Composite Bone Cements with Enhanced Drug Elution

Author:

Cherednichenko Kirill1ORCID,Sayfutdinova Adeliya1ORCID,Rimashevskiy Denis12ORCID,Malik Birzhan3,Panchenko Andrey1,Kopitsyna Maria4,Ragnaev Stanislav5ORCID,Vinokurov Vladimir1,Voronin Denis1ORCID,Kopitsyn Dmitry1ORCID

Affiliation:

1. Department of Physical and Colloid Chemistry, Faculty of Chemical and Environmental Engineering, National University of Oil and Gas “Gubkin University”, Moscow 119991, Russia

2. Department of Traumatology and Orthopedics, Peoples’ Friendship University of Russia, Moscow 117198, Russia

3. Astana Medical University, Beybitshilik Street 49a, Astana 010000, Kazakhstan

4. Russian Institute for Scientific and Technical Information “VINITI RAS”, Moscow 125190, Russia

5. Multidisciplinary Hospital Named after Professor Kh.Zh. Makazhanov, Karaganda 100000, Kazakhstan

Abstract

Antibiotic-loaded bone cement (ALBC) has become an indispensable material in orthopedic surgery in recent decades, owing to the possibility of drugs delivery to the surgical site. It is applied for both infection prophylaxis (e.g., in primary joint arthroplasty) and infection treatment (e.g., in periprosthetic infection). However, the introduction of antibiotic to the polymer matrix diminishes the mechanical strength of the latter. Moreover, the majority of the loaded antibiotic remains embedded in polymer and does not participate in drug elution. Incorporation of the various additives to ALBC can help to overcome these issues. In this paper, four different natural micro/nanoscale materials (halloysite, nanocrystalline cellulose, micro- and nanofibrillated cellulose) were tested as additives to commercial Simplex P bone cement preloaded with vancomycin. The influence of all four materials on the polymerization process was comprehensively studied, including the investigation of the maximum temperature of polymerization, setting time, and monomer leaching. The introduction of the natural additives led to a considerable enhancement of drug elution and microhardness in the composite bone cements compared to ALBC. The best combination of the polymerization rate, monomer leaching, antibiotic release, and microhardness was observed for the sample containing nanofibrillated cellulose (NFC).

Funder

Russian Science Foundation

Publisher

MDPI AG

Subject

Polymers and Plastics,General Chemistry

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