Printing three-dimensional tissue analogues with decellularized extracellular matrix bioink

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作者
Falguni Pati
Jinah Jang
Dong-Heon Ha
Sung Won Kim
Jong-Won Rhie
Jin-Hyung Shim
Deok-Ho Kim
Dong-Woo Cho
机构
[1] Pohang University of Science and Technology (POSTECH),Department of Mechanical Engineering
[2] Pohang University of Science and Technology (POSTECH),Division of Integrative Biosciences and Biotechnology
[3] University of Washington,Department of Bioengineering
[4] College of Medicine,Department of Otolaryngology
[5] The Catholic University of Korea,Head and Neck Surgery
[6] College of Medicine,Department of Biomedical Science
[7] The Catholic University of Korea,Department of Plastic Surgery
[8] College of Medicine,Department of Mechanical Engineering
[9] The Catholic University of Korea,undefined
[10] Korea Polytechnic University,undefined
[11] Center for Cardiovascular Biology,undefined
[12] University of Washington,undefined
[13] Institute for Stem Cell and Regenerative Medicine,undefined
[14] University of Washington,undefined
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摘要
The ability to print and pattern all the components that make up a tissue (cells and matrix materials) in three dimensions to generate structures similar to tissues is an exciting prospect of bioprinting. However, the majority of the matrix materials used so far for bioprinting cannot represent the complexity of natural extracellular matrix (ECM) and thus are unable to reconstitute the intrinsic cellular morphologies and functions. Here, we develop a method for the bioprinting of cell-laden constructs with novel decellularized extracellular matrix (dECM) bioink capable of providing an optimized microenvironment conducive to the growth of three-dimensional structured tissue. We show the versatility and flexibility of the developed bioprinting process using tissue-specific dECM bioinks, including adipose, cartilage and heart tissues, capable of providing crucial cues for cells engraftment, survival and long-term function. We achieve high cell viability and functionality of the printed dECM structures using our bioprinting method.
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