DEFORMATION RESPONSE OF POLYDIMETHYLSILOXANE SUBSTRATES SUBJECTED TO UNIAXIAL QUASI-STATIC LOADING

被引:0
作者
Vinarsky, Vladimir [1 ]
Martino, Fabiana [1 ]
Forte, Giancarlo [1 ]
Sleichrt, Jan [2 ]
Rada, Vaclav [2 ]
Kytyr, Daniel [2 ]
机构
[1] St Annes Univ Hosp Brno, Int Clin Res Ctr, Pekarka 53, Brno 65691, Czech Republic
[2] Czech Acad Sci, Inst Theoret & Appl Mech, Prosecka 809-76, Prague 19000 9, Czech Republic
来源
17TH YOUTH SYMPOSIUM ON EXPERIMENTAL SOLID MECHANICS (YSESM 2019) | 2019年 / 25卷
关键词
Quasi-static loading; hyperelasticity; polydimethylsiloxane substrates; in-situ loading device;
D O I
10.14311/APP.2019.25.0079
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
To investigate cellular response of cardiomyocytes to substrate mechanics, biocompatible material with stiffness in physiological range is needed. PDMS based material is used for construction of microfluidic organ on chip devices for cell culture due to ease of device preparation, bonding, and possibility of surface functionalization. However it has stiffness orders of magnitude out of physiological range. Therefore, we adapted recently available protocol aiming to prepare substrates which offer stiffness in physiological range 5 - 100 kPa using various mixtures of Sylgard. An in-house developed loading device with single micron position tracking accuracy and sub-micron position sensitivity was adapted for this experimental campaign. All batches of the samples were subjected to uniaxial loading. During quasi-static experiment the samples were compressed to minimally 40 % deformation. The results are represented in the form of stress-strain curves calculated from the acquired force and displacement data and elastic moduli are estimated.
引用
收藏
页码:79 / 82
页数:4
相关论文
共 7 条
  • [1] Deformation analysis of the spongious sample in simulated physiological conditions based on in-situ compression, 4D computed tomography and fast readout detector
    Fila, T.
    Sleichrt, J.
    Kytyr, D.
    Kumpova, I.
    Vopalensky, M.
    Zlamal, P.
    Rada, V.
    Vavrik, D.
    Koudelka, P.
    Senck, S.
    [J]. JOURNAL OF INSTRUMENTATION, 2018, 13
  • [2] Characterization of four functional biocompatible pressure-sensitive adhesives for rapid prototyping of cell-based lab-on-a-chip and organ-on-a-chip systems
    Kratz, S. R. A.
    Eilenberger, C.
    Schuller, P.
    Bachmann, B.
    Spitz, S.
    Ertl, P.
    Rothbauer, M.
    [J]. SCIENTIFIC REPORTS, 2019, 9 (1)
  • [3] Deformation analysis of gellan-gum based bone scaffold using on-the-fly tomography
    Kytyr, Daniel
    Zlamal, Petr
    Koudelka, Petr
    Fila, Tomas
    Krcmarova, Nela
    Kumpova, Ivana
    Vavrik, Daniel
    Gantar, Ana
    Novak, Sasa
    [J]. MATERIALS & DESIGN, 2017, 134 : 400 - 417
  • [4] Development of Polydimethylsiloxane Substrates with Tunable Elastic Modulus to Study Cell Mechanobiology in Muscle and Nerve
    Palchesko, Rachelle N.
    Zhang, Ling
    Sun, Yan
    Feinberg, Adam W.
    [J]. PLOS ONE, 2012, 7 (12):
  • [5] Physico-chemical properties of PDMS surfaces suitable as substrates for cell cultures
    Raczkowska, Joanna
    Prauzner-Bechcicki, Szymon
    Lukes, Jaroslav
    Sepitka, Josef
    Bernasik, Andrzej
    Awsiuk, Kamil
    Paluszkiewicz, Czeslawa
    Pabijan, Joanna
    Lekka, Malgorzata
    Budkowski, Andrzej
    [J]. APPLIED SURFACE SCIENCE, 2016, 389 : 247 - 254
  • [6] MULTI-CHANNEL CONTROL SYSTEM FOR IN-SITU LABORATORY LOADING DEVICES
    Rada, Vaclav
    Fila, Tomas
    Zlamal, Petr
    Kytyr, Daniel
    Koudelka, Petr
    [J]. 16TH YOUTH SYMPOSIUM ON EXPERIMENTAL SOLID MECHANICS, 2018, 18 : 15 - 19
  • [7] Rihova J., 2019, ACTA POLYTECHNICA CT, V25