Natural Wolbachia Infections in the Drosophila yakuba Species Complex Do Not Induce Cytoplasmic Incompatibility but Fully Rescue the wRi Modification
Open Access
- 1 June 2004
- journal article
- Published by Oxford University Press (OUP) in Genetics
- Vol. 167 (2) , 827-834
- https://doi.org/10.1534/genetics.103.015990
Abstract
In apomictic dandelions, Taraxacum officinale, unreduced megaspores are formed via a modified meiotic division (diplospory). The genetic basis of diplospory was investigated in a triploid (3x = 24) mapping population of 61 individuals that segregated ∼1:1 for diplospory and meiotic reduction. This population was created by crossing a sexual diploid (2x = 16) with a tetraploid diplosporous pollen donor (4x = 32) that was derived from a triploid apomict. Six different inheritance models for diplospory were tested. The segregation ratio and the tight association with specific alleles at the microsatellite loci MSTA53 and MSTA78 strongly suggest that diplospory is controlled by a dominant allele D on a locus, which we have named DIPLOSPOROUS (DIP). Diplosporous plants have a simplex genotype, Ddd or Dddd. MSTA53 and MSTA78 were weakly linked to the 18S-25S rDNA locus. The D-linked allele of MSTA78 was absent in a hypotriploid (2n = 3x – 1) that also lacked one of the satellite chromosomes. Together these results suggest that DIP is located on the satellite chromosome. DIP is female specific, as unreduced gametes are not formed during male meiosis. Furthermore, DIP does not affect parthenogenesis, implying that several independently segregating genes control apomixis in dandelions.Keywords
This publication has 55 references indexed in Scilit:
- What maintains noncytoplasmic incompatibility inducing Wolbachia in their hosts: a case study from a natural Drosophila yakuba populationJournal of Evolutionary Biology, 2004
- Nine relatives from one African ancestor: population biology and evolution of the Drosophila melanogaster subgroup speciesPublished by Cambridge University Press (CUP) ,2004
- EVOLUTION OF WOLBACHIA-INDUCED CYTOPLASMIC INCOMPATIBILITY IN DROSOPHILA SIMULANS AND D. SECHELLIAEvolution, 2002
- Role of Delayed Nuclear Envelope Breakdown and Mitosis in Wolbachia -Induced Cytoplasmic IncompatibilityScience, 2002
- EXPRESSION OF CYTOPLASMIC INCOMPATIBILITY IN DROSOPHILA SIMULANS AND ITS IMPACT ON INFECTION FREQUENCIES AND DISTRIBUTION OF WOLBACHIA PIPIENTISEvolution, 2000
- Evolutionary novelties in islands:Drosophila santomea, a newmelanogastersister species from São ToméProceedings Of The Royal Society B-Biological Sciences, 2000
- Wolbachia Pipientis: Microbial Manipulator of Arthropod ReproductionAnnual Review of Microbiology, 1999
- Molecular identification ofWolbachia, the agent of cytoplasmic incompatibility inDrosophila simulans, and variability in relation with host mitochondrial typesProceedings Of The Royal Society B-Biological Sciences, 1992
- Partial cytoplasmic incompatibility between two Australian populations of Drosophila melanogasterEntomologia Experimentalis et Applicata, 1988
- The mitochondrial DNA molecule ofDrosophila yakuba: Nucleotide sequence, gene organization, and genetic codeJournal of Molecular Evolution, 1985