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Biomedical subjects

N C Cross

Publications and source records attributed to N C Cross.

113 records · Page 7Linked to original sources

Catalytic deficiency of human aldolase B in hereditary fructose intolerance caused by a common missense mutation.

Hereditary fructose intolerance (HFI) is a human autosomal recessive disease caused by a deficiency of aldolase B that results in an inability to metabolize fructose and related sugars. We report here the first identification of a molecular lesion in the aldolase B gene of an affected individual whose defective protein has previously been characterized. The mutation is a G----C transversion in exon 5 that creates a new recognition site for the restriction enzyme Ahall and results in an amino acid substitution (Ala----Pro) at position 149 of the protein within a region critical for substrate binding. Utilizing this novel restriction site and the polymerase chain reaction, the patient was shown to be homozygous for the mutation. Three other HFI patients from pedigrees unrelated to this individual were found to have the same mutation: two were homozygous and one was heterozygous. We suggest that this genetic lesion is a prevailing cause of hereditary fructose intolerance.

Alleles↗

A novel arrangement of sequence elements surrounding the rDNA promoter and its spacer duplications in tsetse species.

Variation in organization and sequence of the rDNA of six species of tsetse fly (Glossina) has been investigated. Several novel tsetse-specific features have been uncovered. Like many other species the spacer is composed of subrepeats, which in some species contain duplications of the true promoter at the spacer-ETS boundary. In tsetse, however, the first 90 base-pairs of the external transcribed spacer (ETS) (that is, +1 to +90 after transcription initiation) is the 3' end of the last subrepeat. The absence of a "unique" region between the last subrepeat and the ETS suggests that the tsetse rDNA unit may consist of multiple true promoters, that is there is no single ETS boundary. Furthermore, interspecific comparisons show that the 90 base-pair region is part of a conserved 202 base-pair region, consisting of 72 base-pairs upstream from the initiation site and a further 40 base-pairs downstream, which is shared by all promoters other than the last. In genera other than tsetse, subrepeat lengths between species are generally similar; in tsetse they differ due to (1) variation in copy-number of the subsubrepeat motif A9T6CAG, and (2) the presence of large regions flanked by direct simple repeats such as GA5 or TGGTCTC. Slippage-like mechanisms are probably responsible for (1), and recombination and subsequent excision involving the direct repeats for (2). Different structural and sequence variants are seen to be homogenized in the family and fixed in each species, reflecting continual unequal crossing-over. However, notwithstanding this process of differentiation, the available comparisons also reveal that there are two small conserved regions between Glossina and Drosophila: one is part of the promoter and the other is an ETS processing site. Such intergeneric and interspecific differences are discussed in relation to the problem of the maintenance of several essential functions within the rDNA repeating unit despite the continual differentiation of the unit into novel arrangements.

Animals↗

Tsetse fly rDNA: an analysis of structure and sequence.

A genomic library of Glossina morsitans morsitans (tsetse fly) has been constructed in the phage vector EMBL 4 and a complete rDNA unit isolated by using a D. melanogaster rDNA clone as a probe. The overall organisation is typical of higher eukaryotes, including an intergenic spacer consisting of a subrepeating structure. Atypically, however, the 45S precursor RNA promoter was shown to lie within the last subrepeat by S1 mapping; i.e. the last subrepeat extends 90 bp into the ETS. The sequence of the spacer subrepeats, the ETS and the first 151 nucleotides of the 18S gene was determined. Comparisons with the corresponding regions of other higher eukaryotes, including insects shows that the ETS has completely diverged, raising questions concerning their functional significance and evolutionary retention; depending on the method of alignment, only two short regions of reasonable homology are shared with Drosophila species: a stretch of nucleotides around the transcription initiation site, and AACATA at the NTS-18S gene junction; and the functionally important G at -16, conserved in all other examined species, is displaced no matter what method of alignment is used. These and other features reflect continual processes of change in the rDNA family to which the several functions of the repeating unit need to adjust.

Animals↗