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Biomedical subjects

K McKenney

Publications and source records attributed to K McKenney.

At least 19 recordsLinked to original sources

Quantitative NAT for pathogen inactivation verification.

A novel Quantitative Nucleic Acid Test (Q-NAT) technology has been developed to demonstrate, quantify and verify pathogen inactivation by methods that break pathogen nucleic acids, specifically, gamma irradiation. The Q-NAT technology provides significant advantages in cost, efficiency and broad applicability compared with traditional methods for pathogen inactivation detection and quantification such as cell culture.

Biological Products↗

Mesenteric panniculitis: case report and literature review.

Mesenteric panniculitis is an extremely rare inflammatory condition of the adipose tissue of unknown etiology in which the mesentery is replaced with fibrosis. Knowledge of this rare syndrome should prevent any unwarranted aggressive therapy and help to use the clinical, radiological, and surgical sources to obtain the diagnosis. This paper is a review of symptomatology, pathology, treatment, and outcome of this disorder. A case report is described that presented with obstruction of the sigmoid colon.

Aged↗

The complete genome sequence of the hyperthermophilic, sulphate-reducing archaeon Archaeoglobus fulgidus.

Archaeoglobus fulgidus is the first sulphur-metabolizing organism to have its genome sequence determined. Its genome of 2,178,400 base pairs contains 2,436 open reading frames (ORFs). The information processing systems and the biosynthetic pathways for essential components (nucleotides, amino acids and cofactors) have extensive correlation with their counterparts in the archaeon Methanococcus jannaschii. The genomes of these two Archaea indicate dramatic differences in the way these organisms sense their environment, perform regulatory and transport functions, and gain energy. In contrast to M. jannaschii, A. fulgidus has fewer restriction-modification systems, and none of its genes appears to contain inteins. A quarter (651 ORFs) of the A. fulgidus genome encodes functionally uncharacterized yet conserved proteins, two-thirds of which are shared with M. jannaschii (428 ORFs). Another quarter of the genome encodes new proteins indicating substantial archaeal gene diversity.

Archaeoglobus fulgidus↗

The complete genome sequence of the gastric pathogen Helicobacter pylori.

Helicobacter pylori, strain 26695, has a circular genome of 1,667,867 base pairs and 1,590 predicted coding sequences. Sequence analysis indicates that H. pylori has well-developed systems for motility, for scavenging iron, and for DNA restriction and modification. Many putative adhesins, lipoproteins and other outer membrane proteins were identified, underscoring the potential complexity of host-pathogen interaction. Based on the large number of sequence-related genes encoding outer membrane proteins and the presence of homopolymeric tracts and dinucleotide repeats in coding sequences, H. pylori, like several other mucosal pathogens, probably uses recombination and slipped-strand mispairing within repeats as mechanisms for antigenic variation and adaptive evolution. Consistent with its restricted niche, H. pylori has a few regulatory networks, and a limited metabolic repertoire and biosynthetic capacity. Its survival in acid conditions depends, in part, on its ability to establish a positive inside-membrane potential in low pH.

Antigenic Variation↗

A whole genome shotgun gene fusion method for isolation of translation initiation sites in Escherichia coli: identification of Haemophilus influenzae translation initiation sites in E. coli.

We have developed a new method for isolating translation initiation sites based on the expression of Haemophilus influenzae Rd gene fusions with the Escherichia coli galactokinase (galK) gene. We cloned random DNA fragments of H. influenzae Rd DNA into a plasmid vector containing the galK coding sequence from which the translation initiation site (the ribosome binding site and translation initiation codon) had been removed. A subset of the cloned DNA fragments contained translation initiation sites that, when fused to the galK gene, produced active galactokinase and complemented the host galK mutation. Molecules expressing galactokinase activity were isolated and characterized by DNA sequence analysis, and the sequences were aligned with the recently completed whole genomic sequence of H. influenzae Rd. Translation initiation sites for known, hypothetical, and new genes were identified. Translation initiation sites internal to the coding sequences of a number of genes were identified, suggesting that internal translation initiation sites are common, especially in large genes. This shotgun method provides functional information on translation initiation sites and helps to define gene coding sequences.

Amino Acid Sequence↗

Improved method for the production of M13 phage and single-stranded DNA for DNA sequencing.

An improved method is described for the efficient production of M13 phage and M13 single-stranded (ss)DNA in a relatively short time period. Infection of E. coli (F') cells with as few as 5 phage particles can yield 10(12) phage particles/mL in 3 hours if the cells are grown in LB broth or SOB broth supplemented with about 5 mM Mg2+. The method tolerates large variations in the initial multiplicity of infection (5-5000 phage per 5 x 10(7) cells) and still yields about 10(12) phage particles/mL. These amounts are sufficient to purify 10-15 micrograms of ssDNA and to carry out at least 10-15 DNA sequencing reactions.

Bacteriophage M13↗

Mapping domains in proteins: dissection and expression of Escherichia coli adenylyl cyclase.

We have used the pRE expression vector containing the Escherichia coli adenylyl cyclase gene (cya) with the unique NdeI restriction site CATATG at the initiation codon in conjunction with a family of self-complimentary oligonucleotides to create amino- and carboxyl-terminal domains in adenylyl cyclase. The three sets of oligonucleotides contain a TAA translation stop codon in all reading frames flanked by the NdeI restriction endonuclease sequence and one or two nucleotides (5' NNCATATGTTAATTAATTAACATATGNN 3'). Ligation of one of these annealed oligonucleotides into a restriction site or creation of 5' TAA/CATATG 3' translation stop/NdeI restriction site along a gene in the pRE expression vector facilitates the premature termination of protein synthesis thus yielding amino-terminal domains. Removal of a fragment of the gene corresponding to the amino-terminal portion by NdeI restriction and ligation brings the 3' end of the gene in frame with the initiator ATG. With this strategy, expression of the carboxyl-terminal domain of a protein is possible which is otherwise not as simple as the expression of the amino-terminal domain. The feasibility of expression of any domain of a protein is demonstrated using the cya gene to create several amino- and carboxyl-terminal domains of adenylyl cyclase.

Adenylyl Cyclases↗

A molecular chaperone, ClpA, functions like DnaK and DnaJ.

The two major molecular chaperone families that mediate ATP-dependent protein folding and refolding are the heat shock proteins Hsp60s (GroEL) and Hsp70s (DnaK). Clp proteins, like chaperones, are highly conserved, present in all organisms, and contain ATP and polypeptide binding sites. We discovered that ClpA, the ATPase component of the ATP-dependent ClpAP protease, is a molecular chaperone. ClpA performs the ATP-dependent chaperone function of DnaK and DnaJ in the in vitro activation of the plasmid P1 RepA replication initiator protein. RepA is activated by the conversion of dimers to monomers. We show that ClpA targets RepA for degradation by ClpP, demonstrating a direct link between the protein unfolding function of chaperones and proteolysis. In another chaperone assay, ClpA protects luciferase from irreversible heat inactivation but is unable to reactivate luciferase.

Adenosine Triphosphatases↗

DnaJ, DnaK, and GrpE heat shock proteins are required in oriP1 DNA replication solely at the RepA monomerization step.

We have found that three Escherichia coli heat shock proteins, DnaK (the hsp70 homolog), DnaJ, and GrpE, function in oriP1 DNA replication in vitro solely to activate DNA binding by the replication initiator protein RepA. Activation results from the conversion of P1 or P7 RepA dimers to monomers that bind with high affinity to the origin of replication of plasmid P1. Thus, the essential role of these three heat shock proteins in this replication system is to change the quaternary structure of a single protein, RepA.

Bacterial Proteins↗

Escherichia coli cyclic AMP receptor protein mutants provide evidence for ligand contacts important in activation.

The three-dimensional model of the Escherichia coli cyclic AMP (cAMP) receptor protein (CRP) shows that several amino acids are involved as chemical contacts for binding cAMP. We have constructed and characterized mutants at four of these positions, E72, R82, S83, and R123. The mutations were made in wild-type crp as well as a cAMP-independent crp, crp*. The activities of the mutant proteins were characterized in vivo for their ability to activate the lac operon. These results provide genetic evidence to support that E72 and R82 are essential and S83 and R123 are important in the activation of CRP by cAMP.

Cloning, Molecular↗

Monomerization of RepA dimers by heat shock proteins activates binding to DNA replication origin.

DnaK is a major heat shock protein of Escherichia coli and the homolog of hsp70 in eukaryotes. We demonstrate the mechanism by which DnaK and another heat shock protein, DnaJ, render the plasmid P1 initiator RepA 100-fold more active for binding to the P1 origin of replication. Activation is the conversion of RepA dimers into monomers in an ATP-dependent reaction and the monomer form binds with high affinity to oriP1 DNA. Reversible chemical denaturants also convert RepA dimers to monomers and simultaneously activate oriP1 DNA binding. Increasing protein concentration converts monomers to dimers and deactivates RepA. Based on our data and previous work, we present a model for heat shock protein action under normal and stress conditions.

Adenosine Triphosphate↗

Function of DnaJ and DnaK as chaperones in origin-specific DNA binding by RepA.

Heat-shock proteins are normal constituents of cells whose synthesis is increased on exposure to various forms of stress. They are interesting because of their ubiquity and high conservation during evolution. Two families of heat-shock proteins, hsp60s and hsp70s, have been implicated in accelerating protein folding and oligomerization and also in maintaining proteins in an unfolded state, thus facilitating membrane transport. The Escherichia coli hsp70 analogue, DnaK, and two other heat-shock proteins, DnaJ and GrpE, are required for cell viability at high temperatures and are involved in DNA replication of phage lambda and plasmids P1 and F. These three proteins are involved in replication in vitro of P1 DNA along with many host replication proteins and the P1 RepA initiator protein. RepA exists in a stable protein complex with DnaJ containing a dimer each of RepA and DnaJ. We report here that DnaK and DnaJ mediate an alteration in the P1 initiator protein, rendering it much more active for oriP1 DNA binding.

Adenosine Triphosphate↗

Deletion analysis of the mini-P1 plasmid origin of replication and the role of Escherichia coli DnaA protein.

The mini-P1 plasmid origin of replication is contained on a 246 base pair (bp) piece of DNA. At one end there are five 19-bp binding sites for the P1 initiator protein, RepA, and near the other end there are two 9-bp DnaA protein-binding sites. To further define the limits of the origin, we cloned the origin region in M13 and constructed deletions of either end. We sequenced the DNA and tested the replicative form I DNA of the deletion phages for their ability to support RepA-dependent DNA replication in an in vitro system. The origin that is functional in vitro could be reduced to 202 bp. It includes three intact and one incomplete RepA-binding sites at one end and the two DnaA-binding sites at the other end. When the two naturally occurring DnaA-binding sites were replaced with one or two synthetic sites, only the construction containing two sites was active in vitro. We found that the minimal origin that is functional in vivo contains all of the five RepA and the two DnaA-binding sites. Mini-P1 plasmid replication both in vivo and in vitro requires two initiator proteins, the Escherichia coli DnaA protein and the P1 RepA protein. We have found that the ADP form of DnaA is as active as the ATP form of the protein in the in vitro replication of mini-P1. In contrast, only the ATP form is active for in vitro replication of plasmids carrying the E. coli origin (Bramhill, D., and Kornberg, A. (1988) Cell 52, 743-755).

Adenosine Diphosphate↗

Hyperexpression and purification of Escherichia coli adenylate cyclase using a vector designed for expression of lethal gene products.

We describe the construction of a new generation of vectors (pRE) for the hyperexpression of lethal gene products such as adenylate cyclase in Escherichia coli. The pRE vectors are based on the lambda PL promoter and lambda cII ribosome binding site described by Shimatake and Rosenberg (Nature, 292, 128-132, 1981). They have a unique NdeI restriction endonuclease site 3' of the lambda cII ribosome binding site that includes the ATG initiation codon, multilinker cloning sites 3' to the NdeI site, and two lambda transcription terminators 5' and 3' of the lambda PL promoter to eliminate nonspecific transcription and reduce leaky PL transcription, respectively. For hyperexpression of adenylate cyclase, tight control of transcription was necessary since elevation of cAMP levels above the physiological range is lethal to E. coli. Lethality associated with the overproduction of adenylate cyclase was shown to be mediated through the cAMP receptor protein. We used this expression system to overproduce adenylate cyclase 7500 fold, corresponding to 30% of the total cellular protein. Under these conditions the enzyme precipitated with significant loss of activity. Reducing the rate and amount of adenylate cyclase expression to 16% of the total cell protein produced one fourth of the enzyme in a soluble form with high specific activity. The soluble adenylate cyclase was purified to near homogeneity.

Adenylyl Cyclases↗

A system for on-line detection and resolution of radiolabeled DNA molecules and its application to automated DNA sequence analysis.

We describe a system for the real-time detection of radioactively labeled DNA molecules in gel matrix, and we demonstrate the application of this system to DNA sequence analysis. DNA sequencing reactions prepared by the Sanger chain termination method are resolved by electrophoresis on 8% polyacrylamide gels. During electrophoresis the 32P-labeled DNA fragments are detected by solid state detectors positioned 22 cm from the top surface of the gel. This system is able to resolve a DNA sequence of 300 bases or greater. Optimized protocols that allow sequence information to be obtained from single stranded and double-stranded templates are described. A linear relationship exists between the input dpm and the integrated peak values over a 20-fold range indicating that accurate DNA quantitation is also possible using this system.

Automation↗

Arginine substituted for leucine at position 195 produces a cyclic AMP-independent form of the Escherichia coli cyclic AMP receptor protein.

Mutant forms (CRP*) of the Escherichia coli cAMP receptor protein (CRP) that activate CRP-dependent promoters in the absence of the normal allosteric effector (cAMP) have been described. A previous report (Harman, J. G., McKenney, K., and Peterkofsky, A. (1986) J. Biol. Chem. 261, 16332-16339) detailed the properties of three CRP* mutant proteins. One protein, 220 CRP, has amino acid substitutions at positions 127 and 170 and low CRP* activity in vivo. A second protein, 222 CRP, has the amino acid substitutions present in 220 CRP and a third substitution (arginine for leucine) at position 195. 222 CRP has high CRP* activity in vivo and high apparent affinity for lacP DNA relative to the 220 CRP in vitro. In this report, we evaluate the effect of a single amino acid substitution at position 195 (leucine to arginine) on CRP activity both in vivo and in vitro. Cells (cya delta crp delta/pJH8crpR195) containing R195 CRP were found to exhibit a CRP* phenotype, expressing a variety of CRP-dependent genes in the absence of added cAMP. R195 CRP exhibited both CRP* activity in vitro and increased apparent affinity for cAMP relative to wild-type CRP. CRP titration experiments performed using an in vitro lac transcription system suggest that the isolated substitution of arginine at position 195 does not confer on CRP the high lacP affinity that distinguishes the 220 and 222 forms of CRP. These findings lead us to the conclusion that the effects of multiple mutations in CRP can be both cumulative and interactive.

Arginine↗

Autoregulation of the yeast copper metallothionein gene depends on metal binding.

The yeast CUP1 gene product, copper metallothionein, acts to repress the basal transcription of its own structural gene. By creating a series of truncation and amino acid substitutions in CUP1, we show that the ability of the protein to autoregulate is directly correlated to its ability to bind and detoxify copper. These results support a model in which metallothionein controls the level of free intracellular copper available to interact with positive transcription factors. In addition, mutations in chemically equivalent cysteine residues were functionally dissimilar, suggesting that partial sites in the molecule are critical for the formation of the sulfur-metal cluster.

Carrier Proteins↗