Development and technical evaluation of a reusable 3D-printed cytospin funnel for enlarged cytospin generation

Abstract Objective Cell fixation on a microscope glass slide is a standard technique for evaluating cellular morphology in a wide range of biosamples. Cytofunnels are used in a cytocentrifuge to direct cells onto the glass slide and generate a “cytospin”. Commercial cytofunnels have a fixed design with limited cytospin areas, being mostly single-use and are costly. The goal of this study was to design and manufacture a 3D-printed, customized cytofunnel that is cost-efficient, reusable and generates a larger cytospin area. We used an iterative design process using computer-aided design (CAD) software and stereolithography (SLA) printing with biocompatible resin. The funnel prototypes were subjected to a technical evaluation using two independent human pleural effusion specimens, as well as through repeated exposure to two commonly used disinfectants. Results The 3D-printed cytospin funnel featured larger outlet diameters, increasing the cytospin area approximately threefold with a total manufacturing time of 24 h. The presented reusable funnel design enabled enlarged cytospin areas and increased practical cell-loading capacities under the tested conditions and may support future digital cytology and high-throughput analysis workflows. The published STL file may provide an accessible, sustainable alternative for laboratories, especially in resource-limited settings and may serve as a basis for further customization.

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Publication Details

Journal
BMC Research Notes
Published
2026-09-29
DOI
https://doi.org/10.1186/s13104-026-08021-z
Primary Topic
Nanofabrication and Lithography Techniques
Type
article
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article

Development and technical evaluation of a reusable 3D-printed cytospin funnel for enlarged cytospin generation

Christopher Herz, Nikolaus A. Haas, Carlo Mümmler, Nikolaus Kneidinger et al.
BMC Research Notes
Nanofabrication and Lithography Techniques
article

Development and technical evaluation of a reusable 3D-printed cytospin funnel for enlarged cytospin generation

Christopher Herz, Nikolaus A. Haas, Carlo Mümmler, Nikolaus Kneidinger, Michael Gerckens, Jürgen Behr, Marina Nagel, Nicole Weiß
article en

Abstract

Abstract Objective Cell fixation on a microscope glass slide is a standard technique for evaluating cellular morphology in a wide range of biosamples. Cytofunnels are used in a cytocentrifuge to direct cells onto the glass slide and generate a “cytospin”. Commercial cytofunnels have a fixed design with limited cytospin areas, being mostly single-use and are costly. The goal of this study was to design and manufacture a 3D-printed, customized cytofunnel that is cost-efficient, reusable and generates a larger cytospin area. We used an iterative design process using computer-aided design (CAD) software and stereolithography (SLA) printing with biocompatible resin. The funnel prototypes were subjected to a technical evaluation using two independent human pleural effusion specimens, as well as through repeated exposure to two commonly used disinfectants. Results The 3D-printed cytospin funnel featured larger outlet diameters, increasing the cytospin area approximately threefold with a total manufacturing time of 24 h. The presented reusable funnel design enabled enlarged cytospin areas and increased practical cell-loading capacities under the tested conditions and may support future digital cytology and high-throughput analysis workflows. The published STL file may provide an accessible, sustainable alternative for laboratories, especially in resource-limited settings and may serve as a basis for further customization.

BMC Research NotesVol. 19(1)
Medical University of Graz (AT), Helmholtz Zentrum München (DE), LMU Klinikum (DE), German Centre for Cardiovascular Research (DE), German Center for Lung Research (DE), Technical University of Munich (DE), Ludwig-Maximilians-Universität München (DE)
Industry, innovation and infrastructure
Openalex Percentile: Top 22%
Nanofabrication and Lithography Techniques
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