Micromotor-mediated sperm constrictions for improved swimming performance

dc.bibliographicCitation.firstPage67eng
dc.bibliographicCitation.issue5eng
dc.bibliographicCitation.volume44eng
dc.contributor.authorStriggow, Friedrich
dc.contributor.authorNadporozhskaia, Lidiia
dc.contributor.authorFriedrich, Benjamin M.
dc.contributor.authorSchmidt, Oliver G.
dc.contributor.authorMedina-Sánchez, Mariana
dc.date.accessioned2022-01-26T10:27:57Z
dc.date.available2022-01-26T10:27:57Z
dc.date.issued2021
dc.description.abstractSperm-driven micromotors, consisting of a single sperm cell captured in a microcap, utilize the strong propulsion generated by the flagellar beat of motile spermatozoa for locomotion. It enables the movement of such micromotors in biological media, while being steered remotely by means of an external magnetic field. The substantial decrease in swimming speed, caused by the additional hydrodynamic load of the microcap, limits the applicability of sperm-based micromotors. Therefore, to improve the performance of such micromotors, we first investigate the effects of additional cargo on the flagellar beat of spermatozoa. We designed two different kinds of microcaps, which each result in different load responses of the flagellar beat. As an additional design feature, we constrain rotational degrees of freedom of the cell’s motion by modifying the inner cavity of the cap. Particularly, cell rolling is substantially reduced by tightly locking the sperm head inside the microcap. Likewise, cell yawing is decreased by aligning the micromotors under an external static magnetic field. The observed differences in swimming speed of different micromotors are not so much a direct consequence of hydrodynamic effects, but rather stem from changes in flagellar bending waves, hence are an indirect effect. Our work serves as proof-of-principle that the optimal design of microcaps is key for the development of efficient sperm-driven micromotors.eng
dc.description.versionpublishedVersioneng
dc.identifier.urihttps://oa.tib.eu/renate/handle/123456789/7939
dc.identifier.urihttps://doi.org/10.34657/6980
dc.language.isoengeng
dc.publisherBerlin ; Heidelberg : Springereng
dc.relation.doihttps://doi.org/10.1140/epje/s10189-021-00050-9
dc.relation.essn1292-895X
dc.relation.ispartofseriesThe European physical journal : E, Soft matter 44 (2021), Nr. 5eng
dc.rights.licenseCC BY 4.0 Unportedeng
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/eng
dc.subjectCellseng
dc.subjectCytologyeng
dc.subjectDegrees of freedom (mechanics)eng
dc.subjectHydrodynamicseng
dc.subjectMagnetic fieldseng
dc.subjectMutagenesiseng
dc.subjectExternal magnetic fieldeng
dc.subjectExternal static magneticeng
dc.subjectHydrodynamic effecteng
dc.subjectHydrodynamic loadseng
dc.subjectIndirect effectseng
dc.subjectProof of principleseng
dc.subjectRotational degrees of freedomeng
dc.subjectSwimming performanceeng
dc.subjectMicromotorseng
dc.subjectarticleeng
dc.subjectdegree of freedomeng
dc.subjecthuman celleng
dc.subjecthydrodynamicseng
dc.subjectmagnetic fieldeng
dc.subjectmaleeng
dc.subjectmotioneng
dc.subjectspermatozooneng
dc.subjectswimming speedeng
dc.subject.ddc530eng
dc.titleMicromotor-mediated sperm constrictions for improved swimming performanceeng
dc.typearticleeng
dc.typeTexteng
dcterms.bibliographicCitation.journalTitleThe European physical journal : E, Soft mattereng
tib.accessRightsopenAccesseng
wgl.contributorIFWDeng
wgl.subjectPhysikeng
wgl.typeZeitschriftenartikeleng
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