自然淘汰は,小麦の百年規模の実験で,新興の遺伝的同質性を駆り立てている
Jacob B Landis1, Angelica M Guercio1, Keely E Brown1
1Department of Botany and Plant Sciences, University of California, Riverside, CA 92521, USA.
まとめ
進化的適応は"世紀以上にわたって観察されました 自然淘汰により 遺伝的多様性が劇的に減少し 気候に適応したアレルや 繁殖発達遺伝子を好んで この長期的な実験を行いました
科学分野:
- 進化生物学
- 遺伝学
- 植物学
背景:
- 大型多細胞生物における適応の直接的観察は稀である.
- 進化の過程を理解するには 長期の実験が不可欠です
研究 の 目的:
- 百年規模の競争実験で 進化的変化を観察し分析する
- ゲノム変異を形作る力を特定する 長期的小麦実験
主な方法:
- 1929年に開始された大麦複合クロスII (CCII) 実験を利用した.
- 約50世代に渡って 遺伝的多様性と選択圧力を分析した
- 特定の大麦の多様化地域に焦点を当てた.
主要な成果:
- CCIIの遺伝子多様性の大幅な減少
- 世代ごとに一つの系統の優位性 50.
- 選択は地元の気候に適応したアレルに好意を示した (デイビス,カリフォルニア州).
- Vrs1,HvCEN,Ppd-H1,Vrn-H2を含む生殖発達に関与する標的位置.
結論:
- 自然淘汰は この長期実験における ゲノム変異の主な原動力です
- 進化的適応は複雑な生物でも迅速かつ深刻である.
- CCIIの実験は,微生物進化の過程を研究するためのユニークなモデルを提供します.
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