Boron and orthopedic implants: A review of the literature

Authors

  • Emin Özkul Department of Orthopedics and Traumatology, Medical Faculty of Dicle University, Diyarbakir, Turkey.
  • Recep Tekin Department of Infectious diseases and Clinical Microbiology, Medical Faculty of Dicle University, Diyarbakir, Turkey.
  • Sait Anıl Ulus Department of Orthopedics and Traumatology, Medical Faculty of Dicle University, Diyarbakir, Turkey.
  • Ramazan Atiç Department of Orthopedics and Traumatology, Medical Faculty of Dicle University, Diyarbakir, Turkey.
  • Şeyhmus Yiğit Department of Orthopedics and Traumatology, Medical Faculty of Dicle University, Diyarbakir, Turkey.
  • Mehmet Sait Akar Department of Orthopedics and Traumatology, Medical Faculty of Dicle University, Diyarbakir, Turkey.
  • Fatih Durgut Department of Orthopedics and Traumatology, Medical Faculty of Dicle University, Diyarbakir, Turkey.
  • Sait Dönmez Department of Orthopedics and Traumatology, Medical Faculty of Dicle University, Diyarbakir, Turkey

DOI:

https://doi.org/10.55018/janh.v4i2.117

Keywords:

Biomaterials, Boron, Orthopedics

Abstract

A material created to interact with biological systems to enhance, treat or modify a tissue, organ, or body function is called a biomaterial. Sutures, dental fillings, needles, catheters, bone plates, and orthopedic implants are the most commonly used medical biomaterials. With the increasing use of orthopedic implants worldwide, there remains significant interest in developing new technologies to improve the effective clinical performance of contemporary treatment modalities and devices. Biomaterials used in orthopedics often require revision due to problems such as wear, corrosion, and infection. These revisions have become a significant burden for the patient and the healthcare system. Boron, with its unique properties, is an element that has the potential to overcome these problems. Therefore, in recent years, the importance of boron elements in the health field as well as in the industrial field has been noticed, making the use of boron in medicine very popular

Downloads

Download data is not yet available.

References

WHO, A. (2020). WHO Methods and Data Sources for Life Tables 1990–2019.

Almasry, M. G. ORTOPEDİK İMPLANTLARIN HASTA VÜCUDUNA BIRAKTIĞI ATIKLAR VE ALERJİK ETKİLERİ (Master's thesis, Fen Bilimleri Enstitüsü).

AK D. (February 23, 2020). Biyomalzeme nedir? Medium https://medium.com/@denizak/biyomalzeme-nedir-a3138e2869f6 (Accessed:2.10.2022).

Fathi, A. M., Mandour, H. S., & Abd El-Hamid, H. K. (2020). Corrosion protection of nano-biphasic calcium phosphate coating on titanium substrate. Current Nanoscience, 16(5), 779-792.

https://fieldnotes.nationalgeographic.org/expedition/mars (Accessed: 03.10.2022)

SARI, E. N., & SOYSAL, Y. Bor Elementi ve Biyolojik Sistemlere Etkisi. Tıp Fakültesi Klinikleri Dergisi, 4(2), 57-65.

DELİBORAN, A. (2020). NEDEN BOR? BORUN ÇEVRE İLE İNSAN, HAYVAN VE BİTKİ SAĞLIĞI AÇISINDAN ÖNEMİ. Bahçe, 49(2), 127-141.

Söğüt, Ö., & Acar, O. (2020). Bor ve sağlık. Literatür Eczacılık Bilimleri Dergisi, 9(1), 11-7.

Rüya, K. U. R. U., & Yarat, A. (2017). Bor ve sağlığımıza olan etkilerine güncel bir bakış. Clinical and Experimental Health Sciences, 7(3), 107-114.

Dicleli, M., Alabalık, U., Bıçak, T., Yıldız, G., Sertakan, H., & Nacir, M. (2022). Plasmacytoma: A Rare Case of Bone Malignancy. Journal of Clinical Trials and Experimental Investigations, 1(1 (March-June)), 17-21.

Akkurt, F., Kalender, E., & Yörükoğlu, A. (2019). Üstün özelliklere sahip ileri teknoloji seramiği: Titanyum diborür. Journal of Boron, 4(4), 203-208.

Joy, J., George, E., Haritha, P., Thomas, S., & Anas, S. (2020). An overview of boron nitride based polymer nanocomposites. Journal of Polymer Science, 58(22), 3115-3141.

Falin, A., Cai, Q., Santos, E. J., Scullion, D., Qian, D., Zhang, R., ... & Li, L. H. (2017). Mechanical properties of atomically thin boron nitride and the role of interlayer interactions. Nature communications, 8(1), 1-9.

Hernandez-Sanchez, E., Domínguez-Galicia, Y. M., Orozco-Álvarez, C., Carrera-Espinoza, R., Herrera-Hernández, H., & Velázquez, J. C. (2014). A study on the effect of the boron potential on the mechanical properties of the borided layers obtained by boron diffusion at the surface of AISI 316L steel. Advances in Materials Science and Engineering, 2014.

Tenmak Boren Bor Araştırma Enstitüsü (b.t.). Borlu alaşımlar. T.C. Enerji ve Tabii Kaynaklar Bakanlığı. https://boren.tenmak.gov.tr/tr/calismaalanlari/arastirma-alanlari/borlu-alasimlar.html (Accessed:24.09.2022).

Ghali, S. N., El-Faramawy, H. S., & Eissa, M. M. (2012). Influence of boron additions on mechanical properties of carbon steel. Journal of Minerals and Materials Characterization and Engineering, 11(10), 995-999.

ŞENSÖZ, H., SAYIN, Z. E., SAVAŞ, M., & ERDOĞAN, Y. Emet Bor Üretim Tesisleri Atıklarının Lityum İçeriğinin İncelenmesi. Afyon Kocatepe Üniversitesi Fen Ve Mühendislik Bilimleri Dergisi, 21(6), 1460-1469.

Er N. (2012). Farklı yüzey özelliklerine sahip dental implant drillerinin kemikte oluşturdukları ısınma etkilerinin değerlendirilmesi. Erciyes Üniversity.

Pan, H. B., Zhao, X. L., Zhang, X., Zhang, K. B., Li, L. C., Li, Z. Y., ... & Chang, J. (2010). Strontium borate glass: potential biomaterial for bone regeneration. Journal of the Royal Society Interface, 7(48), 1025-1031.

Bortolussi, S., Postuma, I., Protti, N., Provenzano, L., Ferrari, C., Cansolino, L., ... & González, S. J. (2017). Understanding the potentiality of accelerator based-boron neutron capture therapy for osteosarcoma: dosimetry assessment based on the reported clinical experience. Radiation Oncology, 12(1), 1-12.

Fujimoto, T., Suzuki, M., Sudo, T., Fujita, I., Sakuma, T., Sakurai, Y., ... & Akisue, T. (2020). Boron neutron capture therapy for clear cell sarcoma. Applied Radiation and Isotopes, 166, 109324.

Özmeriç, A., Tanoğlu, O., Ocak, M., Çelik, H. H., Fırat, A., Kaymaz, F. F., ... & Kaftanoğlu, B. (2020). Intramedullary implants coated with cubic boron nitride enhance bone fracture healing in a rat model. Journal of Trace Elements in Medicine and Biology, 62, 126599.

Hernandez-Rodriguez, M. A., Laverde-Cataño, D. A., Lozano, D., Martinez-Cazares, G., & Bedolla-Gil, Y. (2019). Influence of boron addition on the microstructure and the corrosion resistance of CoCrMo alloy. Metals, 9(3), 307.

Xie, Z., Liu, X., Jia, W., Zhang, C., Huang, W., & Wang, J. (2009). Treatment of osteomyelitis and repair of bone defect by degradable bioactive borate glass releasing vancomycin. Journal of Controlled Release, 139(2), 118-126.

Gonzalez-Chapa, J. A., Peña-Martinez, V. M., Gonzalez, G. M., Vílchez-Cavazos, J. F., Treviño-Rangel, R. J., Salinas-Carmona, M. C., & Rosas-Taraco, A. G. (2022). Glucose and leukocyte esterase levels are possible biomarkers for bacterial septic arthritis. Cirugía y cirujanos, 90(3), 319-331.

Kaplan, Y. (2017). İmplant yapımında kullanılan Ti6Al4V titanyum alaşımının mekanik özelliklerine ve biyouyumluluğuna borlama işleminin etkisi.

Downloads

Additional Files

Published

2022-12-30

How to Cite

Özkul, E., Tekin, R., Ulus, S. A. ., Atiç, R., Yiğit, Şeyhmus ., Akar, M. S. ., Durgut, F., & Dönmez, S. (2022). Boron and orthopedic implants: A review of the literature. Journal of Applied Nursing and Health, 4(2), 312–318. https://doi.org/10.55018/janh.v4i2.117