Efficient Hydroxyapatite Extraction from Salmon Bone Waste: An Improved Lab-Scaled Physico-Chemico-Biological Process
Author
Publication date
2024ISSN
1420-3049
Abstract
The demand for novel tissue grafting and regenerative wound care biomaterials is growing as traditional options often fall short in biocompatibility, functional integration with human tissue, associated cost(s), and sustainability. Salmon aquaculture generates significant volumes of waste, offering a sustainable opportunity for biomaterial production, particularly in osteo-conduction/-induction, and de novo clinical/surgical bone regeneration. Henceforth, this study explores re-purposing salmon waste through a standardized pre-treatment process that minimizes the biological waste content, followed by a treatment stage to remove proteins, lipids, and other compounds, resulting in a mineral-rich substrate. Herein, we examined various methods—alkaline hydrolysis, calcination, and NaOH hydrolysis—to better identify and determine the most efficient and effective process for producing bio-functional nano-sized hydroxyapatite. Through comprehensive chemical, physical, and biological assessments, including Raman spectroscopy and X-ray diffraction, we also optimized the extraction process. Our modified and innovative alkaline hydrolysis–calcination method yielded salmon-derived hydroxyapatite with a highly crystalline structure, an optimal Ca/P ratio, and excellent biocompatibility. The attractive nano-scale cellular/tissular properties and favorable molecular characteristics, particularly well-suited for bone repair, are comparable to or even surpass those of synthetic, human, bovine, and porcine hydroxyapatite, positioning it as a promising candidate for use in tissue engineering, wound healing, and regenerative medicine indications.
Document Type
Article
Document version
Published version
Language
English
Subject (CDU)
616.3 - Pathology of the digestive system. Complaints of the alimentary canal
Keywords
Pages
15
Publisher
MDPI
Collection
29; 17
Is part of
Molecules
Citation
Muñoz, Francisco; Haidar, Ziyad; Puigdollers, Andreu [et al.]. Efficient hydroxyapatite extraction from salmon bone waste: an improved lab-scaled physico-chemico-biological process. Molecules, 2024, 29(17), 4002. Disponible en: <https://www.mdpi.com/1420-3049/29/17/4002>. Fecha de acceso: 28 feb. 2025. DOI: 10.3390/molecules29174002
Note
This research work was supported by operating grants provided to the HAiDAR R&D&I LAB/BioMAT’X (Laboratorio de Biomateriales, Farmacéuticos y Bioingeniería de Tejidos Cráneo Máxilo-Facial), member of CiiB (Centro de Investigación e Innovación Biomédica), Faculties of Medicine and Dentistry, Universidad de los Andes, Santiago de Chile, through the ANID-NAM (Agencia Nacional de Investigación y Desarrollo, Chile and National Academy of Medicine, USA) Grant coded # NAM21I0022 (2020–2022), CORFO Crea y Valida I+D+i Grant coded # 21CVC2-183649 (2021–2023), CORFO Crea y Valida—“Proyecto de I+D+i Colaborativo-Reactívate” Grant coded # 22CVC2-218196 (2022–2024), and FONDEF Concurso IDeA de I+D, ANID, Grant coded # ID22I10215 (2022–2024). The authors are pleased to particularly acknowledge the awarded CORFO Crea y Valida I+D+i Grant devoted to Chilean Salmon Fish Bone; code # 21CVC2-183641 (2022–2024).
This item appears in the following Collection(s)
- Odontologia [334]
Rights
© 2024 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Except where otherwise noted, this item's license is described as https://creativecommons.org/licenses/by/4.0/