Cell spheroids as a versatile research platform: formation mechanisms, high throughput production, characterization and applications

Author:

Decarli Monize CaiadoORCID,Amaral Robson,Santos Diogo Peres dos,Tofani Larissa Bueno,Katayama Eric,Rezende Rodrigo Alvarenga,Silva Jorge Vicente Lopes da,Swiech Kamilla,Suazo Claudio Alberto Torres,Mota Carlos,Moroni LorenzoORCID,Moraes Ângela MariaORCID

Abstract

Abstract Three-dimensional (3D) cell culture has tremendous advantages to closely mimic the in vivo architecture and microenvironment of healthy tissue and organs, as well as of solid tumors. Spheroids are currently the most attractive 3D model to produce uniform reproducible cell structures as well as a potential basis for engineering large tissues and complex organs. In this review we discuss, from an engineering perspective, processes to obtain uniform 3D cell spheroids, comparing dynamic and static cultures and considering aspects such as mass transfer and shear stress. In addition, computational and mathematical modeling of complex cell spheroid systems are discussed. The non-cell-adhesive hydrogel-based method and dynamic cell culture in bioreactors are focused in detail and the myriad of developed spheroid characterization techniques is presented. The main bottlenecks and weaknesses are discussed, especially regarding the analysis of morphological parameters, cell quantification and viability, gene expression profiles, metabolic behavior and high-content analysis. Finally, a vast set of applications of spheroids as tools for in vitro study model systems is examined, including drug screening, tissue formation, pathologies development, tissue engineering and biofabrication, 3D bioprinting and microfluidics, together with their use in high-throughput platforms.

Funder

Fundação de Amparo à Pesquisa do Estado de São Paulo

Fundo de Apoio ao Ensino, à Pesquisa e à Extensão/FAEPEX-UNICAMP

Coordenação de Aperfeiçoamento de Pessoal de Nível Superior

Conselho Nacional de Desenvolvimento Científico e Tecnológico

Dutch Province of Limburg

Publisher

IOP Publishing

Subject

Biomedical Engineering,General Medicine,Biomaterials,Biochemistry,Bioengineering,Biotechnology

Reference321 articles.

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