Mats Nilsson

Personal Home Page

http://www.ucg.uu.se/MNilsson.html

Articles in Scholarly Journals [Incomplete List]

  1. Rolling Circle Amplification and Circle-to-circle Amplification of a Specific Gene Integrated with Electrophoretic Analysis on a Single Chip
    Analytical Chemistry, vol. 80, no. 7, pp. 2483–2490, 2008
  2. Sensitive Molecular Diagnostics Using Volume-Amplified Magnetic Nanobeads
    Nano Letters, vol. 8, no. 3, pp. 816–821, 2008
  3. A dual-tag microarray platform for high-performance nucleic acid and protein analyses
    Nucleic Acids Research, vol. 36, no. 8, pp. e45–e45, 2008
  4. Simultaneous Genotyping of All Hemagglutinin and Neuraminidase Subtypes of Avian Influenza Viruses by Use of Padlock Probes
    Journal of Clinical Microbiology, vol. 46, no. 5, pp. 1747–1751, 2008
  5. MLGA a rapid and cost-efficient assay for gene copy-number analysis
    Nucleic Acids Research, vol. 35, no. 17, pp. e115–e115, 2007
  6. Multigene amplification and massively parallel sequencing for cancer mutation discovery
    Proceedings of the National Academy of Sciences, vol. 104, no. 22, pp. 9387–9392, 2007
  7. Duplication of FGF3, FGF4, FGF19 and ORAOV1 causes hair ridge and predisposition to dermoid sinus in Ridgeback dogs
    Nature Genetics, vol. 39, no. 11, Article ID ng.2007.4, 2 pages, 2007
  8. Homogeneous amplified single-molecule detection: Characterization of key parameters
    Analytical Biochemistry, vol. 368, no. 2, pp. 230–238, 2007
  9. Microarray-based molecular detection of foot-and-mouth disease, vesicular stomatitis and swine vesicular disease viruses, using padlock probes
    Journal of Virological Methods, vol. 143, no. 2, pp. 200–206, 2007
  10. Microchip Electrophoresis for Detection of Circle-to-Circle Amplification Products towards Sensitive and Rapid DNA Analysis
    Chemistry Letters, vol. 36, no. 3, pp. 396–397, 2007
  11. Analyzing genes using closing and replicating circles
    Trends in Biotechnology, vol. 24, no. 2, pp. 83–88, 2006
  12. Detection of Alu sequences and mtDNA in comets using padlock probes
    Mutagenesis, vol. 21, no. 4, pp. 243–247, 2006
  13. Digital quantification using amplified single-molecule detection
    Nature Methods, vol. 3, no. 9, Article ID nmeth916, 2 pages, 2006
  14. BMC Bioinformatics, vol. 6, no. 1, p. 229, 2005
  15. Multiplex amplification enabled by selective circularization of large sets of genomic DNA fragments
    Nucleic Acids Research, vol. 33, no. 8, pp. e71–e71, 2005
  16. PieceMaker: selection of DNA fragments for selector-guided multiplex amplification
    Nucleic Acids Research, vol. 33, no. 8, pp. e72–e72, 2005
  17. Analytical Chemistry, vol. 77, no. 22, pp. 7122–7130, 2005
  18. Analytical Chemistry, vol. 76, no. 2, pp. 495–498, 2004
  19. In situ genotyping individual DNA molecules by target-primed rolling-circle amplification of padlock probes
    Nature Methods, vol. 1, no. 3, Article ID nmeth723, 5 pages, 2004
  20. Molecular tools for a molecular medicine: analyzing genes, transcripts and proteins using padlock and proximity probes
    Journal of Molecular Recognition, vol. 17, no. 3, pp. 194–197, 2004
  21. Circle-to-circle amplification for precise and sensitive DNA analysis
    Proceedings of the National Academy of Sciences, vol. 101, no. 13, pp. 4548–4553, 2004
  22. Multiplexed genotyping with sequence-tagged molecular inversion probes
    Nature Biotechnology, vol. 21, no. 6, Article ID nbt821, 5 pages, 2003
  23. PCR-generated padlock probes distinguish homologous chromosomes through quantitative fluorescence analysis
    European Journal of Human Genetics, vol. 11, no. 5, Article ID 5200966, 6 pages, 2003
  24. Padlock and proximity probes forin situ and array-based analyses: tools for the post-genomic era
    Comparative and Functional Genomics, vol. 4, no. 5, pp. 525–530, 2003
  25. Lateral-flow and up-converting phosphor reporters to detect single-stranded nucleic acids in a sandwich-hybridization assay
    Analytical Biochemistry, vol. 312, no. 2, pp. 191–200, 2003
  26. Making ends meet in genetic analysis using padlock probes
    Human Mutation, vol. 19, no. 4, pp. 410–415, 2002
  27. More keys to padlock probes: mechanisms for high-throughput nucleic acid analysis
    Current Opinion in Biotechnology, vol. 12, no. 1, pp. 11–15, 2001
  28. The level of the mitochondrial mutation A3243G decreases upon ageing in epithelial cells from individuals with diabetes and deafness
    European Journal of Human Genetics, vol. 9, no. 12, Article ID 5200742, 4 pages, 2001
  29. RNA-templated DNA ligation for transcript analysis
    Nucleic Acids Research, vol. 29, no. 2, pp. 578–581, 2001
  30. Nature Biotechnology, vol. 18, no. 7, pp. 791–793, 2000
  31. Inversion of in situ synthesized oligonucleotides: improved reagents for hybridization and primer extension in DNA microarrays
    Nucleic Acids Research, vol. 27, no. 24, pp. 4710–4714, 1999
  32. Signal amplification of padlock probes by rolling circle replication
    Nucleic Acids Research, vol. 26, no. 22, pp. 5073–5078, 1998
  33. Locked on Target: Strategies for Future Gene Diagnostics
    Annals of Medicine, vol. 29, no. 6, pp. 585–590, 1997
  34. Synthesis of full-length oligonucleotides: cleavage of apurinic molecules on a novel support
    Nucleic Acids Research, vol. 24, no. 23, pp. 4632–4638, 1996
  35. Detecting Genes with Ligases
    Methods, vol. 9, no. 1, pp. 84–90, 1996
  36. Amelogenin signal peptide mutation: correlation between mutations in the amelogenin gene (AMGX) and manifestations of X-linked amelogenesis imperfecta
    Genomics, vol. 26, no. 1, pp. 159–162, 1995