Publication:
Teach your microscope how to print: low-cost and rapid-iteration microfabrication for biology.

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cris.virtualsource.author-orcidafd1b9f4-1392-4b3f-9765-9f866362a7b4
cris.virtualsource.author-orcid5322b0eb-eedb-4264-b5b1-397f2c90590e
cris.virtualsource.author-orcid46ac8703-debf-423d-94c9-0b794c2838f7
cris.virtualsource.author-orcid6ca4ec82-801e-4ebe-9dd2-05c413896373
cris.virtualsource.author-orcid640f8ff3-8d11-4ab2-b446-942d7e3685bb
cris.virtualsource.author-orcid15f9adad-7efd-496b-a826-9730e3409f64
cris.virtualsource.author-orcid9d8d8eac-5e2d-4277-8c88-4c456ea715d6
datacite.rightsopen.access
dc.contributor.authorHinderling, Lucien
dc.contributor.authorHadorn, Remo
dc.contributor.authorKwasny, Moritz
dc.contributor.authorFrei, Joël
dc.contributor.authorGrädel, Benjamin
dc.contributor.authorPsalmon, Sacha
dc.contributor.authorBlum, Yannick
dc.contributor.authorBerthoz, Rémi
dc.contributor.authorLandolt, Alex E.
dc.contributor.authorTowbin, Benjamin D.
dc.contributor.authorRiveline, Daniel
dc.contributor.authorPertz, Olivier
dc.date.accessioned2025-07-21T10:18:28Z
dc.date.available2025-07-21T10:18:28Z
dc.date.issued2025-08-05
dc.description.abstractThe application of traditional microfabrication techniques to biological research is hindered by their reliance on clean rooms, expensive or toxic materials, and slow iteration cycles. We present an accessible microfabrication workflow that addresses these challenges by integrating consumer 3D printing techniques and repurposing standard fluorescence microscopes equipped with DMDs for maskless photolithography. Our method achieves micrometer-scale precision across centimeter-sized areas without clean room infrastructure, using affordable and readily available consumables. We demonstrate the versatility of this approach through four biological applications: inducing cytoskeletal protrusions via 1 μm-resolution surface topographies; micropatterning to standardize cell and tissue morphology; fabricating multilayer microfluidic devices for confined cell migration studies; imprinting agar chambers for long-time tracking of C. elegans. Our protocol drastically reduces material costs compared to conventional methods and enables design-to-device turnaround within a day. By leveraging open-source microscope control software and existing lab equipment, our workflow lowers the entry barrier to microfabrication, enabling labs to prototype custom solutions for diverse experimental needs while maintaining compatibility with soft lithography and downstream biological assays.
dc.description.numberOfPages15
dc.description.sponsorshipInstitute of Cell Biology
dc.description.sponsorshipGraduate School for Cellular and Biomedical Sciences (GCB)
dc.identifier.doi10.48620/89636
dc.identifier.pmid40654015
dc.identifier.publisherDOI10.1039/d5lc00181a
dc.identifier.urihttps://boris-portal.unibe.ch/handle/20.500.12422/213234
dc.language.isoen
dc.publisherRoyal Society of Chemistry
dc.relation.ispartofLab on a Chip
dc.relation.issn1473-0189
dc.relation.issn1473-0197
dc.subject.ddc500 - Science::570 - Life sciences; biology
dc.titleTeach your microscope how to print: low-cost and rapid-iteration microfabrication for biology.
dc.typearticle
dspace.entity.typePublication
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oaire.citation.endPage4105
oaire.citation.startPage4091
oaire.citation.volume25
oairecerif.author.affiliationInstitute of Cell Biology
oairecerif.author.affiliationInstitute of Cell Biology
oairecerif.author.affiliationInstitute of Cell Biology
oairecerif.author.affiliationInstitute of Cell Biology
oairecerif.author.affiliationInstitute of Cell Biology
oairecerif.author.affiliationInstitute of Cell Biology
unibe.additional.sponsorshipGraduate School for Cellular and Biomedical Sciences (GCB)
unibe.contributor.orcid0000-0001-7046-1257
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unibe.description.ispublishedpub
unibe.refereedtrue
unibe.subtype.articlejournal

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