用于腰椎间盘突出治疗的纳米材料的研究进展
Advances in Nanomaterials for the Treatment of Lumbar Disc Herniation
DOI: 10.12677/ACM.2023.13122761, PDF,    科研立项经费支持
作者: 段佑昌:齐鲁理工学院,山东 济南;董 方:济宁医学院附属医院,重症医学科,山东 济宁
关键词: 腰椎间盘突出纳米材料腰椎间盘纳米纤维素Lumbar Disc Herniation Nano Materials Lumbar Disc Nanocellulose
摘要: 纳米材料在腰椎间盘突出治疗中具有巨大潜力。它们可以作为支架和模板促进腰椎间盘细胞增殖和分化,调控细胞外基质合成和降解,并实现针对性药物传递。已有研究报道了纳米纤维素、纳米羟基磷灰石、纳米聚合物等材料的应用。然而,纳米材料在安全性和生物相容性、制备和表征技术改进、临床转化和商业化前景等方面仍面临挑战。未来研究应关注纳米材料与腰椎间盘组织的相互作用机制、安全有效的纳米材料开发和联合应用。纳米材料的临床转化和商业化前景将逐渐明确,为患者提供更好的治疗选择。
Abstract: Nanomaterials have great potential in the treatment of lumbar disc herniation. They can serve as scaffolds and templates to promote the proliferation and differentiation of lumbar disc cells, regu-late the synthesis and degradation of extracellular matrix, and achieve targeted drug delivery. There have been studies reporting the application of materials such as nanocellulose, nano hy-droxyapatite, and nano polymers. However, nanomaterials still face challenges in terms of safety and biocompatibility, improved preparation and characterization techniques, clinical conversion, and commercialization prospects. Future research should focus on the interaction mechanism be-tween nanomaterials and lumbar disc tissue, as well as the development and joint application of safe and effective nanomaterials. The clinical transformation and commercialization prospects of nanomaterials will gradually become clear, providing patients with better treatment options.
文章引用:段佑昌, 董方. 用于腰椎间盘突出治疗的纳米材料的研究进展[J]. 临床医学进展, 2023, 13(12): 19612-19621. https://doi.org/10.12677/ACM.2023.13122761

参考文献

[1] Deyo, R.A. and Mirza, S.K. (2016) Herniated Lumbar Intervertebral Disk. The New England Journal of Medicine, 374, 1763-1772. [Google Scholar] [CrossRef
[2] Che, H., Li, J., Li, Y., Ma, C., Liu, H., Qin, J., Dong, J., Zhang, Z., Xian, C.J., Miao, D., Wang, L. and Ren, Y. (2020) p16 Deficiency Attenuates Intervertebral Disc Degenera-tion by Adjusting Oxidative Stress and Nucleus Pulposus Cell Cycle. eLife, 9, e52570. [Google Scholar] [CrossRef
[3] Chen, C.M., Sun, L.W., Tseng, C., Chen, Y.C. and Wang, G.C. (2020) Surgical Outcomes of Full Endoscopic Spinal Surgery for Lumbar Disc Herniation over a 10-Year Period: A Retrospec-tive Study. PLOS ONE, 15, e0241494. [Google Scholar] [CrossRef] [PubMed]
[4] Bailey, C.S., Rasoulinejad, P., Taylor, D., Sequeira, K., Miller, T., Watson, J., Rosedale, R., Bailey, S.I., Gurr, K.R., Siddiqi, F., Glennie, A. and Urquhart, J.C. (2020) Surgery versus Conservative Care for Persistent Sciatica Lasting 4 to 12 Months. The New England Journal of Medicine, 382, 1093-1102. [Google Scholar] [CrossRef
[5] Makabenta, J.M.V., Nabawy, A., Li, C.H., Schmidt-Malan, S., Patel, R. and Rotello, V.M. (2021) Nanomaterial-Based Therapeutics for Antibiotic-Resistant Bacte-rial Infections. Nature Reviews Microbiology, 19, 23-36. [Google Scholar] [CrossRef] [PubMed]
[6] Wheeler, K.E., Chetwynd, A.J., Fahy, K.M., Hong, B.S., Tochi-huitl, J.A., Foster, L.A. and Lynch, I. (2021) Environmental Dimensions of the Protein Corona. Nature Nanotechnology, 16, 617-629. [Google Scholar] [CrossRef] [PubMed]
[7] Li, C., Chen, J., Lv, Y., Liu, Y., Guo, Q., Wang, J., Wang, C., Hu, P. and Liu, Y. (2022) Recent Progress in Electrospun Nanofiber-Based Degenerated Intervertebral Disc Repair. ACS Biomaterials Science & Engineering, 8, 16-31. [Google Scholar] [CrossRef] [PubMed]
[8] Kague, E., Turci, F., Newman, E., Yang, Y., Brown, K.R., Aglan, M.S., Otaify, G.A., Temtamy, S.A., Ruiz-Perez, V.L., Cross, S., Royall, C.P., Witten, P.E. and Hammond, C.L. (2021) 3D Assessment of Intervertebral Disc Degeneration in Zebrafish Identifies Changes in Bone Density That Prime Disc Disease. Bone Research, 9, Article No. 39. [Google Scholar] [CrossRef] [PubMed]
[9] Ma, X., Kong, D. and Chang, Z. (2022) Preparation of Bismuth Tungstate Nanomaterials with Different Morphologies and Their Effect on Exercise Rehabilitation of Patients with Lum-bar Disc Herniation. Journal of Healthcare Engineering, 2022, Article ID: 1397896.
[10] Raj, P.P. (2008) Intervertebral Disc: Anatomy-Physiology-Pathophysiology-Treatment. Pain Practice, 8, 18-44. [Google Scholar] [CrossRef] [PubMed]
[11] Zhang, G.Z., Liu, M.Q., Chen, H.W., Wu, Z.L., Gao, Y.C., Ma, Z.J., He, X.G. and Kang, X.W. (2021) NF-κB Signalling Pathways in Nucleus Pulposus Cell Function and Inter-vertebral Disc Degeneration. Cell Proliferation, 54, e13057. [Google Scholar] [CrossRef] [PubMed]
[12] Desmoulin, G.T., Pradhan, V. and Milner, T.E. (2020) Mechanical Aspects of Intervertebral Disc Injury and Implications on Biomechanics. Spine, 45, E457-E464. [Google Scholar] [CrossRef
[13] Wu, P.H., Kim, H.S. and Jang, I.T. (2020) Intervertebral Disc Diseases PART 2: A Review of the Current Diagnostic and Treatment Strategies for Intervertebral Disc Disease. International Journal of Molecular Sciences, 21, Article 2135. [Google Scholar] [CrossRef] [PubMed]
[14] Lavé, A., Gondar, R., Demetriades, A.K. and Meling, T.R. (2020) Er-gonomics and Musculoskeletal Disorders in Neurosurgery: A Systematic Review. Acta Neurochirurgica, 162, 2213-2220. [Google Scholar] [CrossRef] [PubMed]
[15] Cunha, C., Silva, A.J., Pereira, P., Vaz, R., Gon-çalves, R.M. and Barbosa, M.A. (2018) The Inflammatory Response in the Regression of Lumbar Disc Herniation. Ar-thritis Research & Therapy, 20, Article No. 251. [Google Scholar] [CrossRef] [PubMed]
[16] Xin, J., Wang, Y., Zheng, Z., Wang, S., Na, S. and Zhang, S. (2022) Treatment of Intervertebral Disc Degeneration. Orthopaedic Surgery, 14, 1271-1280. [Google Scholar] [CrossRef] [PubMed]
[17] Ma, X.L. (2015) A New Pathological Classification of Lumbar Disc Protru-sion and Its Clinical Significance. Orthopaedic Surgery, 7, 1-12. [Google Scholar] [CrossRef] [PubMed]
[18] Wu, D.J., Chen, K., Wei, X.Z., Ni, H.J., Yu, S.Z., Zhu, X.D. and Li, M. (2014) Analysis of Intervertebral Disc-Related Genes. Genetics and Molecular Research, 13, 2032-2038. [Google Scholar] [CrossRef
[19] Zhao, Y., Shen, X., Ma, R., Hou, Y., Qian, Y. and Fan, C. (2021) Biological and Biocompatible Characteristics of Fullerenols Nano-materials for Tissue Engineering. Histology & Histopathology, 36, 725-731.
[20] Braakhuis, H.M., Park, M.V., Gosens, I., De Jong, W.H. and Cassee, F.R. (2014) Physicochemical Characteristics of Nanomaterials That Affect Pulmonary In-flammation. Particle and Fibre Toxicology, 11, Article No. 18. [Google Scholar] [CrossRef] [PubMed]
[21] He, J., Kumar, A., Khan, M. and Lo, I.M.C. (2021) Critical Review of Photocatalytic Disinfection of Bacteria: From Noble Metals- and Carbon Nanomaterials-TiO2 Composites to Chal-lenges of Water Characteristics and Strategic Solutions. Science of The Total Environment, 758, Article ID: 143953. [Google Scholar] [CrossRef] [PubMed]
[22] Dewle, A., Rakshasmare, P. and Srivastava, A. (2021) A Polycaprolactone (PCL)-Supported Electrocompacted Aligned Collagen Type-I Patch for Annulus Fibrosus Repair and Regeneration. ACS Applied Bio Materials, 4, 1238-1251. [Google Scholar] [CrossRef] [PubMed]
[23] Feng, G., Jin, X., Hu, J., Ma, H., Gupte, M.J., Liu, H. and Ma, P.X. (2011) Effects of Hypoxias and Scaffold Architecture on Rabbit Mesenchymal Stem Cell Differentiation towards a Nu-cleus Pulposus-Like Phenotype. Biomaterials, 32, 8182-8189. [Google Scholar] [CrossRef] [PubMed]
[24] Pereira, D.R., Silva-Correia, J., Oliveira, J.M., Reis, R.L., Pandit, A. and Biggs, M.J. (2018) Nanocellulose Reinforced Gellan-Gum Hydrogels as Potential Biological Substitutes for Annulus Fibrosus Tissue Regeneration. Nanomedicine: Nanotechnology, Biology and Medicine, 14, 897-908. [Google Scholar] [CrossRef] [PubMed]
[25] Li, W., Huang, C., Ma, T., Wang, J., Liu, W., Yan, J., Sheng, G., Zhang, R., Wu, H. and Liu, C. (2021) Low-Frequency Electromagnetic Fields Combined with Tissue Engineering Tech-niques Accelerate Intervertebral Fusion. Stem Cell Research & Therapy, 12, Article No. 143. [Google Scholar] [CrossRef] [PubMed]
[26] Schumacher, M., Habibović, P. and van Rijt, S. (2022) Pep-tide-Modified Nano-Bioactive Glass for Targeted Immobilization of Native VEGF. ACS Applied Materials & Interfaces, 14, 4959-4968. [Google Scholar] [CrossRef] [PubMed]
[27] Rajpoot, K. (2019) Solid Lipid Nanoparticles: A Promising Nanomaterial in Drug Delivery. Current Pharmaceutical Design, 25, 3943-3959. [Google Scholar] [CrossRef] [PubMed]
[28] Song, J., Lu, C., Leszek, J. and Zhang, J. (2021) De-sign and Development of Nanomaterial-Based Drug Carriers to Overcome the Blood-Brain Barrier by Using Different Transport Mechanisms. International Journal of Molecular Sciences, 22, Article 10118. [Google Scholar] [CrossRef] [PubMed]
[29] Wang, Y., Pisapati, A.V., Zhang, X.F. and Cheng, X. (2021) Recent Developments in Nanomaterial-Based Shear-Sensitive Drug Delivery Systems. Advanced Healthcare Materials, 10, e2002196. [Google Scholar] [CrossRef] [PubMed]
[30] Khosa, A., Reddi, S. and Saha, R.N. (2018) Nanostruc-tured Lipid Carriers for Site-Specific Drug Delivery. Biomedicine & Pharmacotherapy, 103, 598-613. [Google Scholar] [CrossRef] [PubMed]
[31] Rhazouani, A., Gamrani, H., El Achaby, M., Aziz, K., Gebrati, L., Uddin, M.S. and Aziz, F. (2021) Synthesis and Toxicity of Graphene Oxide Nanoparticles: A Literature Review of in vitro and in vivo Studies. BioMed Research International, 2021, Article ID: 5518999. [Google Scholar] [CrossRef] [PubMed]
[32] Boraschi, D., Li, D., Li, Y. and Italiani, P. (2021) In vitro and in vivo Models to Assess the Immune-Related Effects of Nanomaterials. International Journal of Environmental Research and Public Health, 18, Article 11769. [Google Scholar] [CrossRef] [PubMed]
[33] Keshavan, S., Bannuscher, A., Drasler, B., Barosova, H., Petri-Fink, A. and Rothen-Rutishauser, B. (2023) Comparing Species-Different Responses in Pulmonary Fibrosis Research: Current Understanding of in vitro Lung Cell Models and Nanomaterials. European Journal of Pharmaceutical Sciences, 183, Ar-ticle ID: 106387. [Google Scholar] [CrossRef] [PubMed]
[34] Xie, J., Shen, Z., Anraku, Y., Kataoka, K. and Chen, X. (2019) Nanomaterial-Based Blood-Brain-Barrier (BBB) Crossing Strategies. Biomaterials, 224, Article ID: 119491. [Google Scholar] [CrossRef] [PubMed]
[35] Lopes, J., Lopes, D., Pereira-Silva, M., Peixoto, D., Veiga, F., Hamblin, M.R., Conde, J., Corbo, C., Zare, E.N., Ashrafizadeh, M., Tay, F.R., Chen, C., Donnelly, R.F., Wang, X., Makvandi, P. and Paiva-Santos, A.C. (2022) Macrophage Cell Membrane-Cloaked Nanoplatforms for Biomedical Ap-plications. Small Methods, 6, e2200289. [Google Scholar] [CrossRef] [PubMed]
[36] DeLoid, G.M., Cohen, J.M., Pyrgiotakis, G. and Demokritou, P. (2017) Preparation, Characterization, and in vitro Dosimetry of Dispersed, Engineered Nanomaterials. Nature Protocols, 12, 355-371. [Google Scholar] [CrossRef] [PubMed]