Oxygen, Facies, and Secular Controls on the Appearance of Cryogenian and Ediacaran Body and Trace Fossils in the Mackenzie Mountains, Northwestern Canada

Erik A Sperling1,2, Calla Carbone3, Justin Vincent Strauss2, David T Johnston4, Guy Narbonne3 and Francis A Macdonald5, (1)Scripps Institution of Oceanography, Biological Oceanography, La Jolla, CA, United States, (2)Harvard-Earth & Planet Science, Cambridge, MA, United States, (3)Queens University, Geological Sciences and Geological Engineering, Kingston, ON, Canada, (4)Harvard University, Earth and Planetary Sciences, Cambridge, United States, (5)University of California Santa Barbara, Earth Science, Santa Barbara, United States

Contact First Author: Erik A Sperling; sperling@fas.harvard.edu

Previously Published Material: Presented at the 2014 Palaeontological Association meeting, Leeds, United Kingdom.

Abstract ID#: 33518

 

English Abstract:
The causes behind the appearance of abundant macroscopic body and trace fossils at the end of the Neoproterozoic Era remain debated. Iron geochemical data from fossiliferous Ediacaran successions in Newfoundland suggested that the first appearances at that locality appeared to correlate with an oxygenation event. A similar relationship was claimed to exist in the Mackenzie Mountains, Canada, although later stratigraphic studies indicated that the stratigraphic sections analyzed for geochemistry were incorrectly correlated with those hosting the fossils. To directly connect fossil occurrences with geochemistry in the Mackenzie Mountains, we conducted a multi-proxy iron, carbon, sulfur, and trace element geochemical analysis of stratigraphic sections hosting both the Cryogenian ‘Twitya discs’ at Bluefish Creek as well as the Ediacaran fossils and simple bilaterian traces at Sekwi Brook. There is no clear oxygenation event correlated with the appearance of macroscopic body fossils or simple bilaterian burrows; however, some change in environment – a potential partial oxygenation – is correlated with increasing burrow width higher in the Blueflower Formation. Data from Sekwi Brook suggest that these organisms were periodically colonizing a predominantly anoxic and ferruginous basin. This seemingly incongruent observation is accommodated through accounting for differing timescales between the characteristic response-time of sedimentary redox proxies versus that for ecological change. Thus, hypotheses directly connecting ocean oxygenation with the appearance of macrofossils need not apply to all areas of a heterogeneous Ediacaran ocean. At least in the Mackenzie Mountains, the appropriate facies for fossil preservation appears to be the strongest control on the stratigraphic distribution of macrofossils.