PubMed Health⌕ Search

Biomedical subjects

K E Bendall

Publications and source records attributed to K E Bendall.

4 recordsLinked to original sources

Variable levels of a heteroplasmic point mutation in individual hair roots.

During direct sequencing of the first hypervariable segment of the human mitochondrial control region, we identified one individual with a heteroplasmic point mutation at nt 16,256. We used primer extension to analyze the proportions of each mitochondrial haplotype in peripheral blood, buccal cells, and single hair roots from this individual and from eight members of his maternal lineage. Significant levels of heteroplasmy were found in only three individuals, and, in these cases, the proportions of each haplotype were similar in both blood and buccal cells. From the changes in mitochondrial haplotypes within mother-offspring pairs, we calculated that the most likely size of a mitochondrial bottleneck during development was 1-27 segregating units. However, highly variable levels of heteroplasmy were found in single hair roots, even among roots from the same individual. We analyzed a large number of hair roots from one individual and found that the proportion of one haplotype was within a range of 9% to > 99% in different roots. Roots originating from within a small patch of skin had haplotype proportions as variable as those from different areas of skin.

DNA, Mitochondrial↗

Heteroplasmic point mutations in the human mtDNA control region.

As part of an investigation of the fixation mechanisms of mtDNA mutations in humans, we sequenced the first hypervariable segment of the control region in 180 twin pairs and found evidence of site heteroplasmy in 4 pairs. Significant levels of two mitochondrial haplotypes differing by a single point mutation were found in two MZ pairs, and within each pair, both members had similar levels of heteroplasmy. Two DZ pairs were found in which the predominant mitochondrial haplotype differed within the pair. We measured proportions of mitochondrial haplotypes within two twin pairs and their maternal relatives, using primer extension. In both maternal lineages, most family members were heteroplasmic, and the proportions of each genotype varied widely in different individuals. We used the changes in haplotype proportions within mother-offspring pairs to calculate the size range of potential bottlenecks in mitochondrial numbers occurring during development of the offspring. In most individuals, the most likely effective bottleneck sizes ranged from 3 to 20 segregating units, though in two individuals a small bottleneck was very unlikely and there was no upper limit on its possible size. We also used the data from this study, together with unpublished data from other populations, to estimate the frequency of site heteroplasmy in normal human populations. From this, we calculated that the rate of mutation and fixation in the first hypervariable segment of the human mtDNA control region is between 1.2 x 10(-6) and 2.7 x 10(-5) per site per generation. This range is in good agreement with published estimates calculated by other methods.

DNA, Mitochondrial↗

Length heteroplasmy in the first hypervariable segment of the human mtDNA control region.

The first hypervariable segment of the human mtDNA control region contains a homopolymeric tract of cytosines between nt 16184 and 16193, interrupted at position 16189 by a thymine, according to the Cambridge reference sequence. A variant commonly found in population screening is a T-to-C transition at nt 16189, resulting in an uninterrupted homopolymeric tract. Direct sequencing of individuals with this variant produces a characteristic blurred sequence in nucleotides beyond the tract. Sequencing clones from these individuals revealed that this is caused by high levels of length heteroplasmy in the homopolymeric tract and low levels of length heteroplasmy in the four adenines following the tract. We have developed a rapid method involving densitometry of sequencing gels to quantify the relative proportions of different length variants present in an individual. We have used this to study the proportions of length variants in individuals from three twin pairs and two maternal lineages. While unrelated individuals usually have different proportions of length variants, all maternally related individuals studied have the same proportions, even if they are only distantly related. It is not obvious how identical heteroplasmic profiles are maintained in maternally related individuals, but some possible mechanisms are suggested.

Base Sequence↗