Literature DB >> 15588394

Measurement of DNA biomarkers for the safety of tissue-engineered medical products, using artificial skin as a model.

Henry Rodriguez1, Catherine O'Connell, Peter E Barker, Donald H Atha, Pawel Jaruga, Mustafa Birincioglu, Michael Marino, Patricia McAndrew, Miral Dizdaroglu.   

Abstract

To test the hypothesis that the process of tissue engineering introduces genetic damage to tissue-engineered medical products, we employed the use of five state-of-the-art measurement technologies to measure a series of DNA biomarkers in commercially available tissue-engineered skin as a model. DNA was extracted from the skin and compared with DNA from cultured human neonatal control cells (dermal fibroblasts and epidermal keratinocytes) and adult human fibroblasts from a 55-year-old donor and a 96-year-old donor. To determine whether tissue engineering caused oxidative DNA damage, gas chromatography/isotope-dilution mass spectrometry and liquid chromatography/isotope-dilution mass spectrometry were used to measure six oxidatively modified DNA bases as biomarkers. Normal endogenous levels of the modified DNA biomarkers were not elevated in tissue-engineered skin when compared with control cells. Next, denaturing high-performance liquid chromatography and capillary electrophoresis-single strand conformation polymorphism were used to measure genetic mutations. Specifically, the TP53 tumor suppressor gene was screened for mutations, because it is the most commonly mutated gene in skin cancer. The tissue-engineered skin was found to be free of TP53 mutations at the level of sensitivity of these measurement technologies. Lastly, fluorescence in situ hybridization was employed to measure the loss of Y chromosome, which is associated with excessive cell passage and aging. Loss of Y chromosome was not detected in the tissue-engineered skin and cultured neonatal cells used as controls. In this study, we have demonstrated that tissue engineering (for TestSkin II) does not introduce genetic damage above the limits of detection of the state-of-the-art technologies used. This work explores the standard for measuring genetic damage that could be introduced during production of novel tissue-engineered products. More importantly, this exploratory work addresses technological considerations that need to be addressed in order to expedite accurate and useful international reference standards for the emerging tissue-engineering industry.

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Year:  2004        PMID: 15588394     DOI: 10.1089/ten.2004.10.1332

Source DB:  PubMed          Journal:  Tissue Eng        ISSN: 1076-3279


  2 in total

1.  Endogenous DNA damage clusters in human skin, 3-D model, and cultured skin cells.

Authors:  Paula V Bennett; Noelle L Cuomo; Sunirmal Paul; Stefan T Tafrov; Betsy M Sutherland
Journal:  Free Radic Biol Med       Date:  2005-09-15       Impact factor: 7.376

2.  In vitro biosafety profile evaluation of multipotent mesenchymal stem cells derived from the bone marrow of sarcoma patients.

Authors:  Enrico Lucarelli; Chiara Bellotti; Melissa Mantelli; Maria Antonietta Avanzini; Rita Maccario; Francesca Novara; Giulia Arrigo; Orsetta Zuffardi; Monia Zuntini; Martina Pandolfi; Luca Sangiorgi; Daniela Lisini; Davide Donati; Serena Duchi
Journal:  J Transl Med       Date:  2014-04-09       Impact factor: 5.531

  2 in total

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