Mechanical Analysis of Human Healthy and Cancerous Bone Cells Applying Atomic Force Microscope

Document Type : Original Article

Authors

1 Department of Mechanical Engineering, Damavand branch, Islamic Azad University, Damavand, Tehran, Iran

2 Department of Basic Sciences, Damavand branch, Islamic Azad University, Tehran, Iran

Abstract
In the present investigation, the mechanical properties of mesenchymal stem cells (MSC) and carcinomatous cells of bone tissue (MG-63 and SAOS-2) has been studied applying AFM. Based on the sufficient similarity of mechanical characterizations of normal human osteoblast cells (NHOst) with mesenchymal stem cells (MSC), MSC have been applied instead to NHOst. Due to the outcomes, the elastic modules of MG-63 and SAOS-2 are lower than MSC. The elastic modulus of MG-63 and SOAS-2 cells were estimated before and after chemo and plasma treatment. MTT appraisal has been applied to define the convenient dosages for 24- and 48-h incubations due to the IC50 cell viability concentration. The elastic modules of MG-63 (917 Pa) and SAOS-2 (697 Pa) cell increase to 1.72 (1579 Pa) and 5.44 (4985 Pa) (after 24, 48 h) times compared to untreated MG-63 cell and 1.15 (802 Pa) and 7.49 (5225 Pa) (24, 48 h) times compared to untreated SAOS-2 cell. The plasma treatment increased the elastic modules of MG-63 and SAOS-2 cells. In the second section, the resonant frequencies and enlargement of the frequency response function of the AFM beam’s motions have been analyzed using FEM and experimental procedures by AFM. The outcomes displayed that raising the specimens’ hardness raises the resonant frequency. Lastly, the FEM and experimental outcomes have been evaluated and displayed the good agreement.

Keywords


[1] Anand P, et al. Cancer is a preventable disease that requires major lifestyle changes. Pharmaceutical research. 2008;25:2097-2116.
[2] Dorak M. T, and Karpuzoglu E. Gender differences in cancer susceptibility: an inadequately addressed issue. Frontiers in genetics. 2012;3:268.
[3] Lorenc E, et al. Correlation between biological and mechanical properties of extracellular matrix from colorectal peritoneal metastases in human tissues. Scientific Reports. 2023;13:12175.
[4] Zou W, et al. Biomechanical properties of metastatic breast cancer cells in high glucose and hyperosmolarity environment. Applied Physics Letters. 2023;122:113703.
[5] Najera J, R. Rosenberger M, and Datta M. Atomic Force Microscopy Methods to Measure Tumor Mechanical Properties. Cancers. 2023;15:3285.
[6] Kerdegari S, et al. Insights in cell biomechanics through atomic force microscopy. Materials.2023;16:2980.
[7] Pérez-Domínguez S, et al. Reliable, standardized measurements for cell mechanical properties. Nanoscale. 2023;15:16371-16380.
[8] Trache A, and Meininger G A. Atomic force microscopy (AFM). Current protocols in microbiology.2008; 8: 2C-2.
[9] Moreno-Herrero F., et al. Atomic force microscopy contact, tapping, and jumping modes for imaging biological samples in liquids. Physical Review E. 2004;69: 031915.
[10] Yang Ch -W, et al. Imaging of soft matter with tapping-mode atomic force microscopy and non-contact-mode atomic force microscopy. Nanotechnology. 2007;18:084009.
[11] Eslami S, and Jalili N. A comprehensive modeling and vibration analysis of AFM microcantilevers subjected to nonlinear tip-sample interaction forces. Ultramicroscopy. 2012;117:31-45.
[12] Payam A F. Sensitivity of flexural vibration mode of the rectangular atomic force microscope micro cantilevers in liquid to the surface stiffness variations. Ultramicroscopy. 2013;135:84-88.
[13] Rezaei I, and Sadeghi A. Vibrational behavior of atomic force microscope beam via different polymers and immersion environments. The European Physical Journal Plus. 2021;137:72.
[14] Shao M, et al. Effects of Time‐ Varying Fluid on Dynamical Characteristics of Cantilever Beams: Numerical Simulations and Experimental Measurements. Mathematical Problems in Engineering. 2020; 2020:6679443.
[15] Najera J, R. Rosenberger M, and Datta M. Atomic Force Microscopy Methods to Measure Tumor Mechanical Properties. Cancers. 2023;15:3285.
[16] Jafari A, Sadeghi A, and Lafouti M. Mechanical properties of human kidney cells and their effects on the atomic force microscope beam vibrations. Microscopy Research and Technique. 2024.
[17] Maleki Zadeh N, Sadeghi A, and Lafouti M. Mechanical Properties of Mouse Lung Cells and Their Effects on the Atomic Force Microscope Beam Vibrations. Cell Biochemistry and Biophysics. 2024: 1-21.
[18] Kaur R, Bhardwaj A, and Gupta S. Cancer treatment therapies: traditional to modern approaches to combat cancers. Molecular biology reports. 2023;50:9663-9676.
[19] Anand U, et al. Cancer chemotherapy and beyond: Current status, drug candidates, associated risks and progress in targeted therapeutics. Genes & Diseases. 2023;10:1367-1401.
[20] Chupradit S, et al. Recent advances in cold atmospheric plasma (CAP) for breast cancer therapy. Cell Biology International. 2023;47:327-340.
[21] Dai X, and Zhu K. Cold atmospheric plasma: Novel opportunities for tumor microenvironment targeting. Cancer Medicine. 2023;12:7189-7206.
[22] Koga-Ito C Y, et al. Cold atmospheric plasma as a therapeutic tool in medicine and dentistry. Plasma Chemistry and Plasma Processing. 2024;44:1393-1429.
[23] Rauf A, et al. Reactive oxygen species in biological systems: Pathways, associated diseases, and potential inhibitors—A review. Food Science & Nutrition. 2024;12:675-693.
[24] Glorieux Ch, et al. Targeting ROS in cancer: rationale and strategies. Nature Reviews Drug Discovery. 2024: 1-24.
[25] Toyokuni Sh. The origin and future of oxidative stress pathology: from the recognition of carcinogenesis as an iron addiction with ferroptosis resistance to non‐thermal plasma therapy. Pathology international. 66;2016: 245-259.
[26] Billiau, A., Edy, V. G., Heremans, H., Van Damme, J., Desmyter, J., Georgiades, J. A. and De Somer, P., Human Interferon: Mass Production in a Newly Established Cell Line, MG-63, J. Antimicrob Agents Chemother, 1977;12:11-15.
[27] Foogh. J., Wright, W. C. and Loveless, J. D., Absence of HeLa cell contamination in 169 cell lines derived from human tumors, J. National Cancer Institute.1977;58: 209-14.
[28] Akan T, and Durmuş Ç. A surface dielectric barrier discharge reactor for biological treatments. Journal of Electrostatics. 2023;126:103863.
[29] Lin A, et al. Characterization of non-thermal dielectric barrier discharges for plasma medicine: from plastic well plates to skin surfaces. Plasma Chemistry and Plasma Processing. 2023;43:1587-1612.
[30] Anghel, S. D., A. Simon, and T. Frentiu. Spectroscopic investigations on a low power atmospheric pressure capacitively coupled helium plasma. Plasma Sources Science and Technology. 2008;17:045016.
[31] Weltmann, K-D, et al. Antimicrobial treatment of heat sensitive products by miniaturized atmospheric pressure plasma jets (APPJs). Journal of Physics D: Applied Physics. 2008;41:194008.
[32] Hink, R., Pipa, A. V., Schäfer, J., Caspari, R., Weichwald, R., Foest, R., & Brandenburg, R. Influence of dielectric thickness and electrode structure on the ion wind generation by micro fabricated plasma actuators. Journal of Applied Physics. 2020;40: 405201.
[33] Timoshenko S P, Goodier J N, Theory of Elasticity; McGraw- Hill, New York, 1951.
[34] Derjaguin, B.V., Muller, V.M., Toporov Y.P. Adhesion of Spheres: Effect of Contact Deformations on the Adhesion of Particles, Journal of Colloid and Interface Science. 1975;53:314-326.
[35] Turner, J.A. Non-linear Vibrations of a Beam with Cantilever- Hertzian Contact Boundary Conditions, Journal of Sound and Vibration. 2004;2751:177-191.
[36] Reddy, J.N. An Introduction to the Finite Element Method; McGraw-Hill, New York, 2005.
[37] Korayem, A. H., Alipour, A., Younesian, D., Vibration suppression of atomic-force microscopy cantilevers covered by a piezoelectric layer with tensile force, J. Mech. Sci. Technol. 2018;32:4135–4144.
[38] Lin, Y. H. Vibration analysis of Timoshenko beams traversed by moving loads, Journal of Marine Science and Technology, 1994;2: 25-35.
[39] Almeida, N. D., Klein, A. L., Hogan, E. A., Terhaar, S. J., Kedda, J., Uppal, P., and Sherman, J. H. Cold atmospheric plasma as an adjunct to immunotherapy for glioblastoma multiforme. World Neurosurgery J. 2019; 130: 369-376.
[40] Shimizu, Y., Kihara, T., Haghparast, S. M. A., Yuba, S. and Miyake, J., Simple Display System of Mechanical Properties of Cells and Their Dispersion, PLOS ONE J. 2012; 7: e34305.
Volume 4, Issue 3
Autumn 2024
Pages 513-540

  • Receive Date 31 January 2025
  • Revise Date 24 February 2025
  • Accept Date 02 March 2025