PT - JOURNAL ARTICLE AU - L North AU - David Labonte AU - ML Oyen AU - MP Coleman AU - HB Caliskan AU - RE Johnston TI - Chemical-microstructural-nanomechanical variations in the structural units of the cuttlebone of <em>Sepia officinalis</em> AID - 10.1101/156810 DP - 2017 Jan 01 TA - bioRxiv PG - 156810 4099 - http://biorxiv.org/content/early/2017/06/27/156810.short 4100 - http://biorxiv.org/content/early/2017/06/27/156810.full AB - ‘Cuttlebone’, the internalized shell found in all members of the cephalopod family Sepiidae, is a sophisticated buoyancy device combining high porosity with considerable strength. Using a complementary suite of characterization tools, we identified significant structural, chemical and mechanical variations across the different structural units of the cuttlebone: the dorsal shield consists of two stiff and hard layers with prismatic mineral organization which encapsulate a more ductile and compliant layer with a lamellar structure, enriched with organic matter. A similar organization is found in the lamellar matrix, which consists of individual chambers separated by septa, and supported by meandering plates (‘pillars’). Like the dorsal shield, septa contain two layers with lamellar and prismatic organization, respectively, which differ significantly in their mechanical properties: layers with prismatic organization are a factor of three stiffer, and up to a factor of ten harder than those with lamellar organization. The combination of stiff and hard, and compliant and ductile components may serve to reduce the risk of catastrophic failure, and reflect the role of organic matter for the growth process of the cuttlebone. Mechanically ‘weaker’ units may function as sacrificial structures, ensuring a step-wise failure of the individual chambers in cases of overloading, allowing the animals to retain near-neutral buoyancy even with partially damaged cuttlebones. Our findings have implications for the structure-property-function relationship of cuttlebone, and may help to identify novel bioinspired design strategies for light-weight yet high-strength foams.