尿素同化和氧化支持黑暗海洋的基因组学上多样化的微生物群落的活性
Nestor Arandia-Gorostidi1,2, Alexander L Jaffe1, Alma E Parada1
1Department of Earth System Science, Stanford University, 473 Via Ortega, Stanford, CA 94305, United States.
The ISME journal
|November 12, 2024
概括
尿素是深海微生物的重要源,为它们的生长提供燃料,并支持深海中关键的化过程. 这项研究提供了直接证据,证明不同微生物在优发性区域以下广泛吸收尿素.
科学领域:
- 海洋微生物学 海洋微生物学
- 生物地质化学生物地质化学
- 深海生态 深海生态
背景情况:
- 尿素是深海微生物的潜在和能量来源.
- 在深海 (海区域以下) 中缺乏尿素利用的直接证据.
研究的目的:
- 为了研究微生物在太平洋东北深处的尿素利用.
- 确定尿素对深海中循环和化学自otrophy 的贡献.
主要方法:
- 转基因组学用于识别涉及尿素代谢的基因.
- 测量化速率. 测量化速率.
- 使用纳米级二次离子质谱法 (nanoSIMS) 进行单细胞稳定同位素吸收测量.
主要成果:
- 25%的深海细胞吸收了由尿素衍生的,比的比例更高.
- 尿素度和同化率随着深度下降而增加.
- 对于尿酶活性至关重要的ureC基因,在39%的深海细胞中被发现,在全球范围内,在10-46%的细胞中被发现.
结论:
- 尿素是丰富多样的深海微生物的重要源.
- 尿素支持深海化和化学自化,有助于海洋的碳循环.
- 在全球深海微生物群中,尿素的可用性非常广泛,特别是在光区域以下.
关键词:
浴类海类动物化学自营养增强 (chemoautotrophy) 是一种化学自营养增强.在深海,深海.半层层层层层层层层层层层层层层层层层层层层层转基因组学是指转基因组学.纳米系统是什么?化化化化化化这就是的酸.尿素 urea 的使用方法尿素的使用方法更多相关视频
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