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March 29, 20260 citationsOpen Access

Carbonic anhydrase traced by cadmium isotope fractionations in Archean to Holocene stromatolitic carbonates

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SHSimon V. HohlSVSebastian ViehmannLeibniz University HannoverPGPhilipp Gleissner

Key Points

  • To determine if cadmium isotope fractionation can be used to trace carbonic anhydrase in ancient microbial structures.
  • Analyzed Cd isotopic compositions in stromatolites from Western Australia across different geological periods.
  • Examined correlations between Cd isotopes and nutrient availability such as P, Cd, and Zn.
  • Investigated the relationship between cadmium isotopes and enzymatic metal-cycling in ancient environments.
  • Found fractionated Cd isotopes linked to nutrient cycling in Paleoarchean stromatolites.
  • Demonstrated Rayleigh-type Cd isotope fractionation indicating carbonic anhydrase activity as early as the Mesoarchean.
  • Revealed insights into the evolution of metallome and its role in microbial metabolisms.

Abstract

Stromatolites record interactions of the biosphere, atmosphere, and hydrosphere. The evolution of C-fixation via diverse metabolisms is linked to metal availability for enzymes such as carbonic anhydrase. Stable Cd isotopes fractionation during uptake into carbonic anhydrase by modern phototrophs is readily recorded in authigenic carbonates. Here we test whether this proxy can be expanded to trace carbonic anhydrase in the microbial rock record. We analyzed Cd isotopic compositions in stromatolite occurrences of Western Australia, spanning from the Archean ( ~ 3.35 Ga Strelley Pool and ~2.72 Ga Tumbiana formations) to the Holocene Hamelin Pool. We record fractionated Cd isotopic compositions correlating with macro and micro-nutrients P, Cd and Zn, suggesting enzymatic metal-cycling in the Paleoarchean. Meanwhile, Rayleigh-type Cd isotope fractionation indicates its use as a co-factor in carbonic anhydrase from the Meso- to Neoarchean onwards. Our study offers new insights into the evolution of the metallome and its role facilitating early microbial metabolisms.

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Cite This Study

Hohl et al. (2026) studied this question.

synapsesocial.com/papers/69c8c2b8de0f0f753b39d273https://doi.org/10.17169/refubium-51737
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