Benthic diel oxygen variability and stress as potential drivers for animal diversification in the Neoproterozoic-Palaeozoic
Abstract
Abstract The delay between the origin of animals in the Neoproterozoic and their Cambrian diversification remains perplexing. Animal diversification mirrors an expansion in marine shelf area under a greenhouse climate, though the extent to which these environmental conditions directly influenced physiology and early organismal ecology remains unclear. Here, we use a biogeochemical model to quantify oxygen dynamics at the sunlit sediment-water interface over day-night (diel) cycles at warm and cold conditions. We find that warm temperatures dictated physiologically stressful diel benthic oxic-anoxic shifts over a nutrient-rich shelf. Under these conditions, a population-and-phenotype model further show that the benefits of efficient cellular oxygen sensing that can offer adaptations to stress outweigh its cost. Since diurnal benthic redox variability would have expanded as continents were flooded in the end-Neoproterozoic and early Palaeozoic, we propose that a combination of physiological stress and ample resources in the benthic environment may have impacted the adaptive radiation of animals tolerant to oxygen fluctuations.
Article Details
Authors (13)
Emma U. Hammarlund
Anuraag Bukkuri
Magnus D. Norling
Mazharul Islam
Nicole R. Posth
Etienne Baratchart
Christopher Carroll
Sarah R. Amend
Urology and Oncology Cancer Ecology Center at the Brady Urological Institute Johns Hopkins School of Medicine Baltimore Maryland USA
Robert A. Gatenby
Kenneth J. Pienta
Urology, Oncology, Pharmacology and Molecular Sciences, and Chemical and Biomolecular Engineering Cancer Ecology Center at the Brady Urological Institute Johns Hopkins University Baltimore Maryland USA
Joel S. Brown
Shanan E. Peters
Kasper Hancke