration reactions that show properties of proline isomerization. We conclude that part of the kinetic complexity of RNase T1 folding can be explained on the basis of the proline model for protein folding. This is supported by the finding that the slow refolding reactions of this protein are accelerated in the presence of the enzyme prolyl isomerase. However, several properties of ribonuclease T1 refolding, such as the dependence of the relative amplitudes on the probes, used to follow folding, are not readily explained by a simple proline model.

Endoribonucleases↗

Folding of ribonuclease T1. 2. Kinetic models for the folding and unfolding reactions.

The slow refolding of ribonuclease T1 was investigated by different probes. Structural intermediates with secondary structure are formed early during refolding, as indicated by the rapid regain of a native-like circular dichroism spectrum in the amide region. This extensive structure formation is much faster than the slow steps of refolding, which are limited in rate by the reisomerization of incorrect proline isomers. The transient folding intermediates were also detected by unfolding assays, which make use of the reduced stability of folding intermediates relative to that of the native protein. The results of this and the preceding paper [Kiefhaber et al. (1990) Biochemistry (preceding paper in this issue)] were used to propose kinetic models for the unfolding and refolding of ribonuclease T1. The unfolding mechanism is based on the assumption that, after the structural unfolding step, the slow isomerizations of two X-Pro peptide bonds occur independently of each other in the denatured protein. At equilibrium a small amount of fast-folding species coexists with three slow-folding species: two with one incorrect proline isomer each and another, dominant species with both these prolines in the incorrect isomeric state. In the mechanism for refolding we assume that all slow-folding molecules can rapidly regain most of the secondary and part of the tertiary structure early in folding. Reisomerizations of incorrect proline peptide bonds constitute the slow, rate-limiting steps of refolding. A peculiar feature of the kinetic model for refolding is that the major unfolded species with two incorrect proline isomers can enter two alternative folding pathways, depending on which of the two reisomerizes first. The relative rates of reisomerization of the respective proline peptide bonds at the stage of the rapidly formed intermediate determine the choice of pathway. It is changed in the presence of prolyl isomerase, because this enzyme catalyzes these two isomerizations with different efficiency and consequently leads to a shift from the very slow to the intermediate refolding pathway.

Circular Dichroism↗

Basement membrane components are potent promoters of rat intestinal epithelial cell differentiation in vitro.

Basement membranes have been implicated in morphogenesis and cell differentiation. In this study, the effect of basement membrane components on intestinal epithelial cell maturation in a mesenchyme-free environment was investigated. Fetal rat small intestinal epithelial cells (from the 14th-17th day of gestation) were exposed to basement membrane-derived proteins (laminin, collagen type IV, and a complex basement membrane-enriched extract from the Engelbreth-Holm-Swarm sarcoma) and other extracellular matrix proteins (collagen type I and fibronectin) coated onto Petri dishes. The cells attached readily only to fibronectin and basement membrane proteins. For 5 days the developing epithelial colonies were monitored in vitro, assessing morphological and functional parameters of cell maturation. Colonies grown on laminin and the basement membrane extract were larger and of greater cell density. An increase in alkaline phosphatase and lactase activity was observed after 3-4 days in these colonies which could be enhanced to yield 90%-100% positive cells by the addition of dexamethasone to the medium while no sucrase-isomaltase activity was elicited. Electron microscopy confirmed a high degree of cellular polarization illustrated by tight junctions and apical microvilli in epithelial cells grown on a basement membrane-like support. In contrast, none of the other proteins stimulated the cells to mature in vitro. The authors conclude that certain basement membrane components actively promote fetal intestinal epithelial cell differentiation.

Animals↗

Facts and problems of the intestinal basement membrane.

The importance of the intestinal subepithelial basement membrane has been the topic of a new field of gastrointestinal research. Its chemical structure consisting of collagenous and noncollagenous multidomain macromolecules has become unraveled with the help of specific antibodies. Functional aspects have been tested in cell cultures and tissue recombination experiments. Here, current data are reviewed and remaining problems specified. The persistent influence of the subepithelial myofibroblast on the formation and maintenance of the subepithelial basement membrane and the reciprocal interaction between epithelial cells, their basement membrane and the myofibroblast suggest a broader definition of the intestinal epithelium to include these elements.

Animals↗