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Biomedical subjects

D L Neil

Publications and source records attributed to D L Neil.

13 recordsLinked to original sources

Repeat instability at human minisatellites arising from meiotic recombination.

Little is known about the role of meiotic recombination processes such as unequal crossover in driving instability at tandem repeat DNA. Methods have therefore been developed to detect meiotic crossovers within two different GC-rich minisatellite repeat arrays in humans, both in families and in sperm DNA. Both loci normally mutate in the germline by complex conversion-like transfer of repeats between alleles. Analysis shows that inter-allelic unequal crossovers also occur at both loci, although at low frequency, to yield simple recombinant repeat arrays with exchange of flanking markers. Equal crossovers between aligned alleles, resulting in recombinant alleles but without change in repeat copy number, also occur in sperm at a similar frequency to unequal crossovers. Both crossover and conversion show polarity in the repeat array and are co-suppressed in an allele showing unusual germline stability. This provides evidence that minisatellite conversion and crossover arise by a common mechanism, perhaps by alternative processing of a meiotic recombination initiation complex, and implies that minisatellite instability is a by-product of meiotic recombination in repeat DNA. While minisatellite recombination is infrequent, crossover rates indicate that the unstable end of a human minisatellite can act as a recombination warm-spot, even between sequence-heterologous alleles.

Crossing Over, Genetic

Human minisatellite mutation rate after the Chernobyl accident.

Germline mutation at human minisatellite loci has been studied among children born in heavily polluted areas of the Mogilev district of Belarus after the Chernobyl accident and in a control population. The frequency of mutation was found to be twice as high in the exposed families as in the control group. Mutation rate in the Mogilev families was correlated with the level of caesium-137 surface contamination, consistent with radiation induction of germline mutation.

Adult

Analysis of allelic structures at the D7S21 (MS31A) locus in the Japanese, using minisatellite variant repeat mapping by PCR (MVR-PCR).

To sample the diversity of allelic structures at the D7821 (MS31 A) locus in the Japanese, allele-specific minisatellite variant repeat mapping using polymerase chain reaction (MVR-PCR) was performed on genomic DNA from a number of Japanese individuals. Three polymorphic positions in the MS31A 5' flanking DNA were typed from 214 un related Japanese, and the distribution of haplotypes was analysed. Allele-specific MVR-PCR using primers that discriminate between different alleles at these polymorphic positions in heterozygous individuals, allows single alleles to be mapped from genomic DNA in approximately 80% of Japanese. 149 Japanese alleles have been mapped to date and all of them, except for two pairs of indistinguishable alleles, have different internal structures. More than half of the mapped alleles showed similar regions of internal structure to other alleles and were classified into groups on this basis.

Alleles

Mutation processes at human minisatellites.

Minisatellites provide one of the most experimentally tractable systems for studying tandem repeat instability in man. Analysis of mutation processes has been greatly aided by the development of single molecule methods for recovering de novo mutants, and of techniques for exploring allele structure in detail. Application of these approaches to man has shown that minisatellites do not primarily mutate by processes such as replication slippage and unequal crossover intrinsic to the tandem repeat array. Instead, germline repeat instability is largely regulated by cis-acting elements near the array and involves unexpectedly complex processes of gene conversion, of potential relevance to the biology of meiosis. These processes can be explored both in humans and, in principle, in transgenic mouse models of human repeat instability.

Alleles

Complex gene conversion events in germline mutation at human minisatellites.

Mutation at the human minisatellites MS32, MS205 and MS31A has been investigated by characterizing mutant alleles in pedigrees and in the case of MS32 by direct analysis of mutant molecules in single sperm. Most mutations at all three loci are polar, involving the preferential gain of a few repeat units at one end of the tandem repeat array. Incoming repeats can be derived from the same allele or the homologous chromosome, through they are frequently rearranged during mutation. Lack of exchange of flanking markers suggests the involvement of complex conversion-like events in the generation of mutant alleles. At MS32, high frequency mutation processes in sperm appear to be largely germline specific and to occur at a constant rate irrespective of allele size. Together with mutational polarity, this implies that germline instability is controlled by elements outside the tandem repeat array.

Alleles

Minisatellite variant repeat mapping: application to DNA typing and mutation analysis.

Most DNA typing systems assay allele length variation at tandemly repeated loci such as minisatellites and microsatellites. Allele length measurements are approximate, which impedes the use of such loci in forensic analysis and in studies of allelic variability at hypervariable loci. We now review progress in the development of alternative DNA typing systems based on allelic variation in the interspersion patterns of variant repeat units along minisatellite alleles. Minisatellite variant repeat mapping by PCR (MVR-PCR) not only provides a powerful new digital approach to DNA typing, but also for the first time allows investigation of the true level of allelic variability at minisatellite loci and of the mutational mechanisms that generate ultravariability.

Alleles

Allele-specific MVR-PCR analysis at minisatellite D1S8.

Minisatellite variant repeat mapping by the polymerase chain reaction (MVR-PCR) provides a digital approach to DNA typing of great potential use both in forensic medicine and, by mapping single alleles, for exploring allelic variability and mutation processes at minisatellites. The MVR haplotypes of single alleles can be determined either from physically separated alleles or by pedigree analysis of digital diploid codes generated from both alleles simultaneously. We now show that single alleles can be rapidly mapped from total genomic DNA using allele-specific PCR primers directed to polymorphic sites in the DNA flanking the minisatellite. This approach can also be used to dissect mixed DNA samples such as those often encountered in forensic DNA analysis.

Alleles

Digital DNA typing at a second hypervariable locus by minisatellite variant repeat mapping.

Minisatellite variant repeat unit mapping by PCR (MVR-PCR) assays the interspersion pattern of variant repeat units along minisatellite alleles. Mapping such internal variation in the highly polymorphic minisatellite MS31A (locus D7S21), reveals extreme levels of allelic variability, far in excess of that detectable by allele length analysis. Flanking base substitutional polymorphisms have enabled the 5' structure of large numbers of MS31A alleles to be derived from genomic DNA by allele-specific MVR-PCR. More than 100 alleles have now been mapped and all are different. Several alleles show related internal structures and some of these provide evidence of polarity in allelic variation reminiscent of that seen at two other hypervariable minisatellites, D1S8 (MS32) and D16S309 (MS205). We also describe the diploid digital coding of MS31A, including the simultaneous coding of MS31A and a second locus, MS32, by duplex MVR-PCR, which greatly enhances the potential forensic applications of this technique.

Alleles

Minisatellite variant repeat (MVR) mapping: analysis of 'null' repeat units at D1S8.

Minisatellite variant repeat mapping by PCR (MVR-PCR) is a new approach to studying variation in human DNA which analyses interspersion patterns of variant repeats within minisatellite arrays. MVR-PCR has been applied to the hypervariable human minisatellite D1S8 which contains two major classes of variant 29bp repeat units designated a-type and t-type. The MVR-PCR assay uses a- or t-type specific primers, together with an amplimer at a fixed site in the DNA flanking the minisatellite, to reveal the interspersion patterns of variant repeats along an allele. Extreme levels of variation are seen both in the internal structures of individual alleles and in the digital code generated from the two superimposed alleles in total genomic DNA. However, occasional repeat units fail to amplify in MVR-PCR, signifying the existence of further repeat sequence variants termed 'null' or O-type repeats. Although not significant in individual identification, correct genotyping of null repeats is important when using MVR digital codes in parentage analysis. We have therefore characterised these null repeats and show that most null repeats share a common variant repeat sequence. We discuss the possible origins of null repeats and their application to paternity testing and the analysis of minisatellite evolution.

Alleles

Minisatellite repeat coding as a digital approach to DNA typing.

Most DNA typing systems used in forensic and legal medicine assay allelic length variation at tandem repetitive DNA regions such as minisatellites. A simple alternative approach that displays patterns of variant repeat units along minisatellite alleles is described here. This produces DNA profiles as extraordinarily variable digital sequences appropriate for forensic investigations, including computer databasing, and for analysing allele diversity and the role of recombination in minisatellite instability.

Base Sequence

Structural instability of human tandemly repeated DNA sequences cloned in yeast artificial chromosome vectors.

The suitability of yeast artificial chromosome vectors (YACs) for cloning human Y chromosome tandemly repeated DNA sequences has been investigated. Clones containing DYZ3 or DYZ5 sequences were found in libraries at about the frequency anticipated on the basis of their abundance in the genome, but clones containing DYZ1 sequences were under-represented and the three clones examined contained junctions between DYZ1 and DYZ2. One DYZ3 clone was quite stable and had a long-range structure corresponding to genomic DNA. All other clones had long-range structures which either did not correspond to genomic DNA, or were too unstable to allow a simple comparison. The effects of the transformation process and host genotype on YAC structural stability were investigated. Gross structural rearrangements were often associated with re-transformation of yeast by a YAC. rad1-deficient yeast strains showed levels of instability similar to wild-type for all YAC clones tested. In rad52-deficient strains, DYZ5 containing YACs were as unstable as in the wild-type host, but DYZ1/DYZ2 or DYZ3 containing YACs were more stable. Thus the use of rad52 hosts for future library construction is recommended, but some sequences will still be unstable.

Chromosomes, Fungal