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by qwen3.7-flash, 2026-09-10
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This study utilizes a sequential CRISPR/Cas9 strategy to create precise deletion and expansion variants of the Responder satellite DNA array in Drosophila melanogaster. The researchers examined how these specific structural changes influenced sensitivity to the Segregation Distorter meiotic driver, which causes sperm killing during male meiosis. Results indicated that sensitivity to this drive scales directly with Responder copy number, establishing a functional link between satDNA abundance and meiotic drive outcomes. The paper does not explicitly discuss endometriosis or adenomyosis; it was included in the corpus via a keyword match in the upstream search index.
Abstract
Eukaryotic genomes are abundant in satellite DNA (satDNA): large blocks of tandemly-repeated sequences that accumulate in heterochromatic genome regions. SatDNAs are dynamic in their genomic location and abundance across species. Some satDNAs overlap essential genome regions such as centromeres and telomeres, but even pericentromeric satDNA can have effects on phenotypes, raising questions about their functional significance. However, it remains unclear whether these effects depend on satDNA sequence, copy number, higher-order structural organization, or genomic context. The highly repetitive nature of satDNA arrays has long hindered detailed genomic and genetic analyses. Recent advances in long-read sequencing now facilitate both the detailed characterization of satDNA structure and the development of more targeted approaches to genetic analysis. Here we present a sequential CRISPR/Cas9-based strategy to make mutations in satDNA arrays and demonstrate its utility using an autosomal pericentromeric satDNA in Drosophila melanogaster called Responder (Rsp). Rsp is the target of a sperm-killing male meiotic driver, Segregation Distorter ( SD ), where sensitivity to sperm killing positively correlates with Rsp copy number. Using our CRISPR/Cas9 approach, we generated an allelic series of Rsp deletion and expansion variants in two genetic backgrounds and examined their effects on spermatogenesis. Our approach produced precise satDNA variants efficiently, with minimal detectable off-target effects. The resulting mutations affect sensitivity to SD that scale with Rsp copy number. This work establishes a new framework for experimentally dissecting satDNA function and provides insights into the evolutionary and functional roles of satDNA in genome organization.
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Abstract
Eukaryotic genomes are abundant in satellite DNA (satDNA): large blocks of tandemly-repeated sequences that accumulate in heterochromatic genome regions. SatDNAs are dynamic in their genomic location and abundance across species. Some satDNAs overlap essential genome regions such as centromeres and telomeres, but even pericentromeric satDNA can have effects on phenotypes, raising questions about their functional significance. However, it remains unclear whether these effects depend on satDNA sequence, copy number, higher-order structural organization, or genomic context. The highly repetitive nature of satDNA arrays has long hindered detailed genomic and genetic analyses. Recent advances in long-read sequencing now facilitate both the detailed characterization of satDNA structure and the development of more targeted approaches to genetic analysis. Here we present a sequential CRISPR/Cas9-based strategy to make mutations in satDNA arrays and demonstrate its utility using an autosomal pericentromeric satDNA in Drosophila melanogaster called Responder (Rsp). Rsp is the target of a sperm-killing male meiotic driver, Segregation Distorter (SD), where sensitivity to sperm killing positively correlates with Rsp copy number. Using our CRISPR/Cas9 approach, we generated an allelic series of Rsp deletion and expansion variants in two genetic backgrounds and examined their effects on spermatogenesis. Our approach produced precise satDNA variants efficiently, with minimal detectable off-target effects. The resulting mutations affect sensitivity to SD that scale with Rsp copy number. This work establishes a new framework for experimentally dissecting satDNA function and provides insights into the evolutionary and functional roles of satDNA in genome organization.
Competing Interest Statement
The authors have declared no competing interest.
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