» Articles » PMID: 26918233

Evaluation of the Proliferation and Viability Rates of Nucleus Pulposus Cells of Human Intervertebral Disk in Fabricated Chitosan-gelatin Scaffolds by Freeze Drying and Freeze Gelation Methods

Overview
Journal Adv Biomed Res
Date 2016 Feb 27
PMID 26918233
Citations 5
Authors
Affiliations
Soon will be listed here.
Abstract

Background: Low back pain is one of the most significant musculoskeletal diseases of our time. Intervertebral disk herniation and central degeneration of the disk are two major reasons for low back pain, which occur because of structural impairment of the disk. The reduction of cell count and extracellular matrix, especially in the nucleus pulposus, causes disk degeneration. Different scaffolds have been used for tissue repairing and regeneration of the intervertebral disk in tissue engineering. Various methods are used for fabrication of the porosity scaffolds in tissue engineering. The freeze drying method has disadvantages such as: It is time consuming, needs high energy, and so on. The freeze-gelation method can save a great deal of time and energy, and large-sized porous scaffolds can be fabricated by this method. In this study, proliferation of the nucleus pulposus (NP) cells of the human intervertebral disk are compromised in the fabricated Chitosan-gelatin scaffolds by freeze drying and freeze gelation methods.

Materials And Methods: The cells were obtained from the nucleus pulposus by collagenase enzymatic hydrolysis. They were obtained from patients who were undergoing open surgery for discectomy in the Isfahan Alzahra Hospital. Chitosan was blended with gelatin. Chitosan polymer, solution after freezing at -80°C, was immersed in sodium hydroxide (NaOH) solution. The cellular suspension was transferred to each scaffold and cultured in plate for 14 days. Cell viability and proliferation were investigated by Trypan blue and MTT assays.

Results: The MTT and Trypan blue assays demonstrated that cell viability and the mean of the cell number showed a significant difference between three and fourteen days, in both scaffolds. Accordingly, there was a significantly decrease in the fabricated chitosan-gelatin scaffold by the freeze-drying method.

Conclusion: The fabricated chitosan-gelatin scaffold by the freeze-gelation method prepared a better condition for proliferation of NP cells when compared with the fabricated chitosan-gelatin scaffold by the freeze drying method.

Citing Articles

Chitosan/Gelatin Scaffolds Loaded with Extract as Potential Skin Tissue Engineering Materials.

de Souza M, da Silva H, Rodrigues J, Macedo M, de Sousa W, Barbosa R Polymers (Basel). 2023; 15(3).

PMID: 36771903 PMC: 9921636. DOI: 10.3390/polym15030603.


Effects of Neutralization on the Physicochemical, Mechanical, and Biological Properties of Ammonium-Hydroxide-Crosslinked Chitosan Scaffolds.

Azueta-Aguayo P, Chuc-Gamboa M, Aguilar-Perez F, Aguilar-Ayala F, Rodas-Junco B, Vargas-Coronado R Int J Mol Sci. 2022; 23(23).

PMID: 36499146 PMC: 9735449. DOI: 10.3390/ijms232314822.


Smart Hydrogels in Tissue Engineering and Regenerative Medicine.

Mantha S, Pillai S, Khayambashi P, Upadhyay A, Zhang Y, Tao O Materials (Basel). 2019; 12(20).

PMID: 31614735 PMC: 6829293. DOI: 10.3390/ma12203323.


Fabrication and Applications of Micro/Nanostructured Devices for Tissue Engineering.

Limongi T, Tirinato L, Pagliari F, Giugni A, Allione M, Perozziello G Nanomicro Lett. 2018; 9(1):1.

PMID: 30460298 PMC: 6223775. DOI: 10.1007/s40820-016-0103-7.


Current strategies for treatment of intervertebral disc degeneration: substitution and regeneration possibilities.

van Uden S, Silva-Correia J, Oliveira J, Reis R Biomater Res. 2017; 21:22.

PMID: 29085662 PMC: 5651638. DOI: 10.1186/s40824-017-0106-6.

References
1.
Chenite A, Chaput C, Wang D, Combes C, Buschmann M, Hoemann C . Novel injectable neutral solutions of chitosan form biodegradable gels in situ. Biomaterials. 2000; 21(21):2155-61. DOI: 10.1016/s0142-9612(00)00116-2. View

2.
Jiankang H, Dichen L, Yaxiong L, Bo Y, Hanxiang Z, Qin L . Preparation of chitosan-gelatin hybrid scaffolds with well-organized microstructures for hepatic tissue engineering. Acta Biomater. 2008; 5(1):453-61. DOI: 10.1016/j.actbio.2008.07.002. View

3.
Miranda S, Silva G, Hell R, Martins M, Alves J, Goes A . Three-dimensional culture of rat BMMSCs in a porous chitosan-gelatin scaffold: A promising association for bone tissue engineering in oral reconstruction. Arch Oral Biol. 2010; 56(1):1-15. DOI: 10.1016/j.archoralbio.2010.08.018. View

4.
Elder S, Nettles D, Bumgardner J . Synthesis and characterization of chitosan scaffolds for cartilage-tissue engineering. Methods Mol Biol. 2004; 238:41-8. DOI: 10.1385/1-59259-428-x:41. View

5.
Bertolo A, Mehr M, Aebli N, Baur M, Ferguson S, Stoyanov J . Influence of different commercial scaffolds on the in vitro differentiation of human mesenchymal stem cells to nucleus pulposus-like cells. Eur Spine J. 2011; 21 Suppl 6:S826-38. PMC: 3535214. DOI: 10.1007/s00586-011-1975-3. View