<mods:mods xmlns:mods="http://www.loc.gov/mods/v3" xmlns:METS="http://www.loc.gov/METS/" xmlns:fits="http://hul.harvard.edu/ois/xml/ns/fits/fits_output" xmlns:xlink="http://www.w3.org/1999/xlink" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xmlns:IR="http://dl.lib.brown.edu/md/irdata" xmlns:xs="http://www.w3.org/2001/XMLSchema" xmlns:rights="http://cosimo.stanford.edu/sdr/metsrights/" ID="etd49">
     <mods:titleInfo>
      <mods:title>Neuron Guidance by Biomimetic Topographical Cues</mods:title>
     </mods:titleInfo>
     <mods:name type="personal">
      <mods:namePart>Bruder, Jan M.</mods:namePart>
      <mods:role>
       <mods:roleTerm type="text">creator</mods:roleTerm>
      </mods:role>
     </mods:name>
     <mods:originInfo>
      <mods:copyrightDate keyDate="yes" encoding="w3cdtf">2008</mods:copyrightDate>
     </mods:originInfo>
     <mods:physicalDescription>
      <mods:extent>xxv, 300 p.</mods:extent>
      <mods:digitalOrigin>born digital</mods:digitalOrigin>
     </mods:physicalDescription>
     <mods:note>Thesis (Ph.D.) -- Brown University (2008)</mods:note>
     <mods:name type="personal">
      <mods:namePart>Hoffman-Kim, Diane</mods:namePart>
      <mods:role>
       <mods:roleTerm type="text">director</mods:roleTerm>
      </mods:role>
     </mods:name>
     <mods:name type="personal">
      <mods:namePart>Lysaght, Michael</mods:namePart>
      <mods:role>
       <mods:roleTerm type="text">reader</mods:roleTerm>
      </mods:role>
     </mods:name>
     <mods:name type="personal">
      <mods:namePart>Mathiowitz, Edith</mods:namePart>
      <mods:role>
       <mods:roleTerm type="text">reader</mods:roleTerm>
      </mods:role>
     </mods:name>
     <mods:name type="personal">
      <mods:namePart>Morgan, Jeffrey</mods:namePart>
      <mods:role>
       <mods:roleTerm type="text">reader</mods:roleTerm>
      </mods:role>
     </mods:name>
     <mods:name type="personal">
      <mods:namePart>Buettner, Helen</mods:namePart>
      <mods:role>
       <mods:roleTerm type="text">reader</mods:roleTerm>
      </mods:role>
     </mods:name>
     <mods:name type="corporate">
      <mods:namePart>Brown University. Division of Biology and Medicine. Artificial Organs, Biomaterials, and Cell Technology</mods:namePart>
      <mods:role>
       <mods:roleTerm type="text">sponsor</mods:roleTerm>
      </mods:role>
     </mods:name>
     <mods:genre authority="aat">theses</mods:genre>
     <mods:abstract>My graduate work examined the reaction of neuronal cells to the shape of their extra-cellular environment. Over the last century, many studies have confirmed that external
      topography has a profound influence on cellular behavior. Using geometric, rectangular repeating grooves with size ranges in the tens of micrometers, we were the first to describe "cellular
      bridging" in which a variety of anchorage-dependent cell types including primary rat and human cell cultures as well as a variety of immortal rat, mouse, and human cell lines extended from one
      plateau to an adjacent plateau of a multiple grooved substrate without underlying support. Extending our research to more complex shapes, we developed a platform technology based on a two-stage
      replica molding approach that is capable of reproducing adherent cellular shapes at a macro-, micro-, and nano-scale in various polymeric substrates and thus create cell-shaped polymeric
      surfaces. This allowed us to separate the presentation of cellular shape from cellular biochemistry and characterize cellular behavior in response to cellular shape in the absence of other
      heterogeneous cellular cues that are inherent to cell-cell interactions in co-cultures. Utilizing these novel materials, we were able to show that cellular topography is capable of enhancing
      adhesion, motility, and alignment in the absence of other directional cues. Pilot experiments with nerve guidance channels incorporating cell-shaped biomimetic topography showed increased
      cellular migration and outgrowth from dorsal root ganglion explants on surfaces with aligned biomimetic topography when compared to topographically homogeneous controls. The results of this
      research inform efforts at the basic science level by enabling the deconstruction of cellular environments beyond previous capabilities and quantifying the contribution of cellular and
      extra-cellular matrix shape to cellular behavior. These results also open new avenues to controlling cellular response to implant surfaces. Currently, these techniques and approaches are
      continued and expanded by my colleagues to encompass different organ systems such as the vascular system and the control of differentiation of stem cells by cellular topography.</mods:abstract>
     <mods:subject authority="local">
      <mods:topic>dorsal root ganglion</mods:topic>
     </mods:subject>
     <mods:subject authority="local">
      <mods:topic>topography</mods:topic>
     </mods:subject>
     <mods:subject authority="local">
      <mods:topic>pdms</mods:topic>
     </mods:subject>
     <mods:subject authority="local">
      <mods:topic>poly-dimethylsiloxane</mods:topic>
     </mods:subject>
     <mods:subject authority="local">
      <mods:topic>nerve regeneration</mods:topic>
     </mods:subject>
     <mods:subject authority="local">
      <mods:topic>nerve guidance channel</mods:topic>
     </mods:subject>
     <mods:subject authority="local">
      <mods:topic>replica</mods:topic>
     </mods:subject>
     <mods:subject authority="local">
      <mods:topic>replica molding</mods:topic>
     </mods:subject>
     <mods:subject authority="FAST" authorityURI="http://id.worldcat.org/fast" valueURI="http://id.worldcat.org/fast/1036436"><mods:topic>Neurons</mods:topic></mods:subject><mods:subject authority="FAST" authorityURI="http://id.worldcat.org/fast" valueURI="http://id.worldcat.org/fast/832620"><mods:topic>Biomimetics</mods:topic></mods:subject><mods:subject authority="FAST" authorityURI="http://id.worldcat.org/fast" valueURI="http://id.worldcat.org/fast/1014152"><mods:topic>Medical geography</mods:topic></mods:subject><mods:subject authority="FAST" authorityURI="http://id.worldcat.org/fast" valueURI="http://id.worldcat.org/fast/1763742"><mods:topic>Polydimethylsiloxane</mods:topic></mods:subject><mods:subject authority="FAST" authorityURI="http://id.worldcat.org/fast" valueURI="http://id.worldcat.org/fast/1036509"><mods:topic>Neurosciences</mods:topic></mods:subject><mods:subject authority="FAST" authorityURI="http://id.worldcat.org/fast" valueURI="http://id.worldcat.org/fast/1036139"><mods:topic>Nervous system--Regeneration</mods:topic></mods:subject><mods:recordInfo>
      <mods:recordContentSource authority="marcorg">RPB</mods:recordContentSource>
      <mods:recordCreationDate encoding="iso8601">20091218</mods:recordCreationDate>
     </mods:recordInfo>
    <mods:language><mods:languageTerm type="code" authority="iso639-2b">eng</mods:languageTerm><mods:languageTerm type="text">English</mods:languageTerm></mods:language><mods:identifier type="doi">10.7301/Z0X63K7T</mods:identifier><mods:accessCondition type="rights statement" xlink:href="http://rightsstatements.org/vocab/InC/1.0/">In Copyright</mods:accessCondition><mods:accessCondition type="restriction on access">Collection is open for research.</mods:accessCondition><mods:typeOfResource authority="primo">dissertations</mods:typeOfResource></mods:mods>