PubMed HealthSearch

Biomedical subjects

H Lamb

Publications and source records attributed to H Lamb.

6 recordsLinked to original sources

Genetic regulation of the quinic acid utilization (QUT) gene cluster in Aspergillus nidulans.

A large number of quinic acid non-utilizing qut mutants of Aspergillus nidulans deficient in the induction of all three quinic acid specific enzymes have been analysed. One class the qutD mutants, are all recessive and are non-inducible at pH 6.5 due to inferred deficiency in a quinate ion permease. Two regulatory genes have been identified. The QUTA gene encodes an activator protein since most qutA mutants are recessive and non-inducible although a few fully dominant mutants have been found. The QUTR gene encodes a repressor protein since recessive mutations are constitutive for all three enzyme activities. Rare dominant non-inducible mutants which revert readily to yield a high proportion of constitutive strains are inferred to be qutR mutants defective in binding the inducer. The gene cluster has been mapped in the right arm of chromosome VIII in the order: centromere - greater than 50 map units - ornB - 12 map units - qutC (dehydratase)-0.8 map units-qutD (permease), qutB (dehydrogenase), qutE (dehydroquinase), qutA (activator)-4.4 map units - qutR (repressor)-20 map units - galG. This organization differs from that of the qa gene cluster in Neurospora crassa, particularly in the displacement of qutC and qutR.

Aspergillus nidulans

Identification and isolation of a putative permease gene in the quinic acid utilization (QUT) gene cluster of Aspergillus nidulans.

Mutations in the qutD gene of Aspergillus nidulans cause the loss of ability to grow upon quinic acid as sole carbon source in media at normal pH 6.5 and failure to induce three enzyme activities specifically required for metabolism to protochatechuic acid. All 9 qutD mutants recovered are recessive and have been found to be pH sensitive, growing strongly on quinic acid media at pH 3.5 and producing significant induced enzyme activities. These properties are consistent with the hypothesis that the QUTD gene encodes an essential component of a permease required for transport of quinate ion into mycelium at pH 6.5. The QUTD gene has been located within the cloned QUT gene cluster of A. nidulans by transformation of qutD mutants with fragments of cloned sequences from phage lambda-Q1. The QUTD locus is in a region distinct from other QUT genes and which contains sequences homologous to the QA-Y gene in the corresponding QA gene cluster of Neurospora crassa.

Cloning, Molecular