Evaluation of mechanical properties of matrices derived from fish scale collagen
PDF
XML

Keywords

bioplastics
package
starch
collagen
mechanical properties
cassava
essential oil
fish scale bioplástico
envase
almidón
colágeno
propiedades mecánicas
yuca
aceite esencial
escamas de pescado

How to Cite

Sánchez-Soto, J. M., López-Alcántara, R., Sánchez-González, A. del P., & Torres-Mendoza, E. J. (2022). Evaluation of mechanical properties of matrices derived from fish scale collagen. Revista Colombiana De Investigaciones Agroindustriales, 9(2), 119–129. https://doi.org/10.23850/24220582.5211

Abstract

The development of biodegradable materials arises as an alternative to reduce the pollution caused by plastic waste to the environment, with this premise this study was proposed to develop plastic biopolymers from bioactive compounds with different matrices modified cassava starch (5 – 12 %), fish scale collagen (10 – 40 %), lemon essential oil (0,5 - 1,5 %) and gelatinization temperature (70 – 80 °C); A Box Behnken response surface experimental design was used; with the determination of their mechanical properties (maximum stress, Young's modulus, shear strength, stress at break and percentage elongation at break). According to the results found, it was determined that the modified cassava starch had the greatest influence on the mechanical properties, taking into account its importance to create more resistant materials, but it evidences plasticizing difficulties, where the fish scale collagen has a significant influence. In addition, it is evidenced that lemon essential oil had a great influence on Young's modulus (46,28 ± 2,31 MPa) and the percentage of elongation (69,69 ± 2,16 %); while the gelatinization temperature of 80 °C is not recommended for this type of starch-protein matrices due to damage of the structure; determining a better mechanical resistance and a great increase of Young's modulus. In conclusion, the characteristics and performance of the film based on cassava starch, collagen flakes and lemon essential oil have a positive impact on the maximum level of mechanical efficiency of the biodegradable films, achieving a better performance in their mechanical properties.

https://doi.org/10.23850/24220582.5211
PDF
XML

References

Abarca, P. F. J., & Hidalgo, L. D. M. (2021). Obtención de película biodegradable a partir de colágeno (Gallus gallus domesticus) y almidón (Musa balbisiana) para el recubrimiento de frutas. (Undergraduate thesis, Universidad de Guayaquil). Institutional repository. http://repositorio.ug.edu.ec/handle/redug/53887

Adamiak, K., & Sionkowska, A. (2020). Current methods of collagen cross-linking: Review. International Journal of Biological Macromolecules, 161, 550–560. https://doi.org/10.1016/j.ijbiomac.2020.06.075

Alias, S. A., & Ishak, K. M. K. (2020). Preparation and characterization of protein bioplastics from fish waste using different plasticizers. Materials Science Forum, 982 MSF, 67–72. https://doi.org/10.4028/www.scientific.net/MSF.982.67

Alzáte-Pérez, S. I., Quintanilla, J. P., Paredes, C. R., & Velasco, E. (2018, september, 13-14). Bioplásticos de colageno parcialmente hidrolizado obtenido de las escamas del bocachico (Prochilodum magdalenae), reforzados con cáscarilla de arroz. In Memorias del IV Simposio de Materiales Poliméricos, Biopolímeros. Informador Técnico, 82 (2), 103–106. Cali, Colombia. https://doi.org/10.23850/22565035.1983

American Society for Testing and Materials [ASTM]. (1980). D882-80, Standard Test Method for Tensile Properties of Thin Plastic Sheeting. In Manual book of ASTM standards. ASTM. https://www.astm.org/

AOAC. (2003). Official Methods of Analysis. Association of Analytical Washington, DC, USA. https://www.aoac.org/

Assis, A. M. (2019). Conservação de melão "cantaloupe‟ minimamente processado com diferentes recobrimentos. [Master thesis, Universidade Federal De Campina Grande]. Institutional repository. http://dspace.sti.ufcg.edu.br:8080/jspui/bitstream/riufcg/3533/3/ANAMARINAASSIS ALVES–DISSERTAÇÃOPPGSAACADÊMICO2019.pdf

Bejarano-Martínez, N. L. (2018). Rendimiento del proceso de extracción de almidón a partir de frutos de plátano (Musa paradisiaca). [Undergraduate thesis, Universidad Nacional de San Agustín de Arequipa]. Institutional repository. http://repositorio.unsa.edu.pe/handle/UNSA/7578

Cabezas, J. A. (2020). Recubrimientos biodegradables obtenidos a partir de cáscara y semilla de sandía (Citrullus lanatus). [Degree thesis, Universidad Agraria del Ecuador]. Institutional repository. https://cia.uagraria.edu.ec/Archivos/CABEZAS RODRIGUEZ JOSE ALBERTO.pdf

Cardozo, J. R., & Puerto, R. L. (2019). Agregado de valor a frutos silvestres de agraz a través de la aplicación de recubrimientos comestibles a base de almidones de papas andinas. [Degree thesis, Universidad Pedagógica y Tecnológica de Colombia]. Institutional repository. https://repositorio.uptc.edu.co/bitstream/001/2815/1/TGT_1419.pdf

Chisenga, S. M., Workneh, T. S., Bultosa, G., & Alimi, B. A. (2019). Progress in research and applications of cassava flour and starch: a review. Journal of Food Science and Technology, 56 (6), 2799–2813. https://doi.org/10.1007/s13197-019-03814-6

dos Santos, K. C., Almeida, N. L., Haas, T. M. C., Brandelli, A., Rodrigues, E., Hickmann, S. F., & Cladera, F. O. (2018). Characterization of active biodegradable films based on cassava starch and natural compounds. Food Packaging and Shelf Life, 16, 138–147. https://doi.org/10.1016/j.fpsl.2018.03.006

Gastelum, A. N., Hernández, M. S., Gonzalez, B., Vega, Y., & Muñoz, I. M. (2018). Análisis comparativo de las propiedades mecánicas de un material compuesto reforzado con fibras de carbono y las de su matriz polimérica de resina epóxica. Matéria (Rio de Janeiro), 23 (2). https://doi.org/10.1590/s1517-707620180002.0428

Granda, D., Medina, Y., Culebras, M., & Gómez, C. (2014). Desarrollo Y Caracterización De Una Película Activa Biodegradable Con Antioxidantes (Alfa-Tocoferol) a Partir De Las Proteínas Del Lactosuero Tt - Development and Characterization of an Active Biodegradable Film With Antioxidants (Alpha-Tocopherol) From. Vitae, 21 (1), 11–19. http://www.scielo.org.co/pdf/vitae/v21n1/v21n1a2.pdf

Guarás, M. P. (2018). Desarrollo de Nanocompuestos Basados en Almidón Termoplástico a Escala Planta Piloto. [Doctoral thesis, Universidad Nacional de Mar del Plata]. Repositorio Institucional CONICET Digital. Argentina. https://ri.conicet.gov.ar/handle/11336/91843

Gutierrez, R. S. (2020). Películas biodegradables a partir de colágeno de piel de pez diablo (Pterygoplichthys pardalis). [Master thesis, Instituto Tecnológico de Tuxtla Gutiérrez]. Institutional repository. http://repositorio.digital.tuxtla.tecnm.mx/xmlui/handle/123456789/2034

Holguin-Cardona, J. S. (2019). Obtención de un Bioplástico a partir de Almidón de Papa. [Undergraduate thesis, Fundación Universidad de America]. Institutional repository. https://repository.uamerica.edu.co/bitstream/20.500.11839/7388/1/6132181-2019-1-IQ.pdf

Hou, C., Gao, L., Wang, Z., Rao, W., Du, M., & Zhang, D. (2019). Mechanical properties, thermal stability, and solubility of sheep bone collagen–chitosan films. Journal of Food Process Engineering, 43 (1), 1–8. https://doi.org/10.1111/jfpe.13086

Jiang, J., Watowita, P. S. M. S. L., Chen, R., Shi, Y., Geng, J.-T., Takahashi, K., Li, L., & Osako, K. (2022). Multilayer gelatin/myofibrillar films containing clove essential oil: Properties, protein-phenolic interactions, and migration of active compounds. Food Packaging and Shelf Life, 32, 100842. https://doi.org/10.1016/j.fpsl.2022.100842

León, G., León, D., Monroy, M., Espriella, S., & Herrera, A. (2020). Modificación química de almidones mediante reacciones de esterificación y su potencial uso en la industria cosmética. Archivos Venezolanos de Farmacología y Terapeútica, 39 (5), 620–626. https://doi.org/10.5281/zenodo.4263410

Malihi, N., Danafar, F., & Moosavi-nasab, M. (2022). The effect of Oliveria decumbens Vent. essential oils and lysozyme on physicochemical and functional properties of fish gelatin film. Journal of Food Measurement and Characterization, 16 (3), 2356–2364. https://doi.org/10.1007/s11694-022-01344-y

Marín, D. (2019). Nanoliposomas a partir de productos naturales infrautilizados y residuos agroalimentarios como ingrediente funcional en alimentos. [Doctoral thesis, Universidad Complutense de Madrid]. Institutional repository. https://eprints.ucm.es/id/eprint/57956/1/T41485.pdf

Mroczkowska, M., Culliton, D., Germaine, K., & Neves, A. (2021). Comparison of mechanical and physicochemical characteristics of potato starch and gelatine blend bioplastics made with gelatines from different sources. Clean Technologies, 3 (2), 424–436. https://doi.org/10.3390/cleantechnol3020024

Murillo, R. G. (2020). Aplicación de la tecnología de extrusión en productos con alto contenido en proteína [Degree thesis, Universidad Politécnica de Valencia]. Institutional repository. https://riunet.upv.es:443/handle/10251/150018

Nordin, N., Othman, S. H., Rashid, S. A., & Basha, R. K. (2020). Effects of glycerol and thymol on physical, mechanical, and thermal properties of corn starch films. Food Hydrocolloids, 106, 105884. https://doi.org/10.1016/j.foodhyd.2020.105884

Oluwasina, O. O., & Awonyemi, I. O. (2021). Citrus peel extract starch-based bioplastic: effect of extract concentration on packed fish and bioplastic properties. Journal of Polymers and the Environment, 29 (6), 1706–1716. https://doi.org/10.1007/s10924-020-01990-7

Palma-Rodríguez, H. R., Salgado-Delgado, R., Páramo-Calderon, D., Vargas-Torres, A., & Meza-Nieto, M. (2017). Caracterización parcial de películas biodegradables elaboradas con almidón de plátano y proteínas séricas de la leche. Acta Universitaria, 27(1), 26–33. https://doi.org/10.15174/au.2017.1215

Perez-Puyana, V., Alonso-González, M., Rubio-Valle, J. F., Guerrero, A., & Romero, A. (2020). Use of genipin to crosslink collagen and chitosan-based biomaterials. En 24th International Congress on Project Management and Engineering July, 656–665. http://dspace.aeipro.com/xmlui/bitstream/handle/123456789/2459/AT03-017_20.pdf?sequence=1&isAllowed=y

Rusli, A., Metusalach, M., & Tahir, M. M. (2017). Characterization of Carrageenan Edible films Plasticized with Glycerol. Jurnal Pengolahan Hasil Perikanan Indonesia, 20 (2), 219. https://doi.org/10.17844/jphpi.v20i2.17499

Slavutsky, A. M., & Bertuzzi, M. A. (2015). Formulation and characterization of nanolaminated starch based film. LWT - Food Science and Technology, 61 (2), 407–413. https://doi.org/10.1016/j.lwt.2014.12.034

Susilawati, Rostini, I., Intan, R. P., & Rochima, E. (2019). Characterization of Bioplastic Packaging from Tapioca Flour Modified with the Addition of Chitosan and Fish Bone Gelatin. World Scientific News, 135, 85–98. www.worldscientificnews.com

Ulyarti, U., Nazarudin, N., Surhaini, Lisani, Ramadon, R., & Lumbanraja, P. (2020). Cassava Starch Edible Film with Addition of Gelatin or Modified Cassava Starch. IOP Conference Series: Earth and Environmental Science, 515 (1), 6–11. https://doi.org/10.1088/1755-1315/515/1/012030

Wang, K., Wang, W., Ye, R., Liu, A., Xiao, J., Liu, Y., & Zhao, Y. (2016). Mechanical properties and solubility in water of corn starch-collagen composite films: Effect of starch type and concentrations. Food Chemistry, 216, 209–216. https://doi.org/10.1016/j.foodchem.2016.08.048

Creative Commons License

This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.

Downloads

Download data is not yet available.