Literature DB >> 22224660

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

Shawn P Grogan1, Chantal Pauli, Peter Chen, Jiang Du, Christine B Chung, Seong Deok Kong, Clifford W Colwell, Martin K Lotz, Sungho Jin, Darryl D D'Lima.   

Abstract

Manipulation of cell patterns in three dimensions in a manner that mimics natural tissue organization and function is critical for cell biological studies and likely essential for successfully regenerating tissues--especially cells with high physiological demands, such as those of the heart, liver, lungs, and articular cartilage.(1, 2) In the present study, we report on the feasibility of arranging iron oxide-labeled cells in three-dimensional hydrogels using magnetic fields. By manipulating the strength, shape, and orientation of the magnetic field and using crosslinking gradients in hydrogels, multi-directional cell arrangements can be produced in vitro and even directly in situ. We show that these ferromagnetic particles are nontoxic between 0.1 and 10 mg/mL; certain species of particles can permit or even enhance tissue formation, and these particles can be tracked using magnetic resonance imaging. Taken together, this approach can be adapted for studying basic biological processes in vitro, for general tissue engineering approaches, and for producing organized repair tissues directly in situ.

Entities:  

Mesh:

Substances:

Year:  2012        PMID: 22224660      PMCID: PMC3381294          DOI: 10.1089/ten.TEC.2011.0525

Source DB:  PubMed          Journal:  Tissue Eng Part C Methods        ISSN: 1937-3384            Impact factor:   3.056


  49 in total

1.  Analysis of relative gene expression data using real-time quantitative PCR and the 2(-Delta Delta C(T)) Method.

Authors:  K J Livak; T D Schmittgen
Journal:  Methods       Date:  2001-12       Impact factor: 3.608

2.  Construction and harvest of multilayered keratinocyte sheets using magnetite nanoparticles and magnetic force.

Authors:  Akira Ito; Masao Hayashida; Hiroyuki Honda; Ken-Ichiro Hata; Hideaki Kagami; Minoru Ueda; Takeshi Kobayashi
Journal:  Tissue Eng       Date:  2004 May-Jun

Review 3.  Challenges in cardiac tissue engineering.

Authors:  Gordana Vunjak-Novakovic; Nina Tandon; Amandine Godier; Robert Maidhof; Anna Marsano; Timothy P Martens; Milica Radisic
Journal:  Tissue Eng Part B Rev       Date:  2010-04       Impact factor: 6.389

4.  Optically transparent, electrically conductive composite medium.

Authors:  S Jin; T H Tiefel; R Wolfe; R C Sherwood; J J Mottine
Journal:  Science       Date:  1992-01-24       Impact factor: 47.728

5.  Chondrocyte apoptosis induced by nitric oxide.

Authors:  F J Blanco; R L Ochs; H Schwarz; M Lotz
Journal:  Am J Pathol       Date:  1995-01       Impact factor: 4.307

6.  Visual histological grading system for the evaluation of in vitro-generated neocartilage.

Authors:  Shawn Patrick Grogan; Andrea Barbero; Verena Winkelmann; Franz Rieser; James S Fitzsimmons; Shawn O'Driscoll; Ivan Martin; Pierre Mainil-Varlet
Journal:  Tissue Eng       Date:  2006-08

7.  Direct labeling of hMSC with SPIO: the long-term influence on toxicity, chondrogenic differentiation capacity, and intracellular distribution.

Authors:  Chung-Yi Yang; Jong-Kai Hsiao; Ming-Fong Tai; Shin-Tai Chen; Hui-Ying Cheng; Jaw-Lin Wang; Hon-Man Liu
Journal:  Mol Imaging Biol       Date:  2011-06       Impact factor: 3.488

Review 8.  Animal models for cartilage regeneration and repair.

Authors:  Constance R Chu; Michal Szczodry; Stephen Bruno
Journal:  Tissue Eng Part B Rev       Date:  2010-02       Impact factor: 6.389

9.  Designing zonal organization into tissue-engineered cartilage.

Authors:  Blanka Sharma; Christopher G Williams; Tae Kyun Kim; Dongning Sun; Athar Malik; Mehnaz Khan; Kam Leong; Jennifer H Elisseeff
Journal:  Tissue Eng       Date:  2007-02

10.  Design of porous scaffolds for cartilage tissue engineering using a three-dimensional fiber-deposition technique.

Authors:  T B F Woodfield; J Malda; J de Wijn; F Péters; J Riesle; C A van Blitterswijk
Journal:  Biomaterials       Date:  2004-08       Impact factor: 12.479

View more
  5 in total

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

Authors:  Shahid M Naseer; 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
Journal:  Biofabrication       Date:  2017-02-14       Impact factor: 9.954

Review 2.  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

3.  Gravity-based patterning of osteogenic factors to preserve bone structure after osteochondral injury in a large animal model.

Authors:  Hannah M Zlotnick; Ryan C Locke; Sanjana Hemdev; Brendan D Stoeckl; Sachin Gupta; Ana P Peredo; David R Steinberg; James L Carey; Daeyeon Lee; George R Dodge; Robert L Mauck
Journal:  Biofabrication       Date:  2022-07-05       Impact factor: 11.061

4.  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

5.  Biofabrication of in situ Self Assembled 3D Cell Cultures in a Weightlessness Environment Generated using Magnetic Levitation.

Authors:  Muge Anil-Inevi; Sena Yaman; Ahu Arslan Yildiz; Gulistan Mese; Ozden Yalcin-Ozuysal; H Cumhur Tekin; Engin Ozcivici
Journal:  Sci Rep       Date:  2018-05-08       Impact factor: 4.379

  5 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.