Minisatellite variant repeat mapping: application to DNA typing and mutation analysis.
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A J Jeffreys | K Tamaki | M. Jobling | A. Jeffreys | J. Armour | A. MacLeod | D. Monckton | M. Allen | D G Monckton | K. Tamaki | D. L. Neil | A Collick | D L Neil | A. Collick | J A Armour | A MacLeod | M Allen | M Jobling
[1] A. Jeffreys,et al. Minisatellite variant repeat (MVR) mapping: analysis of 'null' repeat units at D1S8. , 1992, Human molecular genetics.
[2] H. Yamazaki,et al. A 35-kDa protein binding to a cytosine-rich strand of hypervariable minisatellite DNA. , 1992, The Journal of biological chemistry.
[3] A. Jeffreys,et al. Minisatellite binding protein Msbp-1 is a sequence-specific single-stranded DNA-binding protein. , 1991, Nucleic acids research.
[4] A. Jeffreys,et al. Minisatellite repeat coding as a digital approach to DNA typing , 1991, Nature.
[5] C. Caskey,et al. DNA typing and genetic mapping with trimeric and tetrameric tandem repeats. , 1991, American journal of human genetics.
[6] A. Jeffreys,et al. Minisatellite "isoallele" discrimination in pseudohomozygotes by single molecule PCR and variant repeat mapping. , 1991, Genomics.
[7] W. P. Wahls,et al. Two hypervariable minisatellite DNA binding proteins. , 1991, Nucleic acids research.
[8] B Budowle,et al. Analysis of the VNTR locus D1S80 by the PCR followed by high-resolution PAGE. , 1991, American journal of human genetics.
[9] A. Jeffreys,et al. Principles and recent advances in human DNA fingerprinting. , 1991, EXS.
[10] J. Silver,et al. The 3' ends of alu repeats are highly polymorphic. , 1990, Nucleic acids research.
[11] J. Weber. Informativeness of human (dC-dA)n.(dG-dT)n polymorphisms. , 1990, Genomics.
[12] A. Jeffreys,et al. Detection of a novel minisatellite-specific DNA-binding protein. , 1990, Nucleic acids research.
[13] Victoria Wilson,et al. Repeat unit sequence variation in minisatellites: A novel source of DNA polymorphism for studying variation and mutation by single molecule analysis , 1990, Cell.
[14] M. Dempster,et al. Human telomeres contain at least three types of G-rich repeat distributed non-randomly. , 1989, Nucleic acids research.
[15] J. Weber,et al. Abundant class of human DNA polymorphisms which can be typed using the polymerase chain reaction. , 1989, American journal of human genetics.
[16] M. Litt,et al. A hypervariable microsatellite revealed by in vitro amplification of a dinucleotide repeat within the cardiac muscle actin gene. , 1989, American journal of human genetics.
[17] A. Jeffreys,et al. Amplification of human minisatellites by the polymerase chain reaction: towards DNA fingerprinting of single cells. , 1988, Nucleic acids research.
[18] A. Jeffreys,et al. Characterization of a panel of highly variable minisatellites cloned from human DNA , 1987, Annals of human genetics.
[19] Y. Nakamura,et al. Characterization of a human 'midisatellite' sequence. , 1987, Nucleic acids research.
[20] Huntington F. Willard,et al. Hierarchical order in chromosome-specific human alpha satellite DNA , 1987 .
[21] J. Clegg,et al. Molecular characterisation of a hypervariable region downstream of the human alpha‐globin gene cluster. , 1986, The EMBO journal.
[22] Swee Lay Thein,et al. Hypervariable ‘minisatellite’ regions in human DNA , 1985, Nature.
[23] L. Aagaard,et al. Analysis of a 1963-bp polymorphic region flanking the human insulin gene. , 1984, Gene.
[24] E. Chen,et al. Complete nucleotide sequences of the T24 human bladder carcinoma oncogene and its normal homologue , 1983, Nature.
[25] W. Ewens. The sampling theory of selectively neutral alleles. , 1972, Theoretical population biology.