Journal of The Royal Society Interface· 2026Q1
Deciphering coccolith formation: advanced microscopy insights from the biomineralization of Gephyrocapsa huxleyi
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- Q1SCImago
- 2026year
Short summary
Cryo-ptychographic X-ray computed tomography reveals a quasi-continuous sequence of coccolith growth in Gephyrocapsa huxleyi, identifying a rate-limiting step correlated with the shift from isotropic to anisotropic crystal growth.
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Key points
- Coccolith formation in Gephyrocapsa huxleyi was studied using cryo-ptychographic X-ray computed tomography, cryo-TEM, and SEM.
- A quasi-continuous sequence of coccolith growth was documented, with mass calculated for each developmental stage.
- A rate-limiting step was identified at the proto-coccolith ring stage.
- This bottleneck correlates with a transition from isotropic to anisotropic crystal growth, potentially caused by neighboring crystal constraints.
AI-generated from the title and abstract; the full text is not read.
Abstract
Abstract Coccolithophores are unicellular marine phytoplankton that produce complex and intricately shaped mineralized scales called coccoliths. Coccoliths are produced in an intracellular vesicle where crystal nucleation occurs, from which several individual calcite units develop with anisotropic crystallographic facets, prompting studies into the cellular mechanisms that control crystal growth within the cell. Here, we characterize those morphological developments in three dimensions that occur during the formation of coccoliths by the species Gephyrocapsa huxleyi using cryo-ptychographic X-ray computed tomography. This technique is ideally suited to study coccolith mineral development, as intracellular structures can be imaged intact in their native state without needing to disrupt cells. Combined with additional imaging of developing coccoliths using cryo-transmission electron microscopy and scanning electron microscopy, we report a quasi-continuous sequence of coccolith growth with the respective calculated mass for each state. Within this growth sequence, we identified that a significant proportion of the coccoliths were at the proto-coccolith ring stage, consistent with a rate-limiting step in their formation that we correlated to the shift in growth of the crystals from isotropic to anisotropic, potentially owing to constraints imposed by adjacent crystal units. This study provides unique insights into the morphological evolution of coccoliths during their development, and strengthens our understanding of this important biomineralization process.
The authors' abstract, as published at the source. Journal of The Royal Society Interface, 2026 · DOI ↗
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Field: Biomaterials
BiomaterialsMaterials Science