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BIOCOMPATIBLE ELASTIC POLYMER NANOCOMPOSITES BASED ON MULTIWALLED CARBON NANOTUBES FOR APPLICATION IN CARDIOVASCULAR SURGERY

https://doi.org/10.17802/2306-1278-2023-12-4S-90-101

Abstract

Highlights

The incorporation of multi-walled carbon nanotubes into the structure of the poly(styrene-block-isobutylene-block-styrene) polymer matrix leads to an increase in the tensile strength and Young's modulus of the nanocomposites. The resulting nanocomposites retain high biocompatibility and can be used as elements of implanted cardiovascular products.

 

Abstract

Aim. To synthesize and modify poly(styrene-block-isobutylene-block-styrene) (SIBS) with two types of multi-walled carbon nanotubes (MWCNTs) in different concentrations to improve its mechanical properties.

Methods. SIBS was synthesized by controlled cationic polymerization. Polymer nanocomposites were prepared using ultrasonic dispersion followed by casting films from a polymer solution. The resulting nanocomposite films were subjected to mechanical tests under uniaxial tensile conditions. Tensile strength, elastic-strain properties, and plastic deformation under cyclic loading were assessed. The structure of the nanocomposites was analyzed by scanning electron microscopy. The hydrophilicity of the surface of the materials was studied by measuring the contact angle with water. The cytotoxicity of the resulting polymer films was assessed by the viability and metabolic activity of endothelial cells cultured on the surface of the nanocomposites.

Results. Polymer nanocomposites with a uniform distribution of MWCNTs in the polymer matrix were obtained. SIBS films modified with 1% MWCNTs with a diameter of 50–90 nm showed an increase in tensile strength by 16.4% compared to SIBS polymer. Increasing the concentration of MWCNTs to 8% led to a decrease in the strength of polymer materials by 19,6%. The inclusion of nanoparticles into the polymer matrix significantly increased the Young's modulus of the studied polymers with a MWCNT content above 4%. With an increase in the content of MWCNTs in the nanocomposites, an increase in hydrophilicity was also observed, while the cytotoxicity of the samples towards endothelial cells was not noted.

Conclusion. Nanocomposites based on SIBS and MWCNTs, due to their high strength and biocompatibility, can become a promising material for the development of various medical products, in particular prosthetic heart valves.

About the Authors

Maria A. Rezvova
Federal State Budgetary Institution “Research Institute for Complex Issues of Cardiovascular Diseases”
Russian Federation

Junior Researcher at the Laboratory of New Biomaterials, Department of Experimental Medicine, Federal State Budgetary Institution “Research Institute of Complex Issues of Cardiovascular Diseases”, Kemerovo, Russian Federation



Pavel A. Nikishau
Research Institute for Physical Chemical Problems of the Belarusian State University
Belarus

PhD, Senior Researcher at the Belarusian State University “Research Institute for Physical Chemical Problems”, Minsk, Republic of Belarus



Sergey V. Kostjuk
Research Institute for Physical Chemical Problems of the Belarusian State University; Belarusian State University; Federal State Autonomous Educational Institution of Higher Education “I.M. Sechenov First Moscow State Medical University” of the Ministry of Health of the Russian Federation (Sechenovsky University)
Russian Federation

PhD, Professor, Chief Researcher at the Belarusian State University “Research Institute of Physical Chemical Problem”, Minsk, Republic of Belarus; Head of the Department of Chemistry of High Molecular Weight Compounds, Chemical Faculty, Belarusian State University, Minsk, Republic of Belarus; Head of the Laboratory of the Synthesis of Medical Polymers, Federal State Autonomous Educational Institution of Higher Education “I.M. Sechenov First Moscow State Medical University” of the Ministry of Health of the Russian Federation (Sechenov University), Moscow, Russian Federation



Miroslav I. Makarevich
Belarusian State University
Belarus

Postgraduate student, Chemical Faculty, Belarusian State University, Minsk, Republic of Belarus



Pavel S. Onishchenko
Federal State Budgetary Institution “Research Institute for Complex Issues of Cardiovascular Diseases”
Russian Federation

Junior Researcher at the Laboratory of New Biomaterials, Department of Experimental Medicine, Federal State Budgetary Institution “Research Institute of Complex Issues of Cardiovascular Diseases”, Kemerovo, Russian Federation



Kirill Y. Klyshnikov
Federal State Budgetary Institution “Research Institute for Complex Issues of Cardiovascular Diseases”
Russian Federation

PhD, Senior Researcher at the Laboratory of New Biomaterials, Department of Experimental Medicine, Federal State Budgetary Institution “Research Institute of Complex Issues of Cardiovascular Diseases”, Kemerovo, Russian Federation



Tatyana V. Glushkova
Federal State Budgetary Institution “Research Institute for Complex Issues of Cardiovascular Diseases”
Russian Federation

PhD, Senior Researcher at the Laboratory of New Biomaterials, Department of Experimental Medicine, Federal State Budgetary Institution “Research Institute of Complex Issues of Cardiovascular Diseases”, Kemerovo, Russian Federation



Alexander E. Kostyunin
Federal State Budgetary Institution “Research Institute for Complex Issues of Cardiovascular Diseases”
Russian Federation

PhD, Senior Researcher at the Laboratory of New Biomaterials, Department of Experimental Medicine, Federal State Budgetary Institution “Research Institute of Complex Issues of Cardiovascular Diseases”, Kemerovo, Russian Federation



Evgeny A. Ovcharenko
Federal State Budgetary Institution “Research Institute for Complex Issues of Cardiovascular Diseases”
Russian Federation

PhD, Head of the Laboratory of New Biomaterials, Department of Experimental Medicine, Federal State Budgetary Institution “Research Institute of Complex Issues of Cardiovascular Diseases”, Kemerovo, Russian Federation



References

1. Teo A.J.T., Mishra A., Park I., Kim Y.-J., Park W.-T., Yoon Y.-J. Polymeric Biomaterials for Medical Implants and Devices. ACS Biomater. Sci. Eng. 2016; 2(4): 454–472. doi:10.1021/acsbiomaterials.5b00429

2. Tetali S.S.V., Fricker A.T.R., van Domburg Y.A., Roy I. Intelligent biomaterials for cardiovascular applications. Curr. Opin. Biomed. Eng. 2023; 28: 100474. doi:10.1016/j.cobme.2023.100474

3. Huab X., Wangab T., Li F., Mao X. Surface modifications of biomaterials in different applied fields. RSC Adv. 2023; 13: 20495-20511. doi:10.1039/D3RA02248J

4. Narayan R. Nanobiomaterials; Woodhead Publishing: Cambridge, UK; 2018. pp. 357–384.

5. Shahbaz A., Hussain N., Mahmood T., Iqbal H.M.N., Emran T.B., Show P.L., Bilal M. Polymer nanocomposites for biomedical applications. In Micro and Nano Technologies, Smart Polymer Nanocomposites Design, Synthesis, Functionalization, Properties, and Applications. Editor(s): Ali N., Bilal M., Khan A., Nguyen T.A., Gupta R.K. Elsevier; 2023. pp. 379-394. doi:10.1016/B978-0-323-91611-0.00012-8

6. Maiti D., Tong X., Mou X., Yang K. Carbon-Based Nanomaterials for Biomedical Applications: A Recent Study. Front. Pharmacol. 2019; 9: 1401. doi:10.3389/fphar.2018.01401

7. Eatemadi A., Daraee H., Karimkhanloo H., Kouhi M., Zarghami N., Akbarzadeh A., Abasi M., Hanifehpour Y., Joo S.W. Carbon nanotubes: Properties, synthesis, purification, and medical applications. Nanoscale Res. Lett. 2014; 9: 393. doi:10.1186/1556-276X-9-393

8. Kalakonda P., Banne S., Kalakonda P. Enhanced mechanical properties of multiwalled carbon nanotubes/thermoplastic polyurethane nanocomposites. Nanomater. Nanotechnol. 2019; 9: 184798041984085. doi: 1847980419840858

9. Crosby A.J., Lee J. Polymer Nanocomposites: The “Nano” Effect on Mechanical Properties. Polym. Rev. 2007; 47(2): 217–229. doi: 10.1080/15583720701271278

10. Tjong S.C. Structural and mechanical properties of polymer nanocomposites. Mater. Sci. Eng. R Rep. 2006; 53(3-4): 73–197. doi: 10.1016/j.mser.2006.06.001

11. Jumaili A., Alancherry S., Bazaka K., Jacob M. Review on the Antimicrobial Properties of Carbon Nanostructures. Materials. 2017; 10(9): 1066. doi: 10.3390/ma10091066

12. Mohd Nurazzi N., Asyraf M.R.M., Khalina A., Abdullah N., Sabaruddin F.A., Kamarudin S.H., Ahmad S., Mahat A.M., Lee C.L., Aisyah H.A. Fabrication, Functionalization, and Application of Carbon Nanotube-Reinforced Polymer Composite: An Overview. Polymers. 2021; 13(7): 1047. doi: 10.3390/polym13071047

13. Alshehri R., Ilyas A.M., Hasan A., Arnaout A., Ahmed F., Memic A. Carbon Nanotubes in Biomedical Applications: Factors, Mechanisms, and Remedies of Toxicity. J. Med. Chem. 2016; 59(18): 8149–8167. doi:10.1021/acs.jmedchem.5b01770

14. Mishra M.K., Sar-Mishra B., Kennedy J.P. Polym. Bull. 1986; 16: 47-53. doi:10.1007/BF01046608

15. Rezvova M.A., Yuzhalin A.E., Glushkova T.V., Makarevich M.I., Nikishau P.A., Kostjuk S.V., Klyshnikov K.Yu., Matveeva V.G., Khanova M.Yu., Ovcharenko E.A. Biocompatible Nanocomposites Based on Poly(styrene-block-isobutylene-block-styrene) and Carbon Nanotubes for Biomedical Application. Polymers. 2020; 12(9): 2158. doi:10.3390/polym12092158

16. Pinchuk L., Wilson G.J., Barry J.J., Schoephoerster R.T., Parel J.M., Kennedy J.P. Medical applications of poly(styrene-block-isobutylene-block-styrene) (“SIBS”). Biomaterials. 2008; 29(4): 448–460. doi: 10.1016/j.biomaterials.2007.09.041

17. Silva M., Alves N.M., Paiva, M.C. Graphene-polymer nanocomposites for biomedical applications. Polym. Adv. Technol. 2017; 29(2): 687–700. doi: 10.1002/pat.4164

18. Gilmore K.J., Moulton S.E., Wallace G.G. Incorporation of carbon nanotubes into the biomedical polymer poly(styrene-β-isobutylene-β-styrene). Carbon. 2007; 45(2): 402–410. doi: 10.1016/j.carbon.2006.09.015

19. Nezami R.F., Athanasiou L.S., Edelman E.R. Chapter 28 - Endovascular drug-delivery and drug-elution systems, Editor(s): Jacques Ohayon, Gerard Finet, Roderic Ivan Pettigrew, In Biomechanics of Living Organs, Biomechanics of Coronary Atherosclerotic Plaque, Academic Press. 2021; 4: 595-631.

20. Salah N., Alfawzan A.M., Saeed A., Alshahrie A., Allafi W. Effective reinforcements for thermoplastics based on carbon nanotubes of oil fly ash. Sci. Rep. 2019; 9: 20288. doi: 10.1038/s41598-019-56777-1.

21. Zhang J., Jiang D. Interconnected multi-walled carbon nanotubes reinforced polymer-matrix composites. Composites Science and Technology. 2011; 71(4): 466–470. doi:10.1016/j.compscitech.2010.12.020.

22. Gaharwar A.K., Patel A., Dolatshahi-Pirouz A., Zhang H., Rangarajan K., Iviglia, G., Shin S.-R., Hussain M.A., Khademhosseini A. Elastomeric nanocomposite scaffolds made from poly(glycerol sebacate) chemically crosslinked with carbon nanotubes. Biomater. Sci. 2015; 3: 46–58.


Review

For citations:


Rezvova M.A., Nikishau P.A., Kostjuk S.V., Makarevich M.I., Onishchenko P.S., Klyshnikov K.Y., Glushkova T.V., Kostyunin A.E., Ovcharenko E.A. BIOCOMPATIBLE ELASTIC POLYMER NANOCOMPOSITES BASED ON MULTIWALLED CARBON NANOTUBES FOR APPLICATION IN CARDIOVASCULAR SURGERY. Complex Issues of Cardiovascular Diseases. 2023;12(4S):90-101. (In Russ.) https://doi.org/10.17802/2306-1278-2023-12-4S-90-101

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