Repository Article

·2022 OPEN ACCESS

Acousto-Holographic Reconstruction of Whole-Cell Stiffness Maps

Rahmetullah Varol YTU , Zeynep Karavelioğlu YTU , Sevde Omeroglu , Gizem Aydemir YTU , Aslıhan Karadag , Hanife Ecenur Meco , Ali Anıl Demirçalı YTU , Abdurrahim Yılmaz YTU , Gizem Calibasi‐Kocal , Gülsüm Gençoğlan ,

RePEc: Research Papers in Economics

Abstract

Accurate assessment of cell stiffness distribution is essential due to the critical role of cell mechanobiology in regulation of vital cellular processes like proliferation, adhesion, migration, and motility. Stiffness provides critical information in understanding onset and progress of various diseases, including metastasis and differentiation of cancer. Atomic force microscopy and optical trapping set the gold standard in stiffness measurements. However, their widespread use has been hampered with long processing times, unreliable contact point determination, physical damage to cells, and unsuitability for multiple cell analysis. Here, we demonstrate a simple, fast, label-free, and high-resolution technique using acoustic stimulation and holographic imaging to reconstruct stiffness maps of single cells. We used this acousto-holographic method to determine stiffness maps of HCT116 and CTC-mimicking HCT116 cells and differentiate between them. Our system would enable widespread use of whole-cell stiffness measurements in clinical and research settings for cancer studies, disease modeling, drug testing, and diagnostics.

Keywords

Holography Stiffness Computer graphics (images) Computer science Computer vision Artificial intelligence Optics Physics Engineering Structural engineering

Subject Areas

Cell Image Analysis Techniques ·Biophysics ·Life Sciences
Cellular Mechanics and Interactions ·Cell Biology ·Life Sciences
Electrical and Bioimpedance Tomography ·Electrical and Electronic Engineering ·Physical Sciences