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47 results for “meiotic drive”

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dryad28/100

Data from: An assessment of the immune costs associated with meiotic drive chromosomes in Drosophila

Most organisms are constantly adapting to pathogens and parasites that exploit their host for their own benefit. Less studied, but perhaps more ubiquitous, are intragenomic parasites or selfish genetic elements. These include transposable elements, selfish B chromosomes and meiotic drivers that promote their own replication without regard to fitness effects on hosts. Therefore, intragenomic parasites are also a constant evolutionary pressure on hosts. Gamete-killing meiotic drive elements are often associated with large chromosomal inversions that reduce recombination between the drive and wildtype chromosomes. This reduced recombination is thought to reduce the efficacy of selection on the drive chromosome and allow for the accumulation of deleterious mutations. We tested whether gamete-killing meiotic drive chromosomes were associated with reduced immune defense against two bacterial pathogens in three species of Drosophila. We found little evidence of reduced immune defense in lines with meiotic drive. One line carrying the Drosophila melanogaster autosomal Segregation Distorter did show reduced defense, but we were unable to attribute that reduced defense to either genotype or immune gene expression differences. Our results suggest that though gamete-killing meiotic drive chromosomes likely accumulate deleterious mutations, those mutations do not result in reduced capacity for immune defense.

opencc-zeroAug 2019View details →
dryad28/100

Data from: Meiotic drive reduces egg-to-adult viability in stalk-eyed flies

A number of species are affected by sex ratio meiotic drive (SR), a selfish genetic element located on the X chromosome that causes dysfunction of Y-bearing sperm. SR is transmitted to up to 100% of offspring, causing extreme sex ratio bias. SR in several species is found in a stable polymorphism at a moderate frequency, suggesting there must be strong frequency-dependent selection resisting its spread. We investigate the effect of SR on female and male egg-to-adult viability in the Malaysian stalk-eyed fly, Teleopsis dalmanni. SR meiotic drive in this species is old, and appears to be broadly stable at a moderate (~20%) frequency. We use large-scale controlled crosses to estimate the strength of selection acting against SR in female and male carriers. We find that SR reduces the egg-to-adult viability of both sexes. In females, homozygous females experience greater reduction in viability (sf = 0.242) and the deleterious effects of SR are additive (h = 0.511). The male deficit in viability (sm = 0.214) is not different from that in homozygous females. The evidence does not support the expectation that deleterious side-effects of SR are recessive or sex-limited. We discuss how these reductions in egg-to-adult survival, as well as other forms of selection acting on SR, may maintain the SR polymorphism in this species.

opencc-zeroAug 2019View details →
dryad28/100

Data from: Meiotic drive changes sperm precedence patterns in house mice: potential for male alternative mating tactics

Background - With female multiple mating (polyandry), male-male competition extends to after copulation (sperm competition). Males respond to this selective pressure through physiological, morphological and behavioural adaptations. Sperm competitiveness is commonly decreased in heterozygote carriers of male meiotic drivers, selfish genetic elements that manipulate the production of gametes in males. This might give carriers an evolutionary incentive to reduce the risk of sperm competition. Here, we explore this possibility in house mice. Natural populations frequently harbour a well-characterised male driver (t haplotype), which is transmitted to 90% of heterozygous (+/t) males' offspring. Previous research demonstrated strong detrimental effects on sperm competitiveness, and suggested that +/t males are particularly disadvantaged against wild type males when first-to-mate. Low paternity success in the first-to-mate role is expected to favour male adaptations that decrease the risk of sperm competition by preventing female remating. Genotype-specific paternity patterns (sperm precedence) could lead to genetically determined alternative reproductive tactics that can spread through gene level selection. Here, we seek confirmation that +/t males are generally disadvantaged when first-to-mate and address whether males of different genotypes differ in reproductive tactics (copulatory and morphological) to maximise individual or driver fitness. Finally, we attempt to explain the mechanistic basis for alternative sperm precedence patterns in this species. Results - We confirmed that +/t males are weak sperm competitors when first to mate. When two +/t males competed, the second-to-mate was more successful, which contrasts with first male sperm precedence when wild type males competed. However, we found no differences between male genotypes in reproductive behaviour or morphology that were consistent with alternative reproductive tactics. Sperm of +/+ and +/t males differed with respect to in vitro sperm features. Premature hypermotility in +/t males' sperm can potentially explain why +/t males are very weak sperm competitors when first-to-mate. Conclusions - Our results demonstrate that meiotic drivers can have strong effects on sperm precedence patterns, and may provide a heritable basis for alternative reproductive tactics motivated by reduced sperm competitiveness. We discuss how experimental and evolutionary constraints may help explain why male genotypes did not show the predicted differences.

opencc-zeroDec 2015View details →
dryad28/100

Data from: X-chromosome meiotic drive in Drosophila simulans: a QTL approach reveals the complex polygenic determinism of Paris drive suppression

Meiotic drivers are selfish genetic elements that promote their own transmission into the gametes, which results in intragenomic conflicts. In the Paris sex-ratio system of Drosophila simulans, drivers located on the X chromosome prevent the segregation of the heterochromatic Y chromosome during meiosis II, and hence the production of Y-bearing sperm. The resulting sex-ratio bias strongly impacts population dynamics and evolution. Natural selection, which tends to restore an equal sex ratio, favors the emergence of resistant Y chromosomes and autosomal suppressors. This is the case in the Paris sex-ratio system where the drivers became cryptic in most of the natural populations of D. simulans. Here, we used a Quantitative Trait Locus (QTL) mapping approach based on the analysis of 152 highly recombinant inbred lines (RILs) to investigate the genetic determinism of autosomal suppression. The RILs were derived from an advanced intercross between two parental lines, one showing complete autosomal suppression while the other one was sensitive to drive. The confrontation of RIL autosomes with a reference XSR chromosome allowed us to identify two QTLs on chromosome 2 and three on chromosome 3, with strong epistatic interactions. Our findings highlight the multiplicity of actors involved in this intragenomic battle over the sex ratio.

opencc-zeroDec 2017View details →
dryad28/100

Data from: Coevolutionary dynamics of polyandry and sex-linked meiotic drive

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publicDec 2014View details →
dryad28/100

Data from: Maintenance of fertility in the face of meiotic drive

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publicSep 2020View details →
dryad28/100

Data from: An assessment of the immune costs associated with meiotic drive chromosomes in Drosophila

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publicAug 2019View details →
dryad28/100

Data from: Does meiotic drive alter male mate preference?

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publicSep 2019View details →
dryad28/100

Data from: The organization and evolution of the Responder satellite in species of the Drosophila melanogaster group: dynamic evolution of a target of meiotic drive

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publicDec 2014View details →
dryad28/100

Data from: X-chromosome meiotic drive in Drosophila simulans: a QTL approach reveals the complex polygenic determinism of Paris drive suppression

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publicOct 2018View details →
dryad28/100

Data from: The contribution of female meiotic drive to the evolution of neo-sex chromosomes

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publicApr 2012View details →
dryad28/100

Data from: Meiotic drive influences the outcome of sexually antagonistic selection at a linked locus

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publicAug 2014View details →
dryad28/100

Data from: Ejaculate sperm number compensation in stalk-eyed flies carrying a selfish meiotic drive element

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publicNov 2018View details →
dryad28/100

Data from: Meiotic drive reduces egg-to-adult viability in stalk-eyed flies

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publicAug 2019View details →
dryad28/100

Data from: Meiotic drive changes sperm precedence patterns in house mice: potential for male alternative mating tactics

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publicJun 2016View details →
dryad28/100

Data from: Meiotic drive shapes rates of karyotype evolution in mammals

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publicJan 2019View details →
dryad28/100

Data from: Meiotic drive does not cause condition-dependent reduction of the sexual ornament in stalk-eyed flies

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publicFeb 2021View details →
geo24/100

Transcriptional Metabolic Reprograming Drives Meiotic Fate Decision in Mammalian Germ Cells

GEO Series GSE211390. Mus musculus. 4 samples. Type: Expression profiling by high throughput sequencing.

openGEO-OpenOct 2023View details →
geo24/100

Genome Rearrangements and Pervasive Meiotic Drive Cause Hybrid Infertility in Fission Yeast

GEO Series GSE57039. Schizosaccharomyces pombe; Schizosaccharomyces kambucha (nom. inval.). 1 samples. Type: Expression profiling by array.

openGEO-OpenMay 2014View details →
geo24/100

Two pathways drive meiotic chromosome axis assembly in Saccharomyces cerevisiae

GEO Series GSE156040. Saccharomyces cerevisiae. 161 samples. Type: Expression profiling by high throughput sequencing; Genome binding/occupancy profiling by high throughput sequencing.

openGEO-OpenApr 2022View details →

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