Efficient Hydroxyapatite Extraction from Salmon Bone Waste: An Improved Lab-Scaled Physico-Chemico-Biological Process

Author:

Muñoz Francisco1,Haidar Ziyad S.23456ORCID,Puigdollers Andreu7ORCID,Guerra Ignacio1,Padilla María Cristina3489,Ortega Nicole8,Balcells Mercedes1011,García María José1

Affiliation:

1. Facultad de Odontología, Universidad Internacional de Cataluña, 08029 Barcelona, Spain

2. Laboratorio BioMAT’X R&D&I (HAiDAR I+D+i LAB), Universidad de los Andes, Santiago 7550000, Chile

3. Centro de Investigación e Innovación Biomédica (CiiB), Universidad de los Andes, Santiago 7550000, Chile

4. Programa de Doctorado en BioMedicina, Facultad de Medicina, Universidad de los Andes, Santiago 7550000, Chile

5. Programa de Doctorado en Ciencias Odontológicas, Facultad de Odontología, Universidad de los Andes, Santiago 7550000, Chile

6. Facultad de Odontología, Universidad de los Andes, Santiago 7550000, Chile

7. Área de Ortodoncia, Facultat Internacional de Cataluña, 08195 Barcelona, Spain

8. Laboratorio de Investigación e Ingeniería de Biopolímeros (BiopREL), Universidad de los Andes, Santiago 7550000, Chile

9. Escuela de Nutrición y Dietética, Facultad de Medicina, Universidad de los Andes, Santiago 7550000, Chile

10. Institut Quimic de Sarria, Ramon Llull University, 08017 Barcelona, Spain

11. MIT Institute for Medical Engineering and Science, Massachusetts Institute of Technology, Cambridge, MA 02139-4307, USA

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.

Funder

HAiDAR R&D&I LAB/BioMAT’X

CORFO Crea y Valida I+D+i

CORFO Crea y Valida—“Proyecto de I+D+i Colaborativo-Reactívate”

FONDEF Concurso IDeA de I+D, ANID

CORFO Crea y Valida I+D+i Grant devoted to Chilean Salmon Fish Bone

Publisher

MDPI AG

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