Literature DB >> 30417524

A small marine biosphere in the Proterozoic.

Thomas A Laakso1, Daniel P Schrag1.   

Abstract

The riverine supply of the globally limiting nutrient, phosphorus, to the ocean accounts for only a few percent of nutrient supply to photosynthetic organisms in surface waters. Recycling of marine organic matter by heterotrophic organisms provides almost all of the phosphorus that drives net primary production in the modern ocean. In the low-oxygen environments of the Proterozoic, the lack of free oxygen would have limited rates of oxic respiration, slowing the recycling of nutrients and thus limiting global rates of photosynthesis. A series of steady-state mass balance calculations suggest that the rate of net primary production in the ocean was no more than 10% of its modern value during the Proterozoic eon, and possibly less than 1%. The supply of nutrients in such a world would be dominated by river input, rather than recycling within the water column, leading to a small marine biosphere found primarily within estuarine environments.
© 2018 John Wiley & Sons Ltd.

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Year:  2018        PMID: 30417524     DOI: 10.1111/gbi.12323

Source DB:  PubMed          Journal:  Geobiology        ISSN: 1472-4669            Impact factor:   4.407


  6 in total

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2.  Organic matter mineralization in modern and ancient ferruginous sediments.

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3.  Triple oxygen isotope constraints on atmospheric O2 and biological productivity during the mid-Proterozoic.

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4.  Rapid timescale for an oxic transition during the Great Oxidation Event and the instability of low atmospheric O2.

Authors:  Nicholas F Wogan; David C Catling; Kevin J Zahnle; Mark W Claire
Journal:  Proc Natl Acad Sci U S A       Date:  2022-09-06       Impact factor: 12.779

5.  A long-term record of early to mid-Paleozoic marine redox change.

Authors:  Erik A Sperling; Michael J Melchin; Tiffani Fraser; Richard G Stockey; Una C Farrell; Liam Bhajan; Tessa N Brunoir; Devon B Cole; Benjamin C Gill; Alfred Lenz; David K Loydell; Joseph Malinowski; Austin J Miller; Stephanie Plaza-Torres; Beatrice Bock; Alan D Rooney; Sabrina A Tecklenburg; Jacqueline M Vogel; Noah J Planavsky; Justin V Strauss
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Review 6.  Oxygenation, Life, and the Planetary System during Earth's Middle History: An Overview.

Authors:  Timothy W Lyons; Charles W Diamond; Noah J Planavsky; Christopher T Reinhard; Chao Li
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  6 in total

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