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    Item type:Publication,
    Sequential extraction protocol for bio-calcium from saltwater crocodile (Crocodylus porosus) bone: Physicochemical and molecular studies
    (2026-06-01)
    Yarnpakdee, Suthasinee
    ;
    Senphan, Theeraphol
    ;
    Benjakul, Soottawat
    ;
    Sriket, Chodsana
    Saltwater crocodile ( Crocodylus porosus ; SC) farming generates 45% bone waste, creating environmental challenges but also representing an underutilized source of calcium. This study presents the first comprehensive protocol for extracting bio-calcium from SC bone through sequential processing: autoclaving, alkaline soaking, ethanol extraction, and hydrogen peroxide bleaching. The extraction process yielded 16.94% bio-calcium with a high mineral density (26.37% Ca and 13.83% P) and an average particle size of 6.77 μm. XRD confirmed the preserved hydroxyapatite structure, while FTIR revealed the complete elimination of the organic matrix in the resulting bio-calcium. SEM-EDS demonstrated uniform elemental distribution with no detectable heavy metals. Remarkably, in vitro calcium bioavailability reached 15.24%, representing a 78% enhancement over fish bone bio-calcium and doubling synthetic supplement performance. Preserved collagen-derived amino acids facilitate calcium-peptide chelation, explaining the superior absorption. The developed valorization process converts aquaculture waste into high-value ingredients with potential applications in food and pharmaceuticals.
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    Item type:Publication,
    Improving calcium bioavailability from fish bone waste: the role of sodium hydroxide in bio‑calcium extraction from tilapia (Oreochromis niloticus) bones
    (2025-10-01)
    Senphan, Theeraphol
    ;
    Mungmueang, Natthapong
    ;
    Choommongkol, Vachira
    ;
    Sriket, Chodsana
    ;
    Kishimura, Hideki
    Calcium deficiency is a global health issue motivating the search for sustainable calcium sources from aquaculture waste. This study investigated sodium hydroxide (NaOH) concentration effects on bio‑calcium quality and bioavailability extracted from tilapia (Oreochromis niloticus) bones. Tilapia bones were treated with 0.5 M, 1 M, and 2 M NaOH solutions for 30 min compared to untreated controls. Increasing NaOH concentrations decreased yield while improving brightness, ash content, and calcium bioavailability. The 2 M NaOH treatment produced bio‑calcium with highest calcium bioavailability (8.57 %), surpassing both control (7.26 %) and commercial calcium carbonate (0.72 %) by 12-fold. Higher NaOH concentrations reduced moisture, protein, and fat contents while increasing hydroxyproline and decreasing lipid oxidation. SEM showed smoother surfaces with homogeneous pores in 2 M NaOH-treated samples. ATR-FTIR and EDS confirmed consistent hydroxyapatite structure. This optimization provides a sustainable approach for converting fish waste into high-bioavailability calcium supplements, supporting circular economy in aquaculture while addressing global calcium deficiency.