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侵入植物への宿主シフトは,動物ハイブリッドの急速な種化を引き起こします
Dietmar Schwarz1, Benjamin M Matta, Nicole L Shakir-Botteri
1Department of Entomology, The Pennsylvania State University, 501 ASI Building, University Park, Pennsylvania 16803, USA. dxs332@psu.edu
Nature
|July 29, 2005
まとめ
染色体変化のない希少な動物の種化経路であるホモプロイドハイブリッド種化がフルーツフライで実証されています. 新しい宿主資源と結びついたハイブリッド化は,生殖分離のための強力なメカニズムを提供します.
科学分野:
- 進化生物学の進化生物学について
- 遺伝学 遺伝学とは
- 動物学 動物学
背景:
- 仕様化は,典型的には,ハイブリッド化ではなく,系統分裂を伴う.
- クロモソームの変化なしにハイブリッド化によって新しい種を形成するホモプロイドのハイブリッド種化は,動物では珍しいと考えられています.
研究 の 目的:
- 動物におけるホモプロイドハイブリッドの種化の最初の明確なケースを調査する.
- 動物のハイブリッド種の発生における宿主シフトの役割を調査する.
主な方法:
- 分子および染色体証拠分析. 分子および染色体証拠分析.
- ホスト固有の動物分類 (テフリチド果) を調査する.
主要な成果:
- ハイブリダイゼーションが導出体二倍性双性動物の分類群の起源として識別された.
- ハイブリダイゼーションとフルーツフライの新しい宿主資源への移行との明確な関連性を示した.
結論:
- ホストのシフトに関連したハイブリッド種化は,繁殖的隔離のための堅牢なメカニズムを提供します.
- ホモプロイドのハイブリッド種の発生は,動物,特に寄生虫において,これまで考えられていたよりも頻繁に起こる可能性があります.
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