Time-Dependent Demineralization of Tilapia (Oreochromis niloticus) Bones Using Hydrochloric Acid for Extracellular Matrix Extraction

Author:

Nisperos Michael John1ORCID,Bacosa Hernando12ORCID,Lumancas Gladine1,Arellano Fernan1ORCID,Aron Jemwel1,Baclayon Lean1ORCID,Bantilan Zesreal Cain2,Labares Marionilo2,Bual Ronald23ORCID

Affiliation:

1. Environmental Science Graduate Program, Department of Biological Sciences, College of Science and Mathematics, Mindanao State University-Iligan Institute of Technology, Iligan City 9200, Philippines

2. Center for Sustainable Polymers, Mindanao State University-Iligan Institute of Technology, Iligan City 9200, Philippines

3. Department of Chemical Engineering and Technology, College of Engineering, Mindanao State University-Iligan Institute of Technology, Iligan City 9200, Philippines

Abstract

Tilapia (Oreochromis niloticus) is a widely cultivated fish in tropical and subtropical regions such as the Philippines, generating substantial waste during processing, including bones that are a valuable source of extracellular matrix (ECM). However, the extraction of ECM from fish bones requires an essential step of demineralization. This study aimed to assess the efficiency of tilapia bone demineralization using 0.5 N HCl at different time durations. By evaluating the residual calcium concentration, reaction kinetics, protein content, and extracellular matrix (ECM) integrity through histological analysis, composition assessment, and thermal analysis, the effectiveness of the process was determined. Results revealed that after 1 h of demineralization, the calcium and protein contents were 1.10 ± 0.12% and 88.7 ± 0.58 μg/mL, respectively. The study found that after 6 h, the calcium content was almost completely removed, but the protein content was only 51.7 ± 1.52 μg/mL compared to 109.0 ± 1.0 μg/mL in native bone tissue. Additionally, the demineralization reaction followed second-order kinetics with an R2 value of 0.9964. Histological analysis using H&E staining revealed a gradual disappearance of the basophilic components and the emergence of lacunae, which can be attributed to decellularization and mineral content removal, respectively. As a result, organic components such as collagen remained in the bone samples. ATR-FTIR analysis showed that all demineralized bone samples retained collagen type I markers, including amide I, II, and III, amides A and B, and symmetric and antisymmetric CH2 bands. These findings provide a route for developing an effective demineralization protocol to extract high-quality ECM from fish bones, which could have important nutraceutical and biomedical applications.

Funder

Department of Science and Technology

Publisher

MDPI AG

Subject

Molecular Medicine,Biomedical Engineering,Biochemistry,Biomaterials,Bioengineering,Biotechnology

Reference47 articles.

1. (2023, March 07). Philippine Tilapia Industry Roadmap (2022–2025), Available online: http://www.pcaf.da.gov.ph/index.php/cir-tilapia.

2. Rajasree, R., and Aranganathan, L. (2023, April 14). Industrial Fish Processing Waste: Causes, Effects & Sustainable Solutions for Effective Management. Available online: https://www.foodinfotech.com/industrial-fish-processing-waste-causes-effects-sustainable-solutions/.

3. Fish Processing Wastes Used as Feed Ingredient for Animal Feed and Aquaculture Feed;Afreen;J. Surv. Fish. Sci.,2020

4. Fish Waste: An Efficient Alternative to Biogas and Methane Production in an Anaerobic Mono-Digestion System;Marder;Renew. Energy,2020

5. Fish Glue from Tilapia Scale and Skin and Its Physical and Chemical Characters;Akter;Int. J. Fish Aquat. Sci.,2017

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