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陨石风化后光地球化学作用向早期地球供应磷

Supply of phosphate to early Earth by photogeochemistry after meteoritic weathering.

作者信息

Ritson Dougal J, Mojzsis Stephen J, Sutherland John D

机构信息

MRC - Laboratory of Molecular Biology, Francis Crick Avenue, Cambridge Biomedical Campus, Cambridge, CB2 0QH, U.K.

Department of Geological Sciences, University of Colorado, UCB 399, 2200 Colorado Avenue, Boulder, CO 80309-0399, USA.

出版信息

Nat Geosci. 2020 May;13(5):344-348. doi: 10.1038/s41561-020-0556-7. Epub 2020 Mar 23.

Abstract

During terrestrial differentiation, the relatively small amount of phosphorus that migrated to the lithosphere was incorporated into igneous rock, predominantly in the form of basic calcium orthophosphate (Ca(PO)(OH,F,Cl), apatite). Yet, the highly insoluble nature of calcium apatite presents a significant problem to those contemplating the origin of life given the foundational role of phosphate (PO ) in extant biology and the apparent requirement for PO as a catalyst, buffer and reagent in prebiotic chemistry. Reduced meteorites such as enstatite chondrites are highly enriched in phosphide minerals, and upon reaction with water these minerals can release phosphorus species of various oxidation states. Here, we demonstrate how reduced phosphorus species can be fully oxidized to PO simply by the action of ultraviolet light on HS/HS. We used low pressure Hg lamps to simulate UV output from the young Sun and P NMR spectroscopy to monitor the progress of reactions. Our experimental findings provide a cosmochemically and geochemically plausible means for supply of PO that was widely available to prebiotic chemistry and nascent life on early Earth, and potentially on other planets.

摘要

在地球分化过程中,迁移到岩石圈的相对少量的磷被纳入火成岩中,主要以碱性正磷酸钙(Ca(PO)(OH,F,Cl),磷灰石)的形式存在。然而,鉴于磷酸盐(PO)在现存生物学中的基础作用以及在益生元化学中作为催化剂、缓冲剂和试剂对PO的明显需求,钙磷灰石的高度不溶性给那些思考生命起源的人带来了重大问题。诸如顽火辉石球粒陨石之类的还原陨石富含磷化物矿物,这些矿物与水反应时会释放出各种氧化态的磷物种。在这里,我们展示了还原态的磷物种如何仅通过紫外线对HS/HS的作用就可以完全氧化为PO。我们使用低压汞灯来模拟年轻太阳的紫外线输出,并利用磷核磁共振光谱来监测反应进程。我们的实验结果提供了一种在宇宙化学和地球化学上看似合理的供应PO的方式,这种方式在早期地球上以及可能在其他行星上的益生元化学和新生生命中广泛存在。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b359/7213494/e7c11e0ff53c/EMS85849-f001.jpg

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