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SMART MATERIALS AND THEIR ADVANCED BIOMEDICAL APPLICATIONS: HNT AND HNT-POLYMER COMPOSITES

Yıl 2023, Cilt: 31 Sayı: 4, 955 - 974, 22.12.2023
https://doi.org/10.31796/ogummf.1204094

Öz

The aluminosilicate clay minerals (Al2Si2O5(OH)4·nH2O) known to exist in nature are called halloysite nanotubes (HNTs). HNTs, which are found in layered, spherical, flat and other forms, can be obtained naturally as well as synthetically. HNTs with an outer diameter of 50 nm and a length ranging from 500 to 1000 nm have a hollow and nanotube-shaped structure. It has natural deposits in Brazil, Turkey, New Zealand, China, the United States, Korea, Japan, and France, and it is a low-cost material that can be obtained through ore purification. Thanks to their high surface area, large pore volume, rheological properties, high interactions, and high binding capacities with biopolymers, HNTs are used in a wide range of areas. For example, HNTs have become a frequently used material in environmental applications such as wastewater treatment and removal of organic contaminants and dyes. It is also used in the production of nanoelectronics and nanocomposites, catalytic studies, flame retardants in make-up materials, forensic sciences and biomedical fields. The specific properties of HNT used in the biomedical field lead to numerous applications. In this review, it is aimed to present the advantages of HNTs for use in drug delivery systems, immune therapy, anti-infection applications, cancer therapy, bioimaging, biosensing applications, tissue engineering applications, implants and hygiene-cosmetics materials.

Kaynakça

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AKILLI MALZEMELER VE İLERİ BİYOMEDİKAL UYGULAMALARI: HNT VE HNT-POLİMER KOMPOZİTLERİ

Yıl 2023, Cilt: 31 Sayı: 4, 955 - 974, 22.12.2023
https://doi.org/10.31796/ogummf.1204094

Öz

Doğada var olduğu bilinen alüminosilikat kil minerallerine (Al2Si2O5(OH)4·nH2O) halloysit nanotüpler (HNT'ler) olarak adlandırılır. Katmanlı, küresel, yassı ve diğer formlarda bulunan HNT'ler sentetik olarak elde edilebildiği gibi doğal olarak da elde edilebilmektedir. Dış çapı 50 nm ve uzunluğu 500 ile 1000 nm arasında değişen HNT'ler içi boş ve nanotüp şeklinde bir yapıya sahiptir. Brezilya, Türkiye, Yeni Zelanda, Çin, Amerika Birleşik Devletleri, Kore, Japonya ve Fransa'da doğal yatakları bulunan ve cevher saflaştırma yoluyla elde edilebilen düşük maliyetli bir malzemedir. HNT'ler, yüksek yüzey alanları, büyük gözenek hacimleri, reolojik özellikleri, yüksek etkileşimleri ve biyopolimerlerle yüksek bağlanma kapasiteleri sayesinde çok çeşitli alanlarda kullanılırlar. Örneğin, HNT'ler atık su arıtımı ve organik kirleticilerin ve boyaların uzaklaştırılması gibi çevresel uygulamalarda da sıklıkla kullanılan bir malzeme haline gelmiştir. Ayrıca nanoelektronik ve nanokompozitlerin üretiminde, katalitik çalışmalarda, makyaj malzemelerinde alev geciktiricilerde, adli bilimlerde ve biyomedikal alanlarda da kullanılmaktadır. Biyomedikal alanda kullanılan HNT'nin kendine özgü özellikleri çok sayıda uygulama için alternatif bir malzemedir. Bu derlemede, HNT'lerin ilaç taşıyıcı sistemler, immün terapi, anti-enfeksiyon uygulamaları, kanser tedavisi, biyogörüntüleme, biyoalgılama uygulamaları, doku mühendisliği uygulamaları, implantlar ve hijyen-kozmetik malzemelerinde kullanım avantajlarının ortaya konulması amaçlanmaktadır.

Kaynakça

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  • Li, Z., Li, B., Li, X., Lin, Z., Chen, L., Chen, H., ... & Zhang, Y. (2021). Ultrafast in-situ forming halloysite nanotube-doped chitosan/oxidized dextran hydrogels for hemostasis and wound repair. Carbohydrate Polymers, 267, 118155. doi: https://doi.org/10.1016/j.carbpol.2021.118155
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  • Lisuzzo, L., Cavallaro, G., Milioto, S., & Lazzara, G. (2021). Halloysite nanotubes filled with salicylic acid and sodium diclofenac: effects of vacuum pumping on loading and release properties. Journal of Nanostructure in Chemistry, 11(4), 663-673.
  • doi: https://doi.org/10.1007/s40097-021-00391-z
  • Luo, X., Zhang, J., Wu, Y. P., Yang, X., Kuang, X. P., Li, W. X., ... & Liu, M. (2020). Multifunctional [email protected] 3 O 4@[email protected] Nanoplatform for Effective Chemo-Photothermal Combination Therapy of Breast Cancer with MR Imaging. ACS Biomater. Sci. Eng, 6(6), 3361-3374. doi: https://doi.org/10.1021/acsbiomaterials.9b01709
  • Mabrouk, M., Beherei, H. H., & Das, D. B. (2020). Recent progress in the fabrication techniques of 3D scaffolds for tissue engineering. Materials Science and Engineering: C, 110, 110716. doi: https://doi.org/10.1016/j.msec.2020.110716
  • Majumder, S., Viau, C., Brar, A., Xia, J., & George, S. (2022). Silver nanoparticles grafted onto tannic acid-modified halloysite clay eliminated multidrug-resistant Salmonella Typhimurium in a Caenorhabditis elegans model of intestinal infection. Applied Clay Science, 228, 106569. doi: https://doi.org/10.1016/j.clay.2022.106569
  • Massaro, M., Buscemi, G., Arista, L., Biddeci, G., Cavallaro, G., D’Anna, F., ... & Riela, S. (2018). Multifunctional carrier based on halloysite/laponite hybrid hydrogel for kartogenin delivery. ACS Medicinal Chemistry Letters, 10(4), 419-424. doi: https://doi.org/10.1021/acsmedchemlett.8b00465
  • Massaro, M., Licandro, E., Cauteruccio, S., Lazzara, G., Liotta, L. F., Notarbartolo, M., ... & Riela, S. (2022). Nanocarrier based on halloysite and fluorescent probe for intracellular delivery of peptide nucleic acids. Journal of Colloid and Interface Science, 620, 221-233. doi: https://doi.org/10.1016/j.jcis.2022.03.151
  • Mathi, D. B., Gopi, D., & Kavitha, L. (2020, November). Halloysite nanotubes strengthened hydroxyapatite/biopolymer composite coating on titanium for implant applications. In AIP Conference Proceedings (Vol. 2270, No. 1, p. 110025). AIP Publishing LLC. doi: https://doi.org/10.1063/5.0019799
  • Mo, X., Wu, F., Yu, B., Wang, W., & Cai, X. (2020). Folate-PG modified halloysite nanotube for enhancing tumor targeting and anticancer efficacy. Applied Clay Science, 193, 105664. doi: https://doi.org/10.1016/j.clay.2020.105664
  • Molaei, A., & Yousefpour, M. (2019). Preparation of Chitosan-based nanocomposites and biomedical investigations in bone tissue engineering. International Journal of Polymeric Materials and Polymeric Biomaterials, 68(12), 701-713. doi: https://doi.org/10.1080/00914037.2018.1493683
  • Molaei, A., Amadeh, A., Yari, M., & Afshar, M. R. (2016). Structure, apatite inducing ability, and corrosion behavior of chitosan/halloysite nanotube coatings prepared by electrophoretic deposition on titanium substrate. Materials Science and Engineering: C, 59, 740-747. doi: https://doi.org/10.1016/j.msec.2015.10.073
  • Nekounam, H., Gholizadeh, S., Allahyari, Z., Samadian, H., Nazeri, N., Shokrgozar, M. A., & Faridi-Majidi, R. (2021). Electroconductive Scaffolds for Tissue Regeneration: Current opportunities, pitfalls, and potential solutions. Materials Research Bulletin, 134, 111083. doi: https://doi.org/10.1016/j.materresbull.2020.111083
  • Ou, Q., Huang, K., Fu, C., Huang, C., Fang, Y., Gu, Z., ... & Wang, Y. (2020). Nanosilver-incorporated halloysite nanotubes/gelatin methacrylate hybrid hydrogel with osteoimmunomodulatory and antibacterial activity for bone regeneration. Chemical Engineering Journal, 382, 123019. doi: https://doi.org/10.1016/j.cej.2019.123019
  • Panchal, A., Fakhrullina, G., Fakhrullin, R., & Lvov, Y. (2018). Self-assembly of clay nanotubes on hair surface for medical and cosmetic formulations. Nanoscale, 10(38), 18205-18216. doi: https://doi.org/10.1039/C8NR05949G
  • Paul, A., Augustine, R., Hasan, A., Zahid, A. A., Thomas, S., Agatemor, C., & Ghosal, K. (2022). Halloysite nanotube and chitosan polymer composites: Physicochemical and drug delivery properties. Journal of Drug Delivery Science and Technology, 72, 103380. doi: https://doi.org/10.1016/j.jddst.2022.103380
  • Persano, F., Gigli, G., & Leporatti, S. (2021). Halloysite-Based Nanosystems for Biomedical Applications. Clays and Clay Minerals, 1-21. doi: https://doi.org/10.1007/s42860-021-00135-8
  • Prishchenko, D. A., Zenkov, E. V., Mazurenko, V. V., Fakhrullin, R. F., Lvov, Y. M., & Mazurenko, V. G. (2018). Molecular dynamics of the halloysite nanotubes. Physical Chemistry Chemical Physics, 20(8), 5841-5849. https://doi.org/10.1016/j.msec.2020.110716
  • Sa, L., Kaiwu, L., Shenggui, C., Junzhong, Y., Yongguang, J., Lin, W., & Li, R. (2019). 3D printing dental composite resins with sustaining antibacterial ability. Journal of Materials Science, 54(4), 3309-3318. doi: https://doi.org/10.1007/s10853-018-2801-7
  • Sahiner, N., & Sengel, S. B. (2017). Various amine functionalized halloysite nanotube as efficient metal free catalysts for H2 generation from sodium borohydride methanolysis. Applied Clay Science, 146, 517-525. doi:https://doi.org/10.1016/j.clay.2017.07.008
  • Saleh, M., Prajapati, N., Karan, A., Rahman, N., Stavitskaya, A., DeCoster, M., & Lvov, Y. (2021). Halloysite Nanotube Vehicles for Drug Delivery Through a Model Blood–Brain Barrier. Clays and Clay Minerals, 69(5), 603-611. doi: https://doi.org/10.1007/s42860-021-00161-6
  • Same, S., Kadkhoda, J., Navidi, G., Abedi, F., Aghazadeh, M., Milani, M., ... & Davaran, S. (2022). The fabrication of halloysite nanotube-based multicomponent hydrogel scaffolds for bone healing. Journal of Applied Biomaterials & Functional Materials, 20, 22808000221111875. doi: https://doi.org/10.1177/22808000221111875
  • Satish, S., Tharmavaram, M., & Rawtani, D. (2019). Halloysite nanotubes as a nature’s boon for biomedical applications. Nanobiomedicine, 6, 1849543519863625. doi: https://doi.org/10.1177%2F1849543519863625
  • Schmitt, H., Creton, N., Prashantha, K., Soulestin, J., Lacrampe, M. F., & Krawczak, P. (2015). Preparation and characterization of plasticized starch/halloysite porous nanocomposites possibly suitable for biomedical applications. Journal of Applied Polymer Science, 132(4), 41341. doi: https://doi.org/10.1002/app.41341
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  • Shi, Y. F., Tian, Z., Zhang, Y., Shen, H. B., & Jia, N. Q. (2011). Functionalized halloysite nanotube-based carrier for intracellular delivery of antisense oligonucleotides. Nanoscale Research Letters, 6(1), 1-7. doi: https://doi.org/10.1186%2F1556-276X-6-608
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Toplam 108 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Biyomedikal Mühendisliğinde Biyomateryaller
Bölüm Derleme Makaleleri
Yazarlar

Sultan Bütün Şengel 0000-0001-7036-2224

Nilay Tunca 0000-0003-4314-6096

Hatice Deveci 0000-0002-7386-2213

Harun Baş 0000-0001-6783-4964

Vural Bütün 0000-0003-4542-5080

Erken Görünüm Tarihi 22 Aralık 2023
Yayımlanma Tarihi 22 Aralık 2023
Kabul Tarihi 22 Ağustos 2023
Yayımlandığı Sayı Yıl 2023 Cilt: 31 Sayı: 4

Kaynak Göster

APA Bütün Şengel, S., Tunca, N., Deveci, H., Baş, H., vd. (2023). SMART MATERIALS AND THEIR ADVANCED BIOMEDICAL APPLICATIONS: HNT AND HNT-POLYMER COMPOSITES. Eskişehir Osmangazi Üniversitesi Mühendislik Ve Mimarlık Fakültesi Dergisi, 31(4), 955-974. https://doi.org/10.31796/ogummf.1204094
AMA Bütün Şengel S, Tunca N, Deveci H, Baş H, Bütün V. SMART MATERIALS AND THEIR ADVANCED BIOMEDICAL APPLICATIONS: HNT AND HNT-POLYMER COMPOSITES. ESOGÜ Müh Mim Fak Derg. Aralık 2023;31(4):955-974. doi:10.31796/ogummf.1204094
Chicago Bütün Şengel, Sultan, Nilay Tunca, Hatice Deveci, Harun Baş, ve Vural Bütün. “SMART MATERIALS AND THEIR ADVANCED BIOMEDICAL APPLICATIONS: HNT AND HNT-POLYMER COMPOSITES”. Eskişehir Osmangazi Üniversitesi Mühendislik Ve Mimarlık Fakültesi Dergisi 31, sy. 4 (Aralık 2023): 955-74. https://doi.org/10.31796/ogummf.1204094.
EndNote Bütün Şengel S, Tunca N, Deveci H, Baş H, Bütün V (01 Aralık 2023) SMART MATERIALS AND THEIR ADVANCED BIOMEDICAL APPLICATIONS: HNT AND HNT-POLYMER COMPOSITES. Eskişehir Osmangazi Üniversitesi Mühendislik ve Mimarlık Fakültesi Dergisi 31 4 955–974.
IEEE S. Bütün Şengel, N. Tunca, H. Deveci, H. Baş, ve V. Bütün, “SMART MATERIALS AND THEIR ADVANCED BIOMEDICAL APPLICATIONS: HNT AND HNT-POLYMER COMPOSITES”, ESOGÜ Müh Mim Fak Derg, c. 31, sy. 4, ss. 955–974, 2023, doi: 10.31796/ogummf.1204094.
ISNAD Bütün Şengel, Sultan vd. “SMART MATERIALS AND THEIR ADVANCED BIOMEDICAL APPLICATIONS: HNT AND HNT-POLYMER COMPOSITES”. Eskişehir Osmangazi Üniversitesi Mühendislik ve Mimarlık Fakültesi Dergisi 31/4 (Aralık 2023), 955-974. https://doi.org/10.31796/ogummf.1204094.
JAMA Bütün Şengel S, Tunca N, Deveci H, Baş H, Bütün V. SMART MATERIALS AND THEIR ADVANCED BIOMEDICAL APPLICATIONS: HNT AND HNT-POLYMER COMPOSITES. ESOGÜ Müh Mim Fak Derg. 2023;31:955–974.
MLA Bütün Şengel, Sultan vd. “SMART MATERIALS AND THEIR ADVANCED BIOMEDICAL APPLICATIONS: HNT AND HNT-POLYMER COMPOSITES”. Eskişehir Osmangazi Üniversitesi Mühendislik Ve Mimarlık Fakültesi Dergisi, c. 31, sy. 4, 2023, ss. 955-74, doi:10.31796/ogummf.1204094.
Vancouver Bütün Şengel S, Tunca N, Deveci H, Baş H, Bütün V. SMART MATERIALS AND THEIR ADVANCED BIOMEDICAL APPLICATIONS: HNT AND HNT-POLYMER COMPOSITES. ESOGÜ Müh Mim Fak Derg. 2023;31(4):955-74.

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