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<titleInfo><title>MorphOMICs, a tool for mapping microglial morphology, reveals brain region- and sex-dependent phenotypes</title></titleInfo>

  
  
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  <title>ISTA Thesis</title>
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<name type="personal">
  <namePart type="given">Gloria</namePart>
  <namePart type="family">Colombo</namePart>
  <role><roleTerm type="text">author</roleTerm> </role><identifier type="local">3483CF6C-F248-11E8-B48F-1D18A9856A87</identifier><description xsi:type="identifierDefinition" type="orcid">0000-0001-9434-8902</description></name>





<name type="personal">
  
  <namePart type="given">Sandra</namePart>
  
  
  <namePart type="family">Siegert</namePart>
  
  <role> <roleTerm type="text">supervisor</roleTerm> </role>
</name>



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  <namePart></namePart>
  <identifier type="local">GradSch</identifier>
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    <roleTerm type="text">department</roleTerm>
  </role>
</name>

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  <namePart></namePart>
  <identifier type="local">SaSi</identifier>
  <role>
    <roleTerm type="text">department</roleTerm>
  </role>
</name>





<name type="corporate">
  <namePart>International IST Doctoral Program</namePart>
  <role><roleTerm type="text">project</roleTerm></role>
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<abstract lang="eng">Environmental cues influence the highly dynamic morphology of microglia. Strategies to 
characterize these changes usually involve user-selected morphometric features, which 
preclude the identification of a spectrum of context-dependent morphological phenotypes. 
Here, we develop MorphOMICs, a topological data analysis approach, which enables semiautomatic mapping of microglial morphology into an atlas of cue-dependent phenotypes,
overcomes feature-selection bias and minimizes biological variability. 
First, with MorphOMICs we derive the morphological spectrum of microglia across seven 
brain regions during postnatal development and in two distinct Alzheimer’s disease 
degeneration mouse models. We uncover region-specific and sexually dimorphic
morphological trajectories, with females showing an earlier morphological shift than males in 
the degenerating brain. Overall, we demonstrate that both long primary- and short terminal 
processes provide distinct insights to morphological phenotypes. Moreover, using machine 
learning to map novel condition on the spectrum, we observe that microglia morphologies 
reflect a dose-dependent adaptation upon ketamine anesthesia and do not recover to control 
morphologies.
Next, we took advantage of MorphOMICs to build a high-resolution and layer-specific map of 
microglial morphological spectrum in the retina, covering postnatal development and rd10 
degeneration. Here, following photoreceptor death, microglia assume an early developmentlike morphology. Finally, we map microglial morphology following optic nerve crush on the 
retinal spectrum and observe a layer- and sex-dependent response. 
Overall, MorphOMICs opens a new perspective to analyze microglial morphology across 
multiple conditions, and provides a novel tool to characterize microglial morphology beyond 
the traditionally dichotomized view of microglia.</abstract>

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    <url displayLabel="Gloria_Colombo_Thesis.pdf">https://research-explorer.ista.ac.at/download/12378/12380/Gloria_Colombo_Thesis.pdf</url>
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<originInfo><publisher>Institute of Science and Technology Austria</publisher><dateIssued encoding="w3cdtf">2022</dateIssued>
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<language><languageTerm authority="iso639-2b" type="code">eng</languageTerm>
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  <identifier type="issn">2663-337X</identifier><identifier type="doi">10.15479/at:ista:12378</identifier>
<part><extent unit="pages">142</extent>
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  <location>     <url>https://research-explorer.ista.ac.at/record/12244</url>  </location>
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<bibliographicCitation>
<apa>Colombo, G. (2022). &lt;i&gt;MorphOMICs, a tool for mapping microglial morphology, reveals brain region- and sex-dependent phenotypes&lt;/i&gt;. Institute of Science and Technology Austria. &lt;a href=&quot;https://doi.org/10.15479/at:ista:12378&quot;&gt;https://doi.org/10.15479/at:ista:12378&lt;/a&gt;</apa>
<mla>Colombo, Gloria. &lt;i&gt;MorphOMICs, a Tool for Mapping Microglial Morphology, Reveals Brain Region- and Sex-Dependent Phenotypes&lt;/i&gt;. Institute of Science and Technology Austria, 2022, doi:&lt;a href=&quot;https://doi.org/10.15479/at:ista:12378&quot;&gt;10.15479/at:ista:12378&lt;/a&gt;.</mla>
<chicago>Colombo, Gloria. “MorphOMICs, a Tool for Mapping Microglial Morphology, Reveals Brain Region- and Sex-Dependent Phenotypes.” Institute of Science and Technology Austria, 2022. &lt;a href=&quot;https://doi.org/10.15479/at:ista:12378&quot;&gt;https://doi.org/10.15479/at:ista:12378&lt;/a&gt;.</chicago>
<ama>Colombo G. MorphOMICs, a tool for mapping microglial morphology, reveals brain region- and sex-dependent phenotypes. 2022. doi:&lt;a href=&quot;https://doi.org/10.15479/at:ista:12378&quot;&gt;10.15479/at:ista:12378&lt;/a&gt;</ama>
<ista>Colombo G. 2022. MorphOMICs, a tool for mapping microglial morphology, reveals brain region- and sex-dependent phenotypes. Institute of Science and Technology Austria.</ista>
<ieee>G. Colombo, “MorphOMICs, a tool for mapping microglial morphology, reveals brain region- and sex-dependent phenotypes,” Institute of Science and Technology Austria, 2022.</ieee>
<short>G. Colombo, MorphOMICs, a Tool for Mapping Microglial Morphology, Reveals Brain Region- and Sex-Dependent Phenotypes, Institute of Science and Technology Austria, 2022.</short>
</bibliographicCitation>
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