Literature DB >> 10699279

Making microencapsulation work: conformal coating, immobilization gels and in vivo performance.

M V Sefton1, M H May, S Lahooti, J E Babensee.   

Abstract

Microencapsulation of cells as a means of insulin or other protein delivery (for example, for gene therapy) has not yet realized its potential. Three aspects of this problem are illustrated with reference to the use of poly(hydroxyethyl methacrylate-co-methyl methacrylate) (HEMA-MMA). Conformal coating was used to coat cell aggregates with a very thin layer of a water-insoluble HEMA-MMA membrane that conforms to the shape of the aggregate, and minimizes the polymer's contribution to the total transplant volume. Cell aggregates were coated at a liquid-liquid interface of a discontinuous density gradient composed of both aqueous and organic liquids. Aggregates of HepG2 cells were coated and remained viable. Immobilization matrices were co-encapsulated in order to control cell phenotype. Ultralow gelling temperature agarose promoted the proliferation of HEK293 cells, while the viability of transfected C2C12 cells was improved in microcapsules that contained Matrigel. Rat or human hepatoma cells in HEMA-MMA microcapsules lost viability within a week after implantation into an omental pouch in Wistar rats. The loss of viability was attributed to the tissue reaction, although it is not clear if the cells lost their viability in vivo leading to the aggressive tissue reaction or if the latter caused the cells to starve or otherwise die. On the other hand, intraperitoneal implantation of microcapsules containing L929 cells in 'syngeneic' C3H mice in a high-strength agarose gel resulted in maintenance of viability of approximately 50% of the encapsulated cells. While progress is being made on several fronts, this type of tissue engineering construct is still several years away from routine use in humans.

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Year:  2000        PMID: 10699279     DOI: 10.1016/s0168-3659(99)00234-5

Source DB:  PubMed          Journal:  J Control Release        ISSN: 0168-3659            Impact factor:   9.776


  17 in total

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Review 2.  Challenges and emerging technologies in the immunoisolation of cells and tissues.

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Review 3.  Pig-to-Primate Islet Xenotransplantation: Past, Present, and Future.

Authors:  Zhengzhao Liu; Wenbao Hu; Tian He; Yifan Dai; Hidetaka Hara; Rita Bottino; David K C Cooper; Zhiming Cai; Lisha Mou
Journal:  Cell Transplant       Date:  2017-02-03       Impact factor: 4.064

4.  Microfluidic conformal coating of non-spherical magnetic particles.

Authors:  Byeong-Ui Moon; Navid Hakimi; Dae Kun Hwang; Scott S H Tsai
Journal:  Biomicrofluidics       Date:  2014-08-06       Impact factor: 2.800

Review 5.  Treatment of diabetes with encapsulated pig islets: an update on current developments.

Authors:  Hai-tao Zhu; Lu Lu; Xing-yu Liu; Liang Yu; Yi Lyu; Bo Wang
Journal:  J Zhejiang Univ Sci B       Date:  2015-05       Impact factor: 3.066

6.  Antioxidant cerium oxide nanoparticle hydrogels for cellular encapsulation.

Authors:  Jessica D Weaver; Cherie L Stabler
Journal:  Acta Biomater       Date:  2015-01-22       Impact factor: 8.947

Review 7.  Encapsulated cell grafts to treat cellular deficiencies and dysfunction.

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Journal:  Crit Rev Biomed Eng       Date:  2011

8.  Ultrathin polymeric coatings based on hydrogen-bonded polyphenol for protection of pancreatic islet cells.

Authors:  Veronika Kozlovskaya; Oleksandra Zavgorodnya; Yi Chen; Kristin Ellis; Hubert M Tse; Wanxing Cui; J Anthony Thompson; Eugenia Kharlampieva
Journal:  Adv Funct Mater       Date:  2012-04-30       Impact factor: 18.808

9.  Layer-by-layer assembly of a conformal nanothin PEG coating for intraportal islet transplantation.

Authors:  John T Wilson; Wanxing Cui; Elliot L Chaikof
Journal:  Nano Lett       Date:  2008-06-12       Impact factor: 11.189

10.  Colon-targeted delivery of live bacterial cell biotherapeutics including microencapsulated live bacterial cells.

Authors:  Satya Prakash; Aleksandra Malgorzata Urbanska
Journal:  Biologics       Date:  2008-09
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