Biological, ecological and taphonomic insights into problematic animal and macroalgae fossils: Case studies from the Cambrian of North America and Mongolia and the Ordovician of France

dc.contributor.authorVayda, Prescott Jamesen
dc.contributor.committeechairXiao, Shuhaien
dc.contributor.committeememberStocker, Michelleen
dc.contributor.committeememberGill, Benjamin C.en
dc.contributor.committeememberSmith, Emily Francesen
dc.contributor.committeememberNesbitt, Sterling Jamesen
dc.contributor.departmentGeosciencesen
dc.date.accessioned2026-07-08T08:00:29Zen
dc.date.available2026-07-08T08:00:29Zen
dc.date.issued2026-07-07en
dc.description.abstractThe Ediacaran-Cambrian transition (~540 Ma) was one of the most significant times in the evolution of animals. It was during this time that most of the major modern animal groups first evolved and diversified. The impetus for the timing of this radiation remains enigmatic, and various drivers have been suggested, including biological, environmental, and ecological processes. Each of these factors likely played a role, and it was the combination of each of these things together that prompted such a rapid explosion of diversity unparalleled in the history of animals. Here I present a series of case studies on early Cambrian and Ordovician deposits across the globe that investigate these factors influencing the evolution of early animals at scales ranging from the individual organism to entire communities. In my first chapter, I investigated the phylogenetic placement of the enigmatic early Cambrian fossil Salterella. This organism was unique in that it built a shell incorporating both a biomineralized outer layer and internal agglutinated layers. The combination of petrographic, mineralogical, and shell microstructure data, suggest that Salterella was most likely a Cnidarian. Thus, cnidarians have likely had the capacity to biomineralize and agglutinate sediments (both behaviors they exhibit in the modern) since the early Cambrian. My second chapter involved the description of algae fossils from the early Ordovician Cabrières Biota. This deposit records a polar marine community. The morphologically simple algae from this deposit more closely resemble Precambrian forms than later Paleozoic forms, supporting a delayed diversification of macroalgae compared to animals at the start of the Phanerozoic. My third chapter focused on early Cambrian stratigraphy from southwestern Mongolia, recording the fossil assemblage. In the Bayangol Formation, I documented the occurrence of abundant iron oxide filaments that represent convergent taphonomies of algae, tubular animals, and trace fossils. The diversity of this assemblage is cryptic due to the tendency for each of these fossils to lose their distinctive characteristics and converge on a single form through taphonomic, diagenetic, and weathering processes. Together, these projects provide new insights into the evolution of early animals as well as the ecosystems they lived in and how the fossil record is preserved. Each is a critical component to reconstructing the history of life on Earth.en
dc.description.abstractgeneralJust over half a billion years ago, the ancestors of all major animal groups, from sponges and jellyfish to crabs and fish, first show up in the fossil record. It is still not clear why all these groups appeared at the same time and this specific time, especially considering life has been present on Earth for over three and a half billion years. Many different ideas have been suggested for what caused this explosion of diversity including changes in the biology of organisms that allowed them to build more complex bodies, changes in the environment such as increasing oxygen and nutrients that sustain life, or changes in organisms' behavior like predators evolving to better catch their prey and the prey evolving to better escape the predators. In all likelihood, it was no single thing that triggered the evolution of all these animal groups, but rather the combination of all these conditions changing in just the right way at just the right time that created an environment suitable for them to evolve. In this dissertation, I present three case studies examining how some of these changing conditions might have impacted the evolution of animals. In my first chapter, I studied a small conical shell fossil that represents a unique strategy in shell making. Where most organisms either synthesize their own minerals (like how we grow bones) or collect minerals from the environment and stick them to themselves to build their shell, this organism did both simultaneously. As no organism alive today does both, it was not clear where this fossil fit on the tree of life. I used microscopes to investigate the mineral composition and structure of the shell to interpret that this fossil organism is most closely related to modern corals and jellyfish. Corals today still use both strategies to build their skeletons (although not simultaneously), and this work suggests that they have had this ability for half a billion years. My second chapter focused on describing algae fossils from a deposit from after the initial diversification of animals. Crucially, this deposit can inform us about how changes in algae shape and structure may have impacted animal evolution in ocean ecosystems. The algae from this deposit are relatively simple ribbon-like structures that do not branch or expand in size. This form is much more similar to older, simple algae than it is to younger, more complex algae. This record demonstrates that algae diversified after animals did, so changes in algae probably did not drive evolution in early animals. My third chapter goes back to the earliest evolution of animals, looking at a fossil deposit in Mongolia. These rocks contain fossils of algae, tubular worm-like animals, and worm burrows. Due to the environmental conditions when these rocks were deposited, all these different fossils, representing both plants and animals, can be preserved in such a way that they become indistinguishable from each other. This work is significant for other deposits from this time where we might underestimate the diversity of organisms if we only find these difficult to diagnose fossils. Altogether, these projects each contribute to our growing understanding of the environments in which the earliest animals evolved.en
dc.description.degreeDoctor of Philosophyen
dc.format.mediumETDen
dc.identifier.othervt_gsexam:46710en
dc.identifier.urihttps://hdl.handle.net/10919/143601en
dc.language.isoenen
dc.publisherVirginia Techen
dc.rightsCreative Commons Attribution-NonCommercial 4.0 Internationalen
dc.rights.urihttp://creativecommons.org/licenses/by-nc/4.0/en
dc.subjectPaleontologyen
dc.subjectAlgaeen
dc.subjectBiomineralizationen
dc.subjectTaphonomyen
dc.subjectEvolutionen
dc.titleBiological, ecological and taphonomic insights into problematic animal and macroalgae fossils: Case studies from the Cambrian of North America and Mongolia and the Ordovician of Franceen
dc.typeDissertationen
thesis.degree.disciplineGeosciencesen
thesis.degree.grantorVirginia Polytechnic Institute and State Universityen
thesis.degree.leveldoctoralen
thesis.degree.nameDoctor of Philosophyen

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