Low Cost and Open Source Multi-fluorescence Imaging System for Teaching and Research in Biology and Bioengineering
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The advent of easy-to-use open source microcontrollers, off-the-shelf electronics and customizable manufacturing technologies has facilitated the development of inexpensive scientific devices and laboratory equipment. In this study, we describe an imaging system that integrates low-cost and open-source hardware, software and genetic resources. The multi-fluorescence imaging system consists of readily available 470 nm LEDs, a Raspberry Pi camera and a set of filters made with low cost acrylics. This device allows imaging in scales ranging from single colonies to entire plates. We developed a set of genetic components (e.g. promoters, coding sequences, terminators) and vectors following the standard framework of Golden Gate, which allowed the fabrication of genetic constructs in a combinatorial, low cost and robust manner. In order to provide simultaneous imaging of multiple wavelength signals, we screened a series of long stokes shift fluorescent proteins that could be combined with cyan/green fluorescent proteins. We found CyOFP1, mBeRFP and sfGFP to be the most compatible set for 3-channel fluorescent imaging. We developed open source Python code to operate the hardware to run time-lapse experiments with automated control of illumination and camera and a Python module to analyze data and extract meaningful biological information. To demonstrate the potential application of this integral system, we tested its performance on a diverse range of imaging assays often used in disciplines such as microbial ecology, microbiology and synthetic biology. We also assessed its potential use in a high school environment to teach biology, hardware design, optics, and programming. Together, these results demonstrate the successful integration of open source hardware, software, genetic resources and customizable manufacturing to obtain a powerful, low cost and robust system for education, scientific research and bioengineering. All the resources developed here are available under open source licenses.
BrightMice: a low-cost do-it-yourself instrument, designed for in vivo fluorescence mouse imaging.
Boitet M, Achek A, Bouchenaki K, Grailhe R Sci Rep. 2024; 14(1):22685.
PMID: 39349676 PMC: 11442974. DOI: 10.1038/s41598-024-73130-3.
Open-source and low-cost miniature microscope for on-site fluorescence detection.
Kawai M, Oda H, Mimura H, Osaki T, Takeuchi S HardwareX. 2024; 19:e00545.
PMID: 39006472 PMC: 11239704. DOI: 10.1016/j.ohx.2024.e00545.
Franz O, Hakkanen H, Kovanen S, Heikkila-Huhta K, Nissinen R, Ihalainen J PLoS One. 2024; 19(5):e0287088.
PMID: 38771771 PMC: 11108223. DOI: 10.1371/journal.pone.0287088.
Groffen J, Hoskin C Ecol Evol. 2024; 14(3):e10877.
PMID: 38500857 PMC: 10945077. DOI: 10.1002/ece3.10877.
Multifunction fluorescence open source in vivo/in vitro imaging system (openIVIS).
Branning Jr J, Faughnan K, Tomson A, Bell G, Isbell S, DeGroot A PLoS One. 2024; 19(3):e0299875.
PMID: 38498588 PMC: 10947658. DOI: 10.1371/journal.pone.0299875.