The novel method to calculate mechanical properties of cancer cells based on atomic force microscopy

Journal Title: Acta of Bioengineering and Biomechanics - Year 2016, Vol 18, Issue 1

Abstract

Purpose: Mechanical properties, as the inherent characteristics of cells, play a critical role in many essential physiological processes, including cell differentiation, migration, and growth. The mechanical properties of cells are one of the criteria that help to determine whether the tissue contains lesions at the single cell level, and it is very important for the early prevention and accurate diagnosis of diseases. Atomic force microscopy (AFM) makes it possible to measure the mechanical properties at single cell level in physiological state. This paper presents a novel method to calculate the mechanical properties of cancer cells more accurately through Atomic force microscopy. Methods: A new induced equation of the Hertz’s model, called the differential Hertz’s model, has been proposed to calculate the mechanical properties of cancer cells. Moreover, the substrate effect has also been effectively reduced through comparing the calculated mechanical properties of cell at different cell surface areas. Results: The results indicate that the method utilized to calculate the mechanical properties of cells can effectively eliminate the errors in calculation, caused by the thermal drift of AFM system and the substrate effect, and thus improve the calculation accuracy. Conclusions: The mechanical properties calculated by our method in this study are closer to the actual value. Thus, this method shows potential for use in establishing a standard library of the Young’s modulus.

Authors and Affiliations

Keywords

Related Articles

Effects of the microcrack's shape, size and direction on the poroelastic behaviors of a single osteon: a finite element study

Purpose: In this work, a finite element study is proposed by using the Comsol Multiphysics software to evaluate the effects of microcrack's shape, size and direction on the poroelastic behaviors of a single osteon. Metho...

A novel kinematic model for a functional spinal unit and a lumbar spine

Purpose: The aim of this paper is to present the novel model for the functional spinal unit and spine designed as a rigid mechanism and solve it with methods commonly used in robotics. Methods: The structure of the inter...

Toes function biomechanical investigation through external manipulation integrating analysis

Purpose: This study was aimed to investigate the function of toes while running through comparing bound toes by external-manipulation with natural separate toes by evaluating kinematics and plantar pressure analysis. Met...

Mechanical behaviour of knit synthetic mesh used in hernia surgery

Purpose: There is a discussion in literature concerning mechanical properties and modelling of surgical meshes. An important feature of elastic modulus dependency on load history is taken into account in this paper, as i...

Biomechanical simulation of needle insertion into cornea based on distortion energy failure criterion

Purpose: This paper is mainly about biomechanical behavior of needle insertion into cornea, and proposes a failure criterion to simulate the insertion process which has attracted considerable attention due to its importa...

Download PDF file
  • EP ID EP206816
  • DOI 10.5277/ABB-00286-2015-04
  • Views 62
  • Downloads 0

How To Cite

(2016). The novel method to calculate mechanical properties of cancer cells based on atomic force microscopy. Acta of Bioengineering and Biomechanics, 18(1), -. https://europub.co.uk/articles/-A-206816