Publication:

3D mechanical characterization of single cells and small organisms using acoustic manipulation and force microscopy

Date

Date

Date
2021
Journal Article
Published version
cris.lastimport.scopus2025-06-09T03:41:33Z
cris.lastimport.wos2025-07-24T01:32:48Z
dc.contributor.institutionUniversity of Zurich
dc.date.accessioned2021-05-19T08:56:24Z
dc.date.available2021-05-19T08:56:24Z
dc.date.issued2021
dc.description.abstract

Quantitative micromechanical characterization of single cells and multicellular tissues or organisms is of fundamental importance to the study of cellular growth, morphogenesis, and cell-cell interactions. However, due to limited manipulation capabilities at the microscale, systems used for mechanical characterizations struggle to provide complete three-dimensional coverage of individual specimens. Here, we combine an acoustically driven manipulation device with a micro-force sensor to freely rotate biological samples and quantify mechanical properties at multiple regions of interest within a specimen. The versatility of this tool is demonstrated through the analysis of single Lilium longiflorum pollen grains, in combination with numerical simulations, and individual Caenorhabditis elegans nematodes. It reveals local variations in apparent stiffness for single specimens, providing previously inaccessible information and datasets on mechanical properties that serve as the basis for biophysical modelling and allow deeper insights into the biomechanics of these living systems.

dc.identifier.doi10.1038/s41467-021-22718-8
dc.identifier.issn2041-1723
dc.identifier.scopus2-s2.0-85105547496
dc.identifier.urihttps://www.zora.uzh.ch/handle/20.500.14742/183022
dc.identifier.wos000687305500039
dc.language.isoeng
dc.subjectGeneral Biochemistry
dc.subjectGenetics and Molecular Biology
dc.subjectGeneral Physics and Astronomy
dc.subjectGeneral Chemistry
dc.subject.ddc580 Plants (Botany)
dc.title

3D mechanical characterization of single cells and small organisms using acoustic manipulation and force microscopy

dc.typearticle
dcterms.accessRightsinfo:eu-repo/semantics/openAccess
dcterms.bibliographicCitation.journaltitleNature Communications
dcterms.bibliographicCitation.originalpublishernameNature Publishing Group
dcterms.bibliographicCitation.pagestart2583
dcterms.bibliographicCitation.pmid33972516
dcterms.bibliographicCitation.volume12
dspace.entity.typePublicationen
uzh.contributor.affiliationETH Zürich
uzh.contributor.affiliationETH Zürich
uzh.contributor.affiliationETH Zürich
uzh.contributor.affiliationUniversity of Zurich
uzh.contributor.affiliationUniversity of Zurich
uzh.contributor.affiliationETH Zürich
uzh.contributor.affiliationETH Zürich
uzh.contributor.affiliationETH Zürich
uzh.contributor.affiliationUniversity of Zurich
uzh.contributor.affiliationETH Zürich
uzh.contributor.affiliationETH Zürich
uzh.contributor.authorLäubli, Nino F
uzh.contributor.authorBurri, Jan T
uzh.contributor.authorMarquard, Julian
uzh.contributor.authorVogler, Hannes
uzh.contributor.authorMosca, Gabriella
uzh.contributor.authorVertti-Quintero, Nadia
uzh.contributor.authorShamsudhin, Naveen
uzh.contributor.authordeMello, Andrew
uzh.contributor.authorGrossniklaus, Ueli
uzh.contributor.authorAhmed, Daniel
uzh.contributor.authorNelson, Bradley J
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceYes
uzh.contributor.correspondenceNo
uzh.document.availabilitypublished_version
uzh.eprint.datestamp2021-05-19 08:56:24
uzh.eprint.lastmod2025-07-24 01:38:46
uzh.eprint.statusChange2021-05-19 08:56:24
uzh.funder.nameSNSF
uzh.funder.projectNumberCR22I2_166110
uzh.funder.projectTitleMechanical Basis for the Convergent Evolution of Sensory Hairs in Animals and Plants
uzh.harvester.ethYes
uzh.harvester.nbNo
uzh.identifier.doi10.5167/uzh-203330
uzh.jdb.eprintsId21180
uzh.oastatus.unpaywallgold
uzh.oastatus.zoraGold
uzh.publication.citationLäubli, Nino F; Burri, Jan T; Marquard, Julian; Vogler, Hannes; Mosca, Gabriella; Vertti-Quintero, Nadia; Shamsudhin, Naveen; deMello, Andrew; Grossniklaus, Ueli; Ahmed, Daniel; Nelson, Bradley J (2021). 3D mechanical characterization of single cells and small organisms using acoustic manipulation and force microscopy. Nature Communications, 12:2583.
uzh.publication.freeAccessAtpubmedid
uzh.publication.originalworkoriginal
uzh.publication.publishedStatusfinal
uzh.scopus.impact58
uzh.scopus.subjectsGeneral Chemistry
uzh.scopus.subjectsGeneral Biochemistry, Genetics and Molecular Biology
uzh.scopus.subjectsGeneral Physics and Astronomy
uzh.workflow.doajuzh.workflow.doaj.true
uzh.workflow.eprintid203330
uzh.workflow.fulltextStatuspublic
uzh.workflow.revisions44
uzh.workflow.rightsCheckoffen
uzh.workflow.sourceCrossRef:10.1038/s41467-021-22718-8
uzh.workflow.statusarchive
uzh.wos.impact57
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