Literature DB >> 21562365

Scalable robotic biofabrication of tissue spheroids.

A Nagy Mehesz1, J Brown, Z Hajdu, W Beaver, J V L da Silva, R P Visconti, R R Markwald, V Mironov.   

Abstract

Development of methods for scalable biofabrication of uniformly sized tissue spheroids is essential for tissue spheroid-based bioprinting of large size tissue and organ constructs. The most recent scalable technique for tissue spheroid fabrication employs a micromolded recessed template prepared in a non-adhesive hydrogel, wherein the cells loaded into the template self-assemble into tissue spheroids due to gravitational force. In this study, we present an improved version of this technique. A new mold was designed to enable generation of 61 microrecessions in each well of a 96-well plate. The microrecessions were seeded with cells using an EpMotion 5070 automated pipetting machine. After 48 h of incubation, tissue spheroids formed at the bottom of each microrecession. To assess the quality of constructs generated using this technology, 600 tissue spheroids made by this method were compared with 600 spheroids generated by the conventional hanging drop method. These analyses showed that tissue spheroids fabricated by the micromolded method are more uniform in diameter. Thus, use of micromolded recessions in a non-adhesive hydrogel, combined with automated cell seeding, is a reliable method for scalable robotic fabrication of uniform-sized tissue spheroids.

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Year:  2011        PMID: 21562365      PMCID: PMC4699548          DOI: 10.1088/1758-5082/3/2/025002

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


  37 in total

1.  Spatial composition of prostate cancer spheroids in mixed and static cultures.

Authors:  Hong Song; Odile David; Sanda Clejan; Carrie L Giordano; Helena Pappas-Lebeau; Li Xu; Kim C O'Connor
Journal:  Tissue Eng       Date:  2004 Jul-Aug

2.  Rapid, large-scale formation of porcine hepatocyte spheroids in a novel spheroid reservoir bioartificial liver.

Authors:  Scott L Nyberg; Joseph Hardin; Bruce Amiot; Upendra A Argikar; Rory P Remmel; Piero Rinaldo
Journal:  Liver Transpl       Date:  2005-08       Impact factor: 5.799

3.  Periosteal cell pellet culture system: a new technique for bone engineering.

Authors:  Mari Akiyama; Hidehiko Nonomura; Syed H Kamil; Ronald A Ignotz
Journal:  Cell Transplant       Date:  2006       Impact factor: 4.064

Review 4.  Stem cells from adipose tissue allow challenging new concepts for regenerative medicine.

Authors:  Marco N Helder; Marlene Knippenberg; Jenneke Klein-Nulend; Paul I J M Wuisman
Journal:  Tissue Eng       Date:  2007-08

Review 5.  Recent advances in three-dimensional multicellular spheroid culture for biomedical research.

Authors:  Ruei-Zeng Lin; Ruei-Zhen Lin; Hwan-You Chang
Journal:  Biotechnol J       Date:  2008-10       Impact factor: 4.677

6.  Extended liver-specific functions of porcine hepatocyte spheroids entrapped in collagen gel.

Authors:  A Lazar; H J Mann; R P Remmel; R A Shatford; F B Cerra; W S Hu
Journal:  In Vitro Cell Dev Biol Anim       Date:  1995-05       Impact factor: 2.416

7.  Scaffold-free three-dimensional cell culture utilizing micromolded nonadhesive hydrogels.

Authors:  Anthony P Napolitano; Dylan M Dean; Alan J Man; Jacquelyn Youssef; Don N Ho; Adam P Rago; Matthew P Lech; Jeffrey R Morgan
Journal:  Biotechniques       Date:  2007-10       Impact factor: 1.993

Review 8.  The use of 3-D cultures for high-throughput screening: the multicellular spheroid model.

Authors:  Leoni A Kunz-Schughart; James P Freyer; Ferdinand Hofstaedter; Reinhard Ebner
Journal:  J Biomol Screen       Date:  2004-06

9.  Controlling size, shape and homogeneity of embryoid bodies using poly(ethylene glycol) microwells.

Authors:  Jeffrey M Karp; Judy Yeh; George Eng; Junji Fukuda; James Blumling; Kahp-Yang Suh; Jianjun Cheng; Alborz Mahdavi; Jeffrey Borenstein; Robert Langer; Ali Khademhosseini
Journal:  Lab Chip       Date:  2007-05-02       Impact factor: 6.799

Review 10.  Stem cells from adipose tissue.

Authors:  Malgorzata Witkowska-Zimny; Katarzyna Walenko
Journal:  Cell Mol Biol Lett       Date:  2011-03-09       Impact factor: 5.787

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  16 in total

1.  Core-shell hydrogel beads with extracellular matrix for tumor spheroid formation.

Authors:  L Yu; S M Grist; S S Nasseri; E Cheng; Y-C E Hwang; C Ni; K C Cheung
Journal:  Biomicrofluidics       Date:  2015-04-17       Impact factor: 2.800

Review 2.  Current research trends and challenges in tissue engineering for mending broken hearts.

Authors:  Muhammad Qasim; Pala Arunkumar; Heather M Powell; Mahmood Khan
Journal:  Life Sci       Date:  2019-05-17       Impact factor: 5.037

3.  Three-Dimensional Printed Stamps for the Fabrication of Patterned Microwells and High-Throughput Production of Homogeneous Cell Spheroids.

Authors:  Tomas Gonzalez-Fernandez; Alejandro J Tenorio; J Kent Leach
Journal:  3D Print Addit Manuf       Date:  2020-06-05       Impact factor: 5.449

Review 4.  Three-Dimensional Printing and Cell Therapy for Wound Repair.

Authors:  Sylvia van Kogelenberg; Zhilian Yue; Jeremy N Dinoro; Christopher S Baker; Gordon G Wallace
Journal:  Adv Wound Care (New Rochelle)       Date:  2018-05-01       Impact factor: 4.730

5.  3D printing facilitated scaffold-free tissue unit fabrication.

Authors:  Yu Tan; Dylan J Richards; Thomas C Trusk; Richard P Visconti; Michael J Yost; Mark S Kindy; Christopher J Drake; William Scott Argraves; Roger R Markwald; Ying Mei
Journal:  Biofabrication       Date:  2014-04-10       Impact factor: 9.954

Review 6.  Development and Application of Three-Dimensional Bioprinting Scaffold in the Repair of Spinal Cord Injury.

Authors:  Dezhi Lu; Yang Yang; Pingping Zhang; Zhenjiang Ma; Wentao Li; Yan Song; Haiyang Feng; Wenqiang Yu; Fuchao Ren; Tao Li; Hong Zeng; Jinwu Wang
Journal:  Tissue Eng Regen Med       Date:  2022-06-29       Impact factor: 4.169

7.  A bioink by any other name: terms, concepts and constructions related to 3D bioprinting.

Authors:  William G Whitford; James B Hoying
Journal:  Future Sci OA       Date:  2016-07-22

8.  Fabrication of Custom Agarose Wells for Cell Seeding and Tissue Ring Self-assembly Using 3D-Printed Molds.

Authors:  Hannah A Strobel; Elizabeth L Calamari; Brittany Alphonse; Tracy A Hookway; Marsha W Rolle
Journal:  J Vis Exp       Date:  2018-04-02       Impact factor: 1.355

9.  High-throughput image-based monitoring of cell aggregation and microspheroid formation.

Authors:  Thomas Deckers; Toon Lambrechts; Stefano Viazzi; Gabriella Nilsson Hall; Ioannis Papantoniou; Veerle Bloemen; Jean-Marie Aerts
Journal:  PLoS One       Date:  2018-06-28       Impact factor: 3.240

10.  A Novel SimpleDrop Chip for 3D Spheroid Formation and Anti-Cancer Drug Assay.

Authors:  Xiaoli Liu; Huichao Lin; Jiaao Song; Taiyi Zhang; Xiaoying Wang; Xiaowen Huang; Chengyun Zheng
Journal:  Micromachines (Basel)       Date:  2021-06-10       Impact factor: 2.891

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