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Evolution of the recombination regulator PRDM9 in minke whales
Elena Damm1, Kristian K Ullrich1, William B Amos2
1Department Evolutionary Genetics, Research Group Meiotic Recombination and Genome Instability, Max Planck Institute for Evolutionary Biology, August-Thienemann Str. 2, D-24306, Plön, Germany.
Background:
PRDM9 is a key regulator of meiotic recombination in most metazoans, responsible for reshuffling parental genomes. During meiosis, the PRDM9 protein recognizes and binds specific target motifs via its array of C2H2 zinc-fingers encoded by a rapidly evolving minisatellite. The gene coding for PRDM9 is the only speciation gene identified in vertebrates to date and shows high variation, particularly in the DNA-recognizing positions of the zinc-finger array, within and between species. Across all vertebrate genomes studied for PRDM9 evolution, only one genome lacks variability between repeat types - that of the North Pacific minke whale. This study aims to understand the evolution and diversity of Prdm9 in minke whales, which display the most unusual genome reference allele of Prdm9 so far discovered in mammals.
Results:
Minke whales possess all the features characteristic of PRDM9-directed recombination, including complete KRAB, SSXRD and SET domains and a rapidly evolving array of C2H2-type-Zincfingers (ZnF) with evidence of rapid evolution, particularly at DNA-recognizing positions that evolve under positive diversifying selection. Seventeen novel PRDM9 variants were identified within the Antarctic minke whale species, plus a single distinct PRDM9 variant in Common minke whales - shared across North Atlantic and North Pacific minke whale subspecies boundaries.
Conclusion:
The PRDM9 ZnF array evolves rapidly, in minke whales, with at least one DNA-recognizing position under positive selection. Extensive PRDM9 diversity is observed, particularly in the Antarctic in minke whales. Common minke whales shared a specific Prdm9 allele across subspecies boundaries, suggesting incomplete speciation by the mechanisms associated with PRDM9 hybrid sterility.
Insights
Minke whales exhibit rapid evolution in their PRDM9 gene, crucial for genome shuffling during reproduction. Extensive PRDM9 diversity was found, particularly in Antarctic minke whales, suggesting ongoing speciation processes.
Area of Science:
- Genetics
- Evolutionary Biology
- Reproductive Biology
Background:
- PRDM9 is a key regulator of meiotic recombination and genome shuffling in most metazoans.
- Its rapidly evolving zinc-finger array recognizes specific DNA motifs, driving genetic diversity.
- PRDM9 is the only known vertebrate speciation gene, exhibiting high interspecies variation.
Purpose of the Study:
- To investigate the evolution and diversity of the Prdm9 gene in minke whales.
- To understand the unusual Prdm9 genome reference allele found in North Pacific minke whales.
Main Methods:
- Analysis of PRDM9 gene structure and sequence variation in minke whale populations.
- Identification of novel PRDM9 variants and assessment of evolutionary pressures.
Main Results:
- Minke whales possess functional PRDM9 with a rapidly evolving zinc-finger array, including DNA-recognizing positions under positive selection.
- Seventeen novel PRDM9 variants were identified in Antarctic minke whales.
- A single PRDM9 variant was found across Common minke whale subspecies, indicating shared ancestry.
Conclusions:
- The PRDM9 zinc-finger array evolves rapidly in minke whales, with evidence of positive selection.
- Significant PRDM9 diversity exists, especially in Antarctic minke whales.
- Shared PRDM9 alleles across Common minke whale subspecies suggest incomplete speciation related to PRDM9-mediated hybrid sterility.
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