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M E Case

Publications and source records attributed to M E Case.

At least 37 records · Page 2Linked to original sources

Point mutations and DNA rearrangements 5' to the inducible qa-2 gene of Neurospora allow activator protein-independent transcription.

Expression of the qa-2 gene of Neurospora crassa normally requires a functional activator protein encoded by qa-1F. Twelve transcriptional mutants of the qa-2 gene have been isolated in qa-1F- strains, and these allow partial expression of qa-2 (1-45% of induced wild type) in the absence of functional activator protein. All 12 mutants have been characterized by genomic (Southern) blot hybridization and the DNAs of 5 have been cloned and sequenced. Eight mutations consist of large DNA rearrangements within a 500-base-pair region 5' to the qa-2 gene. One large rearrangement mutation, located 378 base pairs before the normal site of transcription initiation, causes exceptional levels of qa-2 transcription (45% of induced wild type) from near the normal initiation site. Two of the other four mutations cloned involve tandem duplications (68 and 84 base pairs) of the same upstream region (centered at nucleotide - 145), and two involve "point" mutations (at nucleotides -200 and -95) that closely flank the duplicated region. With one possible exception, none of the mutations appears to involve changes directly associated with RNA polymerase II binding and hence they differ from analogous mutations in comparable prokaryotic systems. The overall results suggest that at least some of the large DNA rearrangement mutations may be acting as upstream activator elements, possibly by juxtaposing enhancer-like sequences, whereas the duplications and point mutations may define a region of qa-2 regulation, for instance at the level of RNA polymerase II access.

Base Sequence↗

Chimeric plasmid that replicates autonomously in both Escherichia coli and Neurospora crassa.

A hybrid pBR322 plasmid (designated pDV1001) containing two functional Escherichia coli antibiotic resistance genes (kanr and camr) and a qa-2+ gene from Neurospora crassa transforms N. crassa qa-2- mutants to qa-2+ with a frequency of ca. 5 X 10(-5) per regenerated spheroplast (ca. 100 transformants per microgram of plasmid DNA). This plasmid can replicate autonomously without integrating into the N. crassa genome. The autonomously replicating hybrid plasmid was detected in N. crassa transformants by Southern gel hybridizations. DNA from these transformants can be recovered by retransformation back into E. coli aroD recipients and selection for chloramphenicol resistance. These E. coli transformants complement an aroD mutant. The hybrid plasmid DNA present in the E. coli transformants remains unchanged on the basis of DNA restriction enzyme analyses. The original, nonhomokaryotic N. crassa transformants can be maintained on a selective medium, but there is as yet no evidence that the self-replicating plasmid can be transmitted through meiosis. In addition, the self-replicating plasmid often integrates into the N. crassa genome and then is inherited in a generally stable fashion through meiosis. Our findings suggest that this plasmid, or some derivative of it, will prove useful as a routine shuttle vector for cloning genes in N. crassa.

Cloning, Molecular↗

Intoxication by aspirin and alcohol in a child. A case of child abuse by medical neglect.

Investigation of child abuse deaths is often hindered by meager or unusual autopsy findings. Circumstantial factors are crucial in such investigations for a thorough understanding of the mechanism and manner of death. We present a case of childhood poisoning from aspirin and alcohol to demonstrate the medical neglect by the parents and the blatant discrepancies between the history provided by the parents and the actual facts preceding the child's death.

Alcoholic Intoxication↗

Laceration of the stomach by blunt trauma in a child: a case of child abuse.

A case of perforation of the stomach following blunt abdominal trauma is described in a two-year-old boy. The abdominal trauma was the result of a blow to the abdomen by the stepfather. The child had ingested a large meal in the hour preceding the injury. The child died from peritonitis and shock 12 h following the injury. The literature on gastric perforation by blunt trauma is reviewed. Injuries to the stomach from nonpenetrating trauma are quite rare and are most often related to vehicular accidents. Gastric injury in a child presenting with a history of a minor home or play injury should arouse suspicion of more significant and perhaps intentional trauma.

Accidents, Traffic↗

Identification and characterization of recombinant plasmids carrying the complete qa gene cluster from Neurospora crassa including the qa-1+ regulatory gene.

The early reactions in the catabolism of quinic acid in Neurospora crassa are controlled by at least four genes which are clustered on linkage group VII. Three of the loci (qa-2, qa-4, and qa-3) encode enzymes that convert quinic acid to protocatechuic acid. The fourth gene (qa-1) encodes a positive regulatory protein which, in the presence of quinic acid, leads to the de novo synthesis of the other proteins in the qa cluster. This communication describes a series of recombinant plasmids that span 36.5 kilobases of linkage group VII and contain the coding sequences for qa-2, qa-4, qa-3, and the qa-1 regulatory protein. The plasmids were obtained by partial digestion of wild-type N. crassa DNA with EcoRI and ligation into the cosmid cloning vehicle pHC79. Two independently derived plasmids (pMSK331 and pMSK335), each containing 36.5-kilobase inserts, were shown by transformation back into N. crassa to contain the entire qa gene cluster. A preliminary physical organization of the gene cluster is presented. An improved procedure for the transformation of N. crassa with plasmid DNA is also described.

DNA Restriction Enzymes↗

Efficient transformation of Neurospora crassa by utilizing hybrid plasmid DNA.

An efficient transformation system has been developed for Neurospora crassa that uses spheroplasts and pVK88 plasmid DNA. pVK88 is a recombinant Escherichia coli plasmid carrying the N. crassa qa-2(+) gene which encodes catabolic dehydroquinase (3-dehydroquinate hydro-lyase, EC 4.2.1.10) and is part of the qa gene cluster. The recipient strain carries a stable qa-2(-) mutation and an arom-9(-) mutation, thus lacking both catabolic and biosynthetic dehydroquinase activities. Transformants were selected as colonies able to grow in the absence of an aromatic amino acid supplement. These colonies were qa-2(+) and had normal levels of catabolic dehydroquinase. DNA.DNA hybridization evidence with appropriate labeled probes indicates clearly that in some instances transformation involves the integration of bacterial plasmid sequences together with the qa-2(+) gene into the N. crassa genome. On the basis of genetic, enzyme assay, and DNA hybridization data, at least three types of transformation events can be distinguished: (i) replacement of the qa-2(-) gene by the qa-2(+) gene without any effect on the expression of the other genes in the qa cluster, (ii) linked insertion of a normal qa-2(+) gene accompanied by inactivation of the adjacent qa-4(+) gene, and (iii) insertion of a normal qa-2(+) gene at an unlinked site in the N. crassa genome. This newly integrated qa-2(+) genetic material is inherited in a typical Mendelian fashion. A low level of transformation has also been obtained by using linear total N. crassa DNA. Two such qa-2(+) transformants are unlinked to the qa-2(-) gene of the recipient.

DNA Restriction Enzymes↗

Organization of the qa gene cluster in Neurospora crassa: direction of transcription of the qa-3 gene.

In Neurospora crassa, the enzyme quinate (shikimate) dehydrogenase catalyzes the first reaction in the inducible quinic acid catabolic pathway and is encoded in the qa-3 gene of the qa cluster. In this cluster, the order of genes has been established as qa-1 qa-3 qa-4 qa-2. Amino-terminal sequences have been determined for purified quinate dehydrogenase from wild type and from UV-induced revertants in two different qa-3 mutants. These two mutants (M16 and M45) map at opposite ends of the qa-3 locus. In addition, mapping data (Caseet al. 1978) indicate that the end of the qa-3 gene specified by M45 is closer to the adjacent qa-1 gene than is the end specified by the M16 mutant site. In one of the revertants (R45 from qa-3 mutant M45), the aminoterminal sequence for the first ten amino acids is identical to that of wild type. The other revertant (R1 from qa-3 mutant M16) differs from wild type at the amino-terminal end by a single altered residue at position three in the sequence. The observed change involves the substitution of an isoleucine in M16-R1 for a proline in wild type. This substitution requires a two-nucleotide change in the corresponding wild-type codon.--The combined genetic and biochemical data indicate that the qa-3 mutants M16 and M45 carry amino acid substitutions near the amino-terminal and carboxyl-terminal ends of the quinate dehydrogenase enzyme, respectively. On this basis we conclude that transcription of the qa-3 gene proceeds from the end specified by the M16 mutant site in the direction of the qa-1 gene. It appears probable that transcription is initiated from a promoter site within the qa cluster, possibly immediately adjacent to the qa-3 gene.

Chromosome Mapping↗

Genetical and biochemical characterization of QA-3 mutants and revertants in the QA gene cluster of Neurospora crassa.

The qa-3 gene, one of the four genes in the qa gene cluster, encodes quinate (shikimate) dehydrogenase (quinate: NAD oxidoreductase, ER 1.1.1.24), the first enzyme in the inducible quinic acid catabolic pathway in Neurospora crassa. Genetic analyses have localized 26 qa-3 mutants at 11 sites on the aq-3 genetic map on the basis of prototroph frequencies. Certain mutants, e.g., 336-3-10 and 336-3-3, are located at opposite ends of the qa-3 gene. Data from four-point crosses (qa-1s mutant 124 X five different qa-3 mutants in triple mutants qa-3, qa-4, qa-2) indicate the following orientation of the qa-3 gene within the qa cluster; qa-1, qa-3 mutant 336-3-10 ("left" end) qa-3 mutant 336-3-3 ("right" end), qa-4, qa-2. Ultraviolet-induced revertants have been obtained from 14 of the qa-3 mutants. The revertable mutants fall into two major classes: those that revert by changes either at the same site or at a second site within the qa-3 gene, and those that revert by unlinked suppressor mutations. The intragenic revertants can be further distinguished by quantative and/or qualitative differences in their quinate dehydrogenase activities. Some revertants with activities either equivalent to or less than wild type produce a thermostable enzyme, and others an enzyme which is thermolabile in vitro at 35 degrees. A concentration of quinic acid or shikimic acid as low as 50 micron protects the enzyme markedly from heat inactivation. The genetic organization and the orientation of the qa-3 gene are discussed with respect to its direction of transcription and to the possible localization of a promoter (initiator) region(s) within the qa gene cluster.

Alcohol Oxidoreductases↗

Type II Arnold-Chiari malformation with normal spine in trisomy 18.

A variety of anomalies of the central nervous system are observed in trisomy 18. The present case describes an infant having a type II Arnold-Chiari malformation without spina bifida. One previous case of an Arnold-Chiari malformation was reported in trisomy 18 but that infant also had a lumbar meningomyelocoele. Abnormalities of cerebral gyration, hydrocephalus, and agenesis of the corpus callosum were also found in the present case.

Arnold-Chiari Malformation↗

Characterization of qa-2 mutants of Neurospora crassa by genetic, enzymatic, and immunological techniques.

Genetic and complementation mapping studies using 20 qa-2 mutants defective for catabolic dehydroquinase indicate that the qa-2 gene encodes a single polypeptide chain and is the structural gene for catabolic dehydroquinase, a 220,000-molecular-weight protein composed of identical 10,000-molecular-weight subunits. Many qa-2 mutants are capable of reversion, but no evidence has yet been obtained for nonsense mutations in this gene. The biochemical consequences of the mutations in two complementing qa-2 strains (M239 and M204) have been determined. Both mutants have extremely low levels of catalytic activity and form a heterocaryon with about 4% of the wild-type activity. As assayed by immunological cross-reactivity, mutant M239 and the heterocaryon have nearly wild-type levels of native-molecular-weight catabolic dehydroquinase protein, whereas M204 has no detectable amount of this protein. Thus it is concluded that M239 has a mutation at or near the catalytic site which reduces the activity 10,000-fold but has little or no influence on the formation of the native multimeric structure. In contrast, M204 apparently has a mutation that severely inhibits aggregation and may have only a minor effect on the inherent potential for catalytic conversion at the reactive site. The heterocaryon would appear to form a mixed multimer with the monomeric subunits from M239 providing the aggregated structure and those from M204, the catalytically active moiety.

Chromosome Mapping↗

Gene order in the qa gene cluster of Neurospora crassa.

Four different types of crosses have been used to establish the order of the four genes in the qa gene cluster of Neurospora crassa, which encode the following proteins involved in the inducible catabolism of quinic acid: a regulatory (activator) protein (qa-1), catabolic dehydroquinase (qa-2), quinate dehydrogenase (qa-3), and dehydroshikimate dehydrase (qa-4). The four crosses involved (1) the ordering of the four qa genes relative to the closely-linked me-7 locus; (2) the ordering of the three other qa genes relative to a qa-1S mutant; (3) the use of a three factor cross--qa-3 X qa-4 qa-2 and (4) the use of four factor crosses--qa-1S X qa-3 qa-4 qa-2. The results of all four types of crosses agree in establishing an apparently definitive proximal to distal order, within the right arm of linkage group VII, i.e., qa-1 qa-3 qa-4 qa-2 me-7. The significance of a definitive establishment of the gene order within the qa cluster for an understanding of the organization and mechanism of genetic regulation in this cluster is discussed.

Crosses, Genetic↗

Sacral agenesis. Neurologic and neuropathologic features.

The neurologic deficits in sacral agenesis involve motor function much more than sensory function, in a lumbosacral distribution; autonomic involvement, with neurogenic bladder, is variable. Relative sensory sparing may be due to the derivation of sensory nerves from neural cre, t tissue, which is uninvolved. An occult sacral meningomyelocele with ectopic neural tissue was found at necropsy in one of our patients. Primary amyoplasia may account for small but histologically normal muscles derived from the same somites as the aplastic vertebrae.

Abnormalities, Multiple↗

Purification and characterization of catabolic dehydroquinase, an enzyme in the inducible quinic acid catabolic pathway of Neurospora crassa.

Catabolic dehydroquinase which functions in the inducible quinic acid catabolic pathway in Neurospora crassa has been purified 8000-fold. The enzyme was purified by two methods. One used heat denaturation of contaminating proteins; the other used antibody affinity chromatography. The preparations obtained by these two methods were identical by all criteria. The purified enzyme is extremely resistant to thermal denaturation as well as denaturation 0y urea and guanidine hydrochloride at 25 degrees. It is irreversibly inactivated, although not efficiently dissociated, by sodium dodecyl sulfate and guanidine hydrochloride at 55 degrees. At pH 3.0, the enzyme is reversibly dissociated into inactive subunits. At high concentrations catabolic dehydroquinase aggregates into an inactive, high molecular weight complex. The native enzyme, which has a very high specific activity, has a molecular weight of approximately 220,000 and is composed of identical subunits of 8,000 to 12,000 molecular weight each. The native enzyme and the subunit are both asymmetric.

Amino Acids↗