Facile assembly of an affordable miniature multicolor fluorescence microscope made of 3D-printed parts enables detection of single cells.
Fluorescence microscopy is one of the workhorses of biomedical research and laboratory diagnosis; however, their cost, size, maintenance, and fragility has prevented their adoption in developing countries or low-resource settings. Although significant advances have decreased their size, cost and acc...
Main Authors: | , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
Public Library of Science (PLoS)
2019-01-01
|
Series: | PLoS ONE |
Online Access: | https://doi.org/10.1371/journal.pone.0215114 |
id |
doaj-62db754e2c9e4659a416ce45d490792a |
---|---|
record_format |
Article |
spelling |
doaj-62db754e2c9e4659a416ce45d490792a2021-03-03T21:06:26ZengPublic Library of Science (PLoS)PLoS ONE1932-62032019-01-011410e021511410.1371/journal.pone.0215114Facile assembly of an affordable miniature multicolor fluorescence microscope made of 3D-printed parts enables detection of single cells.Samuel B Tristan-LandinAlan M Gonzalez-SuarezRocio J Jimenez-ValdesJose L Garcia-CorderoFluorescence microscopy is one of the workhorses of biomedical research and laboratory diagnosis; however, their cost, size, maintenance, and fragility has prevented their adoption in developing countries or low-resource settings. Although significant advances have decreased their size, cost and accessibility, their designs and assembly remain rather complex. Here, inspired on the simple mechanism from a nut and a bolt, we report the construction of a portable fluorescence microscope that operates in bright-field mode and in three fluorescence channels: UV, green, and red. It is assembled in under 10 min from only six 3D printed parts, basic electronic components, a microcomputer (Raspberry Pi) and a camera, all of which can be readily purchased in most locations or online for US $122. The microcomputer was programmed in Python language to capture time-lapse images and videos. Resolution and illumination conditions of the microscope were characterized, and its performance was compared with a high-end fluorescence microscope in bright-field and fluorescence mode. We demonstrate that our miniature microscope can resolve and track single cells in both modes. The instructions on how to assemble the microscope are shown in a video, and the software to control it and the design files of the 3D-printed parts are freely available online. Our portable microscope is ideal in applications where space is at a premium, such as lab-on-a-chips or space missions, and can find applications in basic and clinical research, diagnostics, telemedicine and in educational settings.https://doi.org/10.1371/journal.pone.0215114 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Samuel B Tristan-Landin Alan M Gonzalez-Suarez Rocio J Jimenez-Valdes Jose L Garcia-Cordero |
spellingShingle |
Samuel B Tristan-Landin Alan M Gonzalez-Suarez Rocio J Jimenez-Valdes Jose L Garcia-Cordero Facile assembly of an affordable miniature multicolor fluorescence microscope made of 3D-printed parts enables detection of single cells. PLoS ONE |
author_facet |
Samuel B Tristan-Landin Alan M Gonzalez-Suarez Rocio J Jimenez-Valdes Jose L Garcia-Cordero |
author_sort |
Samuel B Tristan-Landin |
title |
Facile assembly of an affordable miniature multicolor fluorescence microscope made of 3D-printed parts enables detection of single cells. |
title_short |
Facile assembly of an affordable miniature multicolor fluorescence microscope made of 3D-printed parts enables detection of single cells. |
title_full |
Facile assembly of an affordable miniature multicolor fluorescence microscope made of 3D-printed parts enables detection of single cells. |
title_fullStr |
Facile assembly of an affordable miniature multicolor fluorescence microscope made of 3D-printed parts enables detection of single cells. |
title_full_unstemmed |
Facile assembly of an affordable miniature multicolor fluorescence microscope made of 3D-printed parts enables detection of single cells. |
title_sort |
facile assembly of an affordable miniature multicolor fluorescence microscope made of 3d-printed parts enables detection of single cells. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2019-01-01 |
description |
Fluorescence microscopy is one of the workhorses of biomedical research and laboratory diagnosis; however, their cost, size, maintenance, and fragility has prevented their adoption in developing countries or low-resource settings. Although significant advances have decreased their size, cost and accessibility, their designs and assembly remain rather complex. Here, inspired on the simple mechanism from a nut and a bolt, we report the construction of a portable fluorescence microscope that operates in bright-field mode and in three fluorescence channels: UV, green, and red. It is assembled in under 10 min from only six 3D printed parts, basic electronic components, a microcomputer (Raspberry Pi) and a camera, all of which can be readily purchased in most locations or online for US $122. The microcomputer was programmed in Python language to capture time-lapse images and videos. Resolution and illumination conditions of the microscope were characterized, and its performance was compared with a high-end fluorescence microscope in bright-field and fluorescence mode. We demonstrate that our miniature microscope can resolve and track single cells in both modes. The instructions on how to assemble the microscope are shown in a video, and the software to control it and the design files of the 3D-printed parts are freely available online. Our portable microscope is ideal in applications where space is at a premium, such as lab-on-a-chips or space missions, and can find applications in basic and clinical research, diagnostics, telemedicine and in educational settings. |
url |
https://doi.org/10.1371/journal.pone.0215114 |
work_keys_str_mv |
AT samuelbtristanlandin facileassemblyofanaffordableminiaturemulticolorfluorescencemicroscopemadeof3dprintedpartsenablesdetectionofsinglecells AT alanmgonzalezsuarez facileassemblyofanaffordableminiaturemulticolorfluorescencemicroscopemadeof3dprintedpartsenablesdetectionofsinglecells AT rociojjimenezvaldes facileassemblyofanaffordableminiaturemulticolorfluorescencemicroscopemadeof3dprintedpartsenablesdetectionofsinglecells AT joselgarciacordero facileassemblyofanaffordableminiaturemulticolorfluorescencemicroscopemadeof3dprintedpartsenablesdetectionofsinglecells |
_version_ |
1714818769508892672 |