Literature DB >> 25843606

Long term perfusion system supporting adipogenesis.

Rosalyn D Abbott1, Waseem K Raja2, Rebecca Y Wang1, Jordan A Stinson1, Dean L Glettig3, Kelly A Burke4, David L Kaplan5.   

Abstract

Adipose tissue engineered models are needed to enhance our understanding of disease mechanisms and for soft tissue regenerative strategies. Perfusion systems generate more physiologically relevant and sustainable adipose tissue models, however adipocytes have unique properties that make culturing them in a perfusion environment challenging. In this paper we describe the methods involved in the development of two perfusion culture systems (2D and 3D) to test their applicability for long term in vitro adipogenic cultures. It was hypothesized that a silk protein biomaterial scaffold would provide a 3D framework, in combination with perfusion flow, to generate a more physiologically relevant sustainable adipose tissue engineered model than 2D cell culture. Consistent with other studies evaluating 2D and 3D culture systems for adipogenesis we found that both systems successfully model adipogenesis, however 3D culture systems were more robust, providing the mechanical structure required to contain the large, fragile adipocytes that were lost in 2D perfused culture systems. 3D perfusion also stimulated greater lipogenesis and lipolysis and resulted in decreased secretion of LDH compared to 2D perfusion. Regardless of culture configuration (2D or 3D) greater glycerol was secreted with the increased nutritional supply provided by perfusion of fresh media. These results are promising for adipose tissue engineering applications including long term cultures for studying disease mechanisms and regenerative approaches, where both acute (days to weeks) and chronic (weeks to months) cultivation are critical for useful insight.
Copyright © 2015 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Adipose tissue engineering; Long term culture; Perfusion; Silk scaffold; Three dimensional culture

Mesh:

Substances:

Year:  2015        PMID: 25843606      PMCID: PMC4526405          DOI: 10.1016/j.ymeth.2015.03.022

Source DB:  PubMed          Journal:  Methods        ISSN: 1046-2023            Impact factor:   3.608


  36 in total

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