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  <title><![CDATA[BioE PhD Defense Presentation- Michael Hunckler]]></title>
  <body><![CDATA[<p><strong>Advisor: </strong></p>

<p>Andr&eacute;s Garc&iacute;a, PhD (Georgia Institute of Technology)</p>

<p>&nbsp;</p>

<p><strong>Committee Members:</strong></p>

<p>Edward Botchwey, PhD (Georgia Institute of Technology)</p>

<p>Krishnendu Roy, PhD (Georgia Institute of Technology)</p>

<p>Ankur Singh, PhD (Georgia Institute of Technology)</p>

<p>Cristina Nostro, PhD (University of Toronto)</p>

<p>&nbsp;</p>

<p><strong>Synthetic Hydrogels for the Maturation and Engraftment of Stem Cell-Derived Beta Cells</strong></p>

<p>&nbsp;</p>

<p>Stem cell-derived &beta;-cells are positioned to be a transformative cure for type 1 diabetes (T1D) by replacing the insulin-producing &beta;-cells destroyed by the autoimmune system. Human induced pluripotent stem cells (hiPSCs) can differentiate into insulin-producing cells that phenotypically and functionally resemble immature &beta;-cells. While promising, fully functional <em>in vitro</em> differentiation of these hiPSCs into mature &beta;-cells remains elusive. Current <em>in vitro </em>differentiation protocols of hiPSCs cannot provide the precise microenvironmental cues necessary for complete maturation. Consequently, <em>in vivo </em>implantation is often used to direct end-stage maturation of stem cells, resulting in an uncontrolled environment to direct &beta;-cell maturation. Furthermore, there are few suitable delivery vehicles for transplantation to clinically-translatable extrahepatic sites. These challenges highlight the need for strategies that enhance the <em>in vitro</em> maturation of the hiPSC-derived &beta;-cells and improve their engraftment and function in a clinically-translatable transplant site. The objective of this project is to engineer advanced synthetic hydrogels to direct <em>in vitro</em> maturation of hiPSC-derived &beta;-cells and enhance engraftment in an extrahepatic murine site. In Aim 1, I demonstrate that engineered synthetic hydrogels support the viability and differentiation of encapsulated hiPSCs to a mature &beta;-cell stage. In Aim 2, I demonstrate that an engineered vasculogenic synthetic hydrogel supports the engraftment of pancreatic progenitors and immature &beta;-cells into the mouse fat pad. In Aim 3, I develop a novel hydrolytic hydrogel that demonstrates tunable <em>in vivo </em>degradation kinetics to promote enhanced stem cell engraftment and vascularization. This project will provide a significant foundation for translation of hiPSC-derived &beta;-cells into more clinically-relevant sites and establish innovative materials that promote survival, engraftment, and function of hiPSC-derived &beta;-cells.</p>
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