初期のアーカイアン期の微生物は,硫酸塩ではなく元素硫黄を好んだ
Pascal Philippot1, Mark Van Zuilen, Kevin Lepot
1Equipe Géobiosphère Actuelle et Primitive, Institut de Physique du Globe de Paris, CNRS and Université Denis Diderot, 4 place Jussieu, 75005 Paris cedex, France. philippot@ipgp.jussieu.fr
まとめ
初期の地球上の生命は,硫黄を減少させる生物だけでなく,硫黄を不均衡に処理する生物を含んでいたかもしれない. 古代オーストラリアの岩石の顕微鏡の硫化物には独特の硫黄の同位体があり,硫酸縮小より前の新しい微生物の代謝を示唆しています.
科学分野:
- 地質化学 地質化学
- パレオバイオロジーの古生物学
- 初期の地球の条件.
背景:
- 349億年前のドレッサー・フォーメーションの微細な硫化物は,34S/32Sの割合が低い.
- これらの硫化物は以前,早期の硫酸縮小生物の証拠として解釈されてきた.
研究 の 目的:
- ドレッサー・フォーメーションにおける顕微鏡の硫化物の起源を調査する.
- 硫黄のイソトープに基づいた初期の微生物生命の証拠を再評価する.
主な方法:
- 微細硫化物と宿主バリットの硫黄同位体組成 (34S/32SとDelta33S) の分析.
- 観測された同位体シグネチャを,既知の生物学的および無生物学的硫黄循環プロセスと比較.
主要な成果:
- 顕微鏡の硫化物は,主体硫酸塩と異なる質量独立の硫黄 (Delta33S) の分化を示している.
- 観測された同位体シグネチャー (陰性デルタ34Sと陽性デルタ33S) は,微生物による硫酸縮減またはアビオロジック硫酸縮減と矛盾しています.
結論:
- 研究された硫化物は,元素硫黄を不均衡に吸収する生物から発生した可能性が高い.
- この発見は,以前認識されていたよりも早く,より多様な微生物の硫黄代謝を示唆しています.
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