Lignosulfonate-Chitosan Based Hydrogel Production for Water Storage with Laccase by Trametes versicolor

Authors

  • Danu Risqi Yudiargo Institut Teknologi Sepuluh Nopember
  • Endry Nugroho Prasetyo Institut Teknologi Sepuluh Nopember

DOI:

https://doi.org/10.55927/ajns.v3i3.13730

Keywords:

Laccase, Hydrogels, Trametes versicolor, Lignosulfonate, Chitosan

Abstract

The combination of lignosulfonate and chitosan biopolymers will provide a highly air-soluble structure for a copolymer water storage hydrogel due to the large number of hydrophilic functional groups. Laccase plays a role in catalyzing the electron oxidation reaction of compounds that occur in lignosulfonate so that the opportunity to bind to chitosan is also greater. The aim of this study was to fabricate lignosulfonate-chitosan based hydrogel for water storage with laccase by Trametes versicolor. The hydrogel was fabricated by adding laccase to the lignosulfonate and chitosan solution, then added with acetic acid, PVA, and glutardialdehyde with vigorous stirring. The water absorption value of the water storage hydrogel that  was successfully  created was  7.18%

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References

Aflatounian, A., Sharzehee, M., C Mashroteh, H. A. (2024). Preparation of stable polyvinyl alcohol/polyurea hydrogel using oligomeric compounds containing urea-bonded. Results in Materials, 22, 100564. https://doi.org/10.1016/j.rinma.2024.100564

Ahmadi, F., Oveisi, Z., Samani, S. M., & Amoozgar, Z. (2015). Chitosan based hydrogels: characteristics and pharmaceutical applications. Research in Pharmaceutical Sciences, 10(1), 1–16.

Ahmed, E. M. (2015). Hydrogel: Preparation, characterization, and applications: A review. Journal of Advanced Research, 6(2), 105–121. https://doi.org/10.1016/j.jare.2013.07.006

Albalasmeh, A. A., Mohawesh, O., Gharaibeh, M. A., Alghamdi, A. G., Alajlouni, M. A., & Alqudah, A. M. (2022). Effect of hydrogel on corn growth, water use efficiency, and soil properties in a semi-arid region. Journal of the Saudi Society of Agricultural Sciences, 21(8), 518–524. https://doi.org/10.1016/j.jssas.2022.03.001

Beer, B., Bartolome, M. J., Berndorfer, L., Bochmann, G., Guebitz, G. M., & Nyanhongo, G. S. (2020). Controlled enzymatic hydrolysis and synthesis of lignin cross-linked chitosan functional hydrogels. International Journal of Biological Macromolecules, 161, 1440–1446. https://doi.org/10.1016/j.ijbiomac.2020.08.030

Bercea, M. (2024). Recent Advances in Poly(vinyl alcohol)-Based Hydrogels.

Gadaime, N. K. R., S. M. N. Mydin, R. B., Govindasamy, G. A., Bustami, Y., & Sreekantan, S. (2025). Advanced Hydrogel Dressing with Zinc Oxide- Copper Oxide Nanocomposite for Effective Wound Management: Mechanochemistry, Antibacterial Efficacy, Cytocompatibility and Wound Healing Potentials. Journal of Polymers and the Environment, 33(3), 1601–1614. https://doi.org/10.1007/s10924-024-03468-2

Haske-Cornelius, O., Bischof, S., Beer, B., Jimenez Bartolome, M., Olatunde Olakanmi, E., Mokoba, M., … Nyanhongo, G. S. (2019). Enzymatic synthesis of highly flexible lignin cross-linked succinyl-chitosan hydrogels reinforced with reed cellulose fibres. European Polymer Journal, 120. https://doi.org/10.1016/j.eurpolymj.2019.08.028

Huber, D., Tegl, G., Baumann, M., Sommer, E., Gorji, E. G., Borth, N., … Guebitz, G. M. (2017). Chitosan hydrogel formation using laccase activated phenolics as cross-linkers. Carbohydrate Polymers, 157, 814–822. https://doi.org/10.1016/j.carbpol.2016.10.012

Husain, M. S. B., Gupta, A., Alashwal, B. Y., & Sharma, S. (2018). Synthesis of PVA/PVP based hydrogel for biomedical applications: a review. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects, 40(20), 2388– 2393. https://doi.org/10.1080/15567036.2018.1495786

Janusz, G., Pawlik, A., Świderska-Burek, U., Polak, J., Sulej, J., Jarosz- Wilkołazka, A., & Paszczyński, A. (2020, February 1). Laccase properties, physiological functions, and evolution. International Journal of Molecular Sciences, Vol. 21. MDPI AG. https://doi.org/10.3390/ijms21030966

Jiang, H., Yang, L., Tian, G., Huang, X., Xu, D., Li, L., … Li, Y. (2024). Water- soluble and environmentally friendly polyvinyl alcohol/straw aerogel for sustainable packaging. Industrial Crops and Products, 222, 119895. https://doi.org/10.1016/j.indcrop.2024.119895

Liang, X., Zhong, H.-J., Ding, H., Yu, B., Ma, X., Liu, X., … He, J. (2024).

Magaña, H., & Bucio, E. (2021). Hydrogels Classification According to the Physical or Chemical Interactions and as Stimuli-Sensitive Materials. Gels, 7(4), 182. https://doi.org/10.3390/gels7040182

Mayolo-Deloisa, K., González-González, M., & Rito-Palomares, M. (2020). Laccases in Food Industry: Bioprocessing, Potential Industrial and Biotechnological Applications. Frontiers in Bioengineering and Biotechnology,8. https://doi.org/10.3389/fbioe.2020.00222

Mayr, S. A., Wagner, S., Nagl, R., Pellis, A., Gigli, M., Crestini, C., … Schwaiger, N. (2023). Physicochemical Insights into Enzymatic Polymerization of Lignosulfonates. ACS Sustainable Chemistry and Engineering, 11(50), 17739–17751. https://doi.org/10.1021/acssuschemeng.3c05521

Michalik, R., & Wandzik, I. (2020, October 1). A mini-review on chitosan-based hydrogels with potential for sustainable agricultural applications. Polymers, Vol. 12, pp. 1–16. MDPI AG. https://doi.org/10.3390/polym12102425

Morandim‐Giannetti, A. de A., Rubio, S. R., Nogueira, R. F., Ortega, F. dos S., Magalhães Junior, O., Schor, P., & Bersanetti, P. A. (2018). Characterization of PVA/glutaraldehyde hydrogels obtained using Central Composite Rotatable Design (CCRD). Journal of Biomedical Materials Research Part B: Applied Biomaterials, 106(4), 1558–1566. https://doi.org/10.1002/jbm.b.33958

Nie, G., Hong, K., Zhang, E., Liu, N., Wang, M., Wang, L., & Zang, Y. (2020). Fabrication of a porous chitosan/poly-(γ-glutamic acid) hydrogel with a high absorption capacity by electrostatic contacts. International Journal of Biological Macromolecules, 159, 986–994. https://doi.org/10.1016/j.ijbiomac.2020.05.112

OU, A., & BO, I. (2017). Chitosan Hydrogels and their Glutaraldehyde- Crosslinked Counterparts as Potential Drug Release and Tissue Engineering Systems - Synthesis, Characterization, Swelling Kinetics and Mechanism. Journal of Physical Chemistry & Biophysics, 07(03). https://doi.org/10.4172/2161-0398.1000256

Polymers, 16(14), 2021. https://doi.org/10.3390/polym16142021 Bustamante-Torres, M., Romero-Fierro, D., Arcentales-Vera, B., Palomino, K.,

Polyvinyl Alcohol (PVA)-Based Hydrogels: Recent Progress in Fabrication, Properties, and Multifunctional Applications. Polymers, 16(19), 2755. https://doi.org/10.3390/polym16192755

Qiao, Z., Lv, X., He, S., Bai, S., Liu, X., Hou, L., … Yang, H. (2021). A mussel- inspired supramolecular hydrogel with robust tissue anchor for rapid hemostasis of arterial and visceral bleedings. Bioactive Materials, 6(9), 2829– 2840. https://doi.org/10.1016/j.bioactmat.2021.01.039

Rodríguez-Escribano, D., de Salas, F., Pardo, I., & Camarero, S. (2017). High- throughput screening assay for laccase engineering toward lignosulfonate valorization. International Journal of Molecular Sciences, 18(8). https://doi.org/10.3390/ijms18081793

S. I. (2023). Design, characterization and evaluation of gelatin/carboxymethyl cellulose hydrogels for effective delivery of ciprofloxacin. Polymer Bulletin, 80(11), 12271–12299. https://doi.org/10.1007/s00289-022-04657-6

Sahar, F., Riaz, A., Malik, N. S., Gohar, N., Rasheed, A., Tulain, U. R., … Shah,

Saoudi, O., & Ghaouar, N. (2019). Biocatalytic characterization of free and immobilized laccase from Trametes versicolor in its activation zone. International Journal of Biological Macromolecules, 128, 681–691. https://doi.org/10.1016/j.ijbiomac.2019.01.199

Shajahan Haima, J., Narayanan Nair, S., Juliet, S., Ravindran Nisha, A., Nair, B., & Nair Dhanushkrishna, B. (2021). Synthesis and characterisation of glutaraldehyde cross-linked κ-carrageenan-gelatin hydrogel. ~ 459 ~ Journal of Pharmacognosy and Phytochemistry, 10(1), 459–463. Retrieved from www.phytojournal.com

Supriya Bhatt, S., Thakur, G., & Nune, M. (2023). Preparation and characterization of PVA/Chitosan cross-linked 3D scaffolds for liver tissue engineering. Materials Today: Proceedings. https://doi.org/10.1016/j.matpr.2023.02.251

Tang, S., Zhao, L., Yuan, J., Chen, Y., & Leng, Y. (2020). Physical hydrogels based on natural polymers. In Hydrogels Based on Natural Polymers (pp. 51– 89). Elsevier. https://doi.org/10.1016/B978-0-12-816421-1.00003-3

Teng, X., Xu, H., Song, W., Shi, J., Xin, J., Hiscox, W. C., & Zhang, J. (2017). Preparation and Properties of Hydrogels Based on PEGylated Lignosulfonate Amine. ACS Omega, 2(1), 251–259. https://doi.org/10.1021/acsomega.6b00296

Treesuppharat, W., Rojanapanthu, P., Siangsanoh, C., Manuspiya, H., & Ummartyotin, S. (2017). Synthesis and characterization of bacterial cellulose and gelatin-based hydrogel composites for drug-delivery systems. Biotechnology Reports, 15, 84–91. https://doi.org/10.1016/j.btre.2017.07.002

Tuan Mohamood, N. F. A.-Z., Zainuddin, N., Ahmad@Ayob, M., & Tan, S. W. (2018). Preparation, optimization and swelling study of carboxymethyl sago starch (CMSS)–acid hydrogel. Chemistry Central Journal, 12(1), 133. https://doi.org/10.1186/s13065-018-0500-8

Upadhyay, P., Shrivastava, R., & Agrawal, P. K. (2016). Bioprospecting and biotechnological applications of fungal laccase. 3 Biotech, 6(1), 15. https://doi.org/10.1007/s13205-015-0316-3

Vo, T. S., Vo, T. T. B. C., Tran, T. T., & Pham, N. D. (2022). Enhancement of water absorption capacity and compressibility of hydrogel sponges prepared from gelatin/chitosan matrix with different polyols. Progress in Natural Science: Materials International, 32(1), 54–62. https://doi.org/https://doi.org/10.1016/j.pnsc.2021.10.001

Wang, M., Hu, D.-D., Li, Y.-D., Peng, H.-Q., & Zeng, J.-B. (2022). Biobased mussel-inspired underwater superoleophobic chitosan derived complex hydrogel coated cotton fabric for oil/water separation. International Journal of Biological Macromolecules, 209, 279–289. https://doi.org/10.1016/j.ijbiomac.2022.04.007

Wang, X., Zhou, Z., Guo, X., He, Q., Hao, C., & Ge, C. (2016). Ultrasonic- assisted synthesis of sodium lignosulfonate-grafted poly(acrylic acid-co- poly(vinyl pyrrolidone)) hydrogel for drug delivery. RSC Advances, 6(42), 35550–35558. https://doi.org/10.1039/C6RA03398A

Zainal, S. H., Mohd, N. H., Suhaili, N., Anuar, F. H., Lazim, A. M., & Othaman,R. (2021). Preparation of cellulose-based hydrogel: a review. Journal of Materials Research and Technology, 10, 935–952. https://doi.org/10.1016/j.jmrt.2020.12.012

Zhang, Z., Liu, Y., Lin, S., & Wang, Q. (2020). Preparation and properties of glutaraldehyde crosslinked poly(vinyl alcohol) membrane with gradient structure. Journal of Polymer Research, 27(8), 228.https://doi.org/10.1007/s10965-020-02223-0

Zhu, M., Liu, X., Tian, Y., Caratenuto, A., Chen, F., & Zheng, Y. (2022). Dome- arrayed chitosan/PVA hydrogel-based solar evaporator for steam generation. Scientific Reports, 12(1), 4403. https://doi.org/10.1038/s41598- 022-08589-z

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Published

2024-08-29

How to Cite

Danu Risqi Yudiargo, & Endry Nugroho Prasetyo. (2024). Lignosulfonate-Chitosan Based Hydrogel Production for Water Storage with Laccase by Trametes versicolor. Asian Journal of Natural Sciences, 3(3), 149–158. https://doi.org/10.55927/ajns.v3i3.13730

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