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Fahrbach, M.

Publications and source records attributed to Fahrbach, M..

2 recordsLinked to original sources

Determining zygosity with multiplex Kompetitive Allele-Specific PCR (mxKASP) genotyping

We introduce multiplex Kompetitive Allele-Specific PCR (mxKASP): a modification of classical KASP genotyping that allows zygosity to be determined in diploid organisms. Rather than targeting a SNP associated with a single marker, mxKASP targets two non-homologous markers. We show proof of concept by applying mxKASP to the balanced lethal system in Triturus newts, in which individuals are known to possess either: (1) zero copies of the 1A version of chromosome 1 and two copies of the 1B version; (2) one copy of 1A and one copy of 1B; or (3) two copies of 1A and zero copies of 1B. mxKASP is successful in amplifying both a 1A and a 1B marker in a single reaction (if present), allowing the zygosity of individuals to be inferred. We independently confirm our mxKASP results with a multiplex PCR approach. We argue that mxKASP can be applied to rapidly and economically determine zygostity in diploid organisms, for a large number of samples at once.

molecular biology↗

Conserved gene content and unique phylogenetic history characterize the 'bloopergene' underlying Triturus' balanced lethal system

In a balanced lethal system, half the reproductive output succumbs. Triturus newts are the best-known example. Their chromosome 1 comes in two distinct versions and embryos carrying the same version twice experience developmental arrest. Those possessing two different versions survive, suggesting that each version carries something uniquely vital. With target capture we obtain over 7,000 nuclear DNA markers across the genus Triturus and all main lineages of Salamandridae (the family to which Triturus belongs) to investigate the evolutionary history of Triturus chromosome 1 versus other chromosomes. Dozens of genes are completely missing from either one or the other version of chromosome 1 in Triturus. Furthermore, the unique gene content of 1A versus 1B is remarkably similar across Triturus species, suggesting that the balanced lethal system evolved before Triturus radiated. The tree topology of chromosome 1 differs from the rest of the genome, presumably due to pervasive, ancient hybridization between Triturus ancestor and other newt lineages. Our findings accentuate the complex nature of Triturus chromosome 1 - the bloopergene driving the evolutionarily enigmatic balanced lethal system.

evolutionary biology↗