Hexagonal Patterns in Diatom Silica Form via a Directional Two‐Step Process

Author:

Lansky Zipora1,de Haan Diede1ORCID,Piven Yuval1,Rechav Katya2ORCID,Gal Assaf1ORCID

Affiliation:

1. Dept. of Plant and Environmental Sciences Weizmann Institute of Science Rehovot 7610001 Israel

2. Dept. of Chemical Research Support Weizmann Institute of Science Rehovot 7610001 Israel

Abstract

AbstractOrganisms are able to control material patterning down to the nanometer scale. This is exemplified by the intricate geometrical patterns of the silica cell wall of diatoms, a group of unicellular algae. Theoretical and modeling studies propose putative physical and chemical mechanisms to explain morphogenesis of diatom silica. Nevertheless, direct investigations of the underlying formation process are challenging because this process occurs within the confines of the living cell. Here, a method is developed for in situ 3D visualization of silica development in the diatom Stephanopyxis turris, using electron microscopy slice‐and‐view techniques. The formation of an isotropic hexagonal pattern made of nanoscale pores is documented. Surprisingly, these data reveal a directional process that starts with elongation of silica rods along one of the three equivalent orientations of the hexagonal lattice. Only as a secondary step, these rods are connected by crisscrossing bridges that give rise to the complete hexagonal pattern. These in situ observations combine two known properties of diatom silica, close packing of pores and branching of rods, to a unified process that yields isotropic patterns from an anisotropic background. Future research into diatom morphogenesis should focus on rod elongation and branching as the key for pattern formation.

Funder

HORIZON EUROPE European Research Council

Publisher

Wiley

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