Literature DB >> 28195834

Surface acoustic waves induced micropatterning of cells in gelatin methacryloyl (GelMA) hydrogels.

Shahid M Naseer1, Amir Manbachi, Mohamadmahdi Samandari, Philipp Walch, Yuan Gao, Yu Shrike Zhang, Farideh Davoudi, Wesley Wang, Karen Abrinia, Jonathan M Cooper, Ali Khademhosseini, Su Ryon Shin.   

Abstract

Acoustic force patterning is an emerging technology that provides a platform to control the spatial location of cells in a rapid, accurate, yet contactless manner. However, very few studies have been reported on the usage of acoustic force patterning for the rapid arrangement of biological objects, such as cells, in a three-dimensional (3D) environment. In this study, we report on a bio-acoustic force patterning technique, which uses surface acoustic waves (SAWs) for the rapid arrangement of cells within an extracellular matrix-based hydrogel such as gelatin methacryloyl (GelMA). A proof-of-principle was achieved through both simulations and experiments based on the in-house fabricated piezoelectric SAW transducers, which enabled us to explore the effects of various parameters on the performance of the built construct. The SAWs were applied in a fashion that generated standing SAWs (SSAWs) on the substrate, the energy of which subsequently was transferred into the gel, creating a rapid, and contactless alignment of the cells (<10 s, based on the experimental conditions). Following ultraviolet radiation induced photo-crosslinking of the cell encapsulated GelMA pre-polymer solution, the patterned cardiac cells readily spread after alignment in the GelMA hydrogel and demonstrated beating activity in 5-7 days. The described acoustic force assembly method can be utilized not only to control the spatial distribution of the cells inside a 3D construct, but can also preserve the viability and functionality of the patterned cells (e.g. beating rates of cardiac cells). This platform can be potentially employed in a diverse range of applications, whether it is for tissue engineering, in vitro cell studies, or creating 3D biomimetic tissue structures.

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Year:  2017        PMID: 28195834      PMCID: PMC5421404          DOI: 10.1088/1758-5090/aa585e

Source DB:  PubMed          Journal:  Biofabrication        ISSN: 1758-5082            Impact factor:   9.954


  42 in total

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2.  In situ tissue engineering using magnetically guided three-dimensional cell patterning.

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3.  Forces acting on a small particle in an acoustical field in a viscous fluid.

Authors:  Mikkel Settnes; Henrik Bruus
Journal:  Phys Rev E Stat Nonlin Soft Matter Phys       Date:  2012-01-30

4.  On-chip manipulation of single microparticles, cells, and organisms using surface acoustic waves.

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Journal:  Proc Natl Acad Sci U S A       Date:  2012-06-25       Impact factor: 11.205

5.  Gelatin methacrylate as a promising hydrogel for 3D microscale organization and proliferation of dielectrophoretically patterned cells.

Authors:  Javier Ramón-Azcón; Samad Ahadian; Raquel Obregón; Gulden Camci-Unal; Serge Ostrovidov; Vahid Hosseini; Hirokazu Kaji; Kosuke Ino; Hitoshi Shiku; Ali Khademhosseini; Tomokazu Matsue
Journal:  Lab Chip       Date:  2012-07-09       Impact factor: 6.799

6.  Laser-guided direct writing for three-dimensional tissue engineering.

Authors:  Yaakov Nahmias; Robert E Schwartz; Catherine M Verfaillie; David J Odde
Journal:  Biotechnol Bioeng       Date:  2005-10-20       Impact factor: 4.530

7.  A numerical study of microparticle acoustophoresis driven by acoustic radiation forces and streaming-induced drag forces.

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Journal:  Lab Chip       Date:  2012-11-21       Impact factor: 6.799

8.  Microfluidic patterning for fabrication of contractile cardiac organoids.

Authors:  Ali Khademhosseini; George Eng; Judy Yeh; Peter A Kucharczyk; Robert Langer; Gordana Vunjak-Novakovic; Milica Radisic
Journal:  Biomed Microdevices       Date:  2007-04       Impact factor: 2.838

9.  Biotunable acoustic node assembly of organoids.

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10.  Precision assembly of complex cellular microenvironments using holographic optical tweezers.

Authors:  Glen R Kirkham; Emily Britchford; Thomas Upton; James Ware; Graham M Gibson; Yannick Devaud; Martin Ehrbar; Miles Padgett; Stephanie Allen; Lee D Buttery; Kevin Shakesheff
Journal:  Sci Rep       Date:  2015-02-26       Impact factor: 4.379

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  25 in total

1.  Background-free fibre optic Brillouin probe for remote mapping of micromechanics.

Authors:  YuChen Xiang; Carin Basirun; Joshua Chou; Majid E Warkiani; Peter Török; Yingying Wang; Shoufei Gao; Irina V Kabakova
Journal:  Biomed Opt Express       Date:  2020-10-26       Impact factor: 3.732

2.  Acoustofluidic Holography for Micro- to Nanoscale Particle Manipulation.

Authors:  Yuyang Gu; Chuyi Chen; Joseph Rufo; Chen Shen; Zeyu Wang; Po-Hsun Huang; Hai Fu; Peiran Zhang; Steven A Cummer; Zhenhua Tian; Tony Jun Huang
Journal:  ACS Nano       Date:  2020-06-23       Impact factor: 15.881

Review 3.  Surface acoustic wave (SAW) techniques in tissue engineering.

Authors:  Deming Jiang; Jingwen Liu; Yuxiang Pan; Liujing Zhuang; Ping Wang
Journal:  Cell Tissue Res       Date:  2021-08-14       Impact factor: 5.249

Review 4.  Bioinks and Bioprinting Strategies for Skeletal Muscle Tissue Engineering.

Authors:  Mohamadmahdi Samandari; Jacob Quint; Alejandra Rodríguez-delaRosa; Indranil Sinha; Olivier Pourquié; Ali Tamayol
Journal:  Adv Mater       Date:  2022-02-03       Impact factor: 30.849

5.  Colloidal multiscale porous adhesive (bio)inks facilitate scaffold integration.

Authors:  Azadeh Mostafavi; Mohamadmahdi Samandari; Mehran Karvar; Mahsa Ghovvati; Yori Endo; Indranil Sinha; Nasim Annabi; Ali Tamayol
Journal:  Appl Phys Rev       Date:  2021-12       Impact factor: 19.162

Review 6.  Bioengineering approaches to treat the failing heart: from cell biology to 3D printing.

Authors:  Moran Yadid; Hadas Oved; Eric Silberman; Tal Dvir
Journal:  Nat Rev Cardiol       Date:  2021-08-27       Impact factor: 32.419

Review 7.  Recent advances in acoustic microfluidics and its exemplary applications.

Authors:  Yue Li; Shuxiang Cai; Honglin Shen; Yibao Chen; Zhixing Ge; Wenguang Yang
Journal:  Biomicrofluidics       Date:  2022-06-13       Impact factor: 3.258

8.  Enhancing metabolic activity and differentiation potential in adipose mesenchymal stem cells via high-resolution surface-acoustic-wave contactless patterning.

Authors:  Karina Martinez Villegas; Reza Rasouli; Maryam Tabrizian
Journal:  Microsyst Nanoeng       Date:  2022-07-12       Impact factor: 8.006

9.  Contactless, programmable acoustofluidic manipulation of objects on water.

Authors:  Peiran Zhang; Chuyi Chen; Feng Guo; Julien Philippe; Yuyang Gu; Zhenhua Tian; Hunter Bachman; Liqiang Ren; Shujie Yang; Zhanwei Zhong; Po-Hsun Huang; Nicholas Katsanis; Krishnendu Chakrabarty; Tony Jun Huang
Journal:  Lab Chip       Date:  2019-10-09       Impact factor: 6.799

10.  Controlling cellular organization in bioprinting through designed 3D microcompartmentalization.

Authors:  Mohamadmahdi Samandari; Fatemeh Alipanah; Keivan Majidzadeh-A; Mario M Alvarez; Grissel Trujillo-de Santiago; Ali Tamayol
Journal:  Appl Phys Rev       Date:  2021-06       Impact factor: 19.162

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