Proceedings of the National Academy of Sciences · 2019 · 127 citations · 44 references
Crystallization by particle attachment of amorphous precursors occurs in modern biomineralized skeletons across diverse animal phyla, and similar precursors have been spectromicro‑observed in echinoderms, mollusks, and cnidarians, suggesting convergent evolution driven by shared thermodynamic and kinetic principles. The study correlates CPA from ACC precursor particles with nanoparticulate fabric to probe the antiquity of this biomineralization mode. Scanning electron microscopy reveals CPA in tunicate chordates and demonstrates that early Ediacaran and Cambrian calcifiers formed their biominerals by attaching ACC particles.
Crystallization by particle attachment (CPA) of amorphous precursors has been demonstrated in modern biomineralized skeletons across a broad phylogenetic range of animals. Precisely the same precursors, hydrated (ACC-H2O) and anhydrous calcium carbonate (ACC), have been observed spectromicroscopically in echinoderms, mollusks, and cnidarians, phyla drawn from the 3 major clades of eumetazoans. Scanning electron microscopy (SEM) here also shows evidence of CPA in tunicate chordates. This is surprising, as species in these clades have no common ancestor that formed a mineralized skeleton and appear to have evolved carbonate biomineralization independently millions of years after their late Neoproterozoic divergence. Here we correlate the occurrence of CPA from ACC precursor particles with nanoparticulate fabric and then use the latter to investigate the antiquity of the former. SEM images of early biominerals from Ediacaran and Cambrian shelly fossils show that these early calcifiers used attachment of ACC particles to form their biominerals. The convergent evolution of biomineral CPA may have been dictated by the same thermodynamics and kinetics as we observe today.
44
Cation Exchange Reactions in Ionic Nanocrystals
Dong Hee Son, Steven M. Hughes, Yadong Yin et al. · Science · 2004 · 1.2K citations
Sea Urchin Spine Calcite Forms via a Transient Amorphous Calcium Carbonate Phase
Yael Politi, Talmon Arad, Eugenia Klein et al. · Science · 2004 · 946 citations