Standardized microgel beads as elastic cell mechanical probes

Research output: Contribution to journalResearch articleContributedpeer-review

Contributors

  • S. Girardo - , TUD Dresden University of Technology (Author)
  • N. Träber - , Biotechnology Center, Leibniz Institute of Polymer Research Dresden (Author)
  • K. Wagner - , TUD Dresden University of Technology (Author)
  • G. Cojoc - , Biotechnology Center (Author)
  • C. Herold - , TUD Dresden University of Technology (Author)
  • R. Goswami - , TUD Dresden University of Technology (Author)
  • R. Schlüßler - , TUD Dresden University of Technology (Author)
  • S. Abuhattum - , TUD Dresden University of Technology (Author)
  • A. Taubenberger - , Biotechnology Center (Author)
  • F. Reichel - , TUD Dresden University of Technology (Author)
  • D. Mokbel - , TUD Dresden University of Technology (Author)
  • M. Herbig - , TUD Dresden University of Technology (Author)
  • M. Schürmann - , TUD Dresden University of Technology (Author)
  • P. Müller - , TUD Dresden University of Technology (Author)
  • T. Heida - , Leibniz Institute of Polymer Research Dresden (Author)
  • A. Jacobi - , TUD Dresden University of Technology (Author)
  • E. Ulbricht - , TUD Dresden University of Technology (Author)
  • J. Thiele - , Faculty of Chemistry and Food Chemistry, Leibniz Institute of Polymer Research Dresden (Author)
  • C. Werner - , Center for Regenerative Therapies Dresden, Leibniz Institute of Polymer Research Dresden (Author)
  • J. Guck - , Biotechnology Center (Author)

Abstract

Cell mechanical measurements are gaining increasing interest in biological and biomedical studies. However, there are no standardized calibration particles available that permit the cross-comparison of different measurement techniques operating at different stresses and time-scales. Here we present the rational design, production, and comprehensive characterization of poly-acrylamide (PAAm) microgel beads mimicking size and overall mechanics of biological cells. We produced mono-disperse beads at rates of 20-60 kHz by means of a microfluidic droplet generator, where the pre-gel composition was adjusted to tune the beads' elasticity in the range of cell and tissue relevant mechanical properties. We verified bead homogeneity by optical diffraction tomography and Brillouin microscopy. Consistent elastic behavior of microgel beads at different shear rates was confirmed by AFM-enabled nanoindentation and real-time deformability cytometry (RT-DC). The remaining inherent variability in elastic modulus was rationalized using polymer theory and effectively reduced by sorting based on forward-scattering using conventional flow cytometry. Our results show that PAAm microgel beads can be standardized as mechanical probes, to serve not only for validation and calibration of cell mechanical measurements, but also as cell-scale stress sensors.

Details

Original languageEnglish
Pages (from-to)6245-6261
Number of pages17
JournalJournal of Materials Chemistry. B, Materials for biology and medicine
Volume6
Issue number39
Publication statusPublished - 2018
Peer-reviewedYes

External IDs

PubMed 32254615

Keywords

Research priority areas of TU Dresden

DFG Classification of Subject Areas according to Review Boards