Advancing 3D printed microfluidics with computational methods for sweat analysis

buir.contributor.authorEce, Emre
buir.contributor.authorÖlmez, Kadriye
buir.contributor.authorHacıosmanoğlu, Nedim
buir.contributor.authorAtabay, Maryam
buir.contributor.authorİnci, Fatih
buir.contributor.orcidEce, Emre| 0000-0002-9357-5086
buir.contributor.orcidÖlmez, Kadriye| 0000-0002-5381-7968
buir.contributor.orcidHacıosmanoğlu, Nedim| 0000-0002-0696-6880
buir.contributor.orcidAtabay, Maryam| 0000-0003-1930-1578
buir.contributor.orcidİnci, Fatih| 0000-0002-9918-5038
dc.citation.epage162-12
dc.citation.issueNumber3
dc.citation.spage162-1
dc.citation.volumeNumber191
dc.contributor.authorEce, Emre
dc.contributor.authorÖlmez, Kadriye
dc.contributor.authorHacıosmanoğlu, Nedim
dc.contributor.authorAtabay, Maryam
dc.contributor.authorİnci, Fatih
dc.date.accessioned2025-02-20T19:18:59Z
dc.date.available2025-02-20T19:18:59Z
dc.date.issued2024-02-27
dc.departmentInstitute of Materials Science and Nanotechnology (UNAM)
dc.description.abstractThe intricate tapestry of biomarkers, including proteins, lipids, carbohydrates, vesicles, and nucleic acids within sweat, exhibits a profound correlation with the ones in the bloodstream. The facile extraction of samples from sweat glands has recently positioned sweat sampling at the forefront of non-invasive health monitoring and diagnostics. While extant platforms for sweat analysis exist, the imperative for portability, cost-effectiveness, ease of manufacture, and expeditious turnaround underscores the necessity for parameters that transcend conventional considerations. In this regard, 3D printed microfluidic devices emerge as promising systems, offering a harmonious fusion of attributes such as multifunctional integration, flexibility, biocompatibility, a controlled closed environment, and a minimal requisite analyte volume—features that leverage their prominence in the realm of sweat analysis. However, formidable challenges, including high throughput demands, chemical interactions intrinsic to the printing materials, size constraints, and durability concerns, beset the landscape of 3D printed microfluidic devices. Within this paradigm, we expound upon the foundational aspects of 3D printed microfluidic devices and proffer a distinctive perspective by delving into the computational study of printing materials utilizing density functional theory (DFT) and molecular dynamics (MD) methodologies. This multifaceted approach serves manifold purposes: (i) understanding the complexity of microfluidic systems, (ii) facilitating comprehensive analyses, (iii) saving both cost and time, (iv) improving design optimization, and (v) augmenting resolution. In a nutshell, the allure of 3D printing lies in its capacity for affordable and expeditious production, offering seamless integration of diverse components into microfluidic devices—a testament to their inherent utility in the domain of sweat analysis. The synergistic fusion of computational assessment methodologies with materials science not only optimizes analysis and production processes, but also expedites their widespread accessibility, ensuring continuous biomarker monitoring from sweat for end-users.
dc.identifier.doi10.1007/s00604-024-06231-5
dc.identifier.eissn1436-5073
dc.identifier.issn0026-3672
dc.identifier.urihttps://hdl.handle.net/11693/116527
dc.language.isoEnglish
dc.publisherSPRINGER Wien
dc.relation.isversionofhttps://dx.doi.org/10.1007/s00604-024-06231-5
dc.rightsCC BY 4.0 Deed (Attribution 4.0 International)
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/
dc.source.titleMICROCHIMICA ACTA
dc.subject3D printing
dc.subjectMicrofluidic chips
dc.subjectSweat analysis
dc.subjectDensity functional theory
dc.subjectBiosensor
dc.titleAdvancing 3D printed microfluidics with computational methods for sweat analysis
dc.typeArticle

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