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Schwehr BJ, Hartnell D, Ellison G, Hindes MT, Milford B, Dallerba E, Hickey SM, Pfeffer FM, Brooks DA, Massi M, Hackett MJ. Fluorescent probes for neuroscience: imaging ex vivo brain tissue sections. Analyst 2024; 149:4536-4552. [PMID: 39171617 DOI: 10.1039/d4an00663a] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 08/23/2024]
Abstract
Neurobiological research relies heavily on imaging techniques, such as fluorescence microscopy, to understand neurological function and disease processes. However, the number and variety of fluorescent probes available for ex vivo tissue section imaging limits the advance of research in the field. In this review, we outline the current range of fluorescent probes that are available to researchers for ex vivo brain section imaging, including their physical and chemical characteristics, staining targets, and examples of discoveries for which they have been used. This review is organised into sections based on the biological target of the probe, including subcellular organelles, chemical species (e.g., labile metal ions), and pathological phenomenon (e.g., degenerating cells, aggregated proteins). We hope to inspire further development in this field, given the considerable benefits to be gained by the greater availability of suitably sensitive probes that have specificity for important brain tissue targets.
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Affiliation(s)
- Bradley J Schwehr
- Curtin University, School of Molecular and Life Sciences, Perth, WA, Australia 6845.
| | - David Hartnell
- Curtin University, School of Molecular and Life Sciences, Perth, WA, Australia 6845.
- Curtin University, Curtin Health Innovation Research Institute, Perth, WA, Australia 6102
| | - Gaewyn Ellison
- Curtin University, School of Molecular and Life Sciences, Perth, WA, Australia 6845.
- Curtin University, Curtin Health Innovation Research Institute, Perth, WA, Australia 6102
| | - Madison T Hindes
- Clinical and Health Sciences, University of South Australia, Adelaide, South Australia 5000
| | - Breah Milford
- Curtin University, School of Molecular and Life Sciences, Perth, WA, Australia 6845.
| | - Elena Dallerba
- Curtin University, School of Molecular and Life Sciences, Perth, WA, Australia 6845.
| | - Shane M Hickey
- Clinical and Health Sciences, University of South Australia, Adelaide, South Australia 5000
| | - Frederick M Pfeffer
- School of Life and Environmental Sciences, Deakin University, Waurn Ponds, Victoria, 3216, Australia
| | - Doug A Brooks
- Clinical and Health Sciences, University of South Australia, Adelaide, South Australia 5000
| | - Massimiliano Massi
- Curtin University, School of Molecular and Life Sciences, Perth, WA, Australia 6845.
| | - Mark J Hackett
- Curtin University, School of Molecular and Life Sciences, Perth, WA, Australia 6845.
- Curtin University, Curtin Health Innovation Research Institute, Perth, WA, Australia 6102
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Giuliano KA, DeBiasio RL, Dunlay RT, Gough A, Volosky JM, Zock J, Pavlakis GN, Taylor DL. High-Content Screening: A New Approach to Easing Key Bottlenecks in the Drug Discovery Process. ACTA ACUST UNITED AC 2016. [DOI: 10.1177/108705719700200410] [Citation(s) in RCA: 169] [Impact Index Per Article: 21.1] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/16/2022]
Abstract
Recent improvements in target discovery and high throughput screening (HTS) have increased the pressure at key points along the drug discovery pipeline. High-content screening (HCS) was developed to ease bottlenecks that have formed at target validation and lead optimization points in the pipeline. HCS defines the role of targets in cell functions by combining fluorescence-based reagents with the ArrayScan™ System to automatically extract temporal and spatial information about target activities within cells. The ArrayScan System is a tabletop instrument that includes optics for subcellular resolution of fluorescence signals from many cells in a field within a well of a microtiter plate. One demonstrated application is a high-content screen designed to measure the drug-induced transport of a green fluorescent protein-human glucocorticoid receptor chimeric protein from the cytoplasm to the nucleus of human tumor cells. A high-content screen is also described for the multiparametric measurement of apoptosis. This single screen provides measurements of nuclear size and shape changes, nuclear DNA content, mitochondrial potential, and actin-cytoskeletal rearrangements during drug-induced programmed cell death. The next generation HCS system is a miniaturized screening platform, the CellChip™ System, that will increase the throughput of HCS, while integrating HCS with HTS on the same platform.
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Affiliation(s)
| | | | | | - Albert Gough
- BioDx, Inc., 635 William Pitt Way, Pittsburgh, PA 15238
| | | | - Joseph Zock
- BioDx, Inc., 635 William Pitt Way, Pittsburgh, PA 15238
| | - George N. Pavlakis
- ABL-Basic Research Program, National Cancer Institute-FCRDC, Frederick, MD 21702
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The hazards of DAPI photoconversion: effects of dye, mounting media and fixative, and how to minimize the problem. Histochem Cell Biol 2012; 139:195-204. [PMID: 23064788 DOI: 10.1007/s00418-012-1039-8] [Citation(s) in RCA: 13] [Impact Index Per Article: 1.1] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Accepted: 09/29/2012] [Indexed: 10/27/2022]
Abstract
Immunocytochemistry is a powerful tool for detection and visualization of specific molecules in living or fixed cells, their localization and their relative abundance. One of the most commonly used fluorescent DNA dyes in immunocytochemistry applications is 4',6-diamidino-2-phenylindole dihydrochloride, known as DAPI. DAPI binds strongly to DNA and is used extensively for visualizing cell nuclei. It is excited by UV light and emits characteristic blue fluorescence. Here, we report a phenomenon based on an apparent photoconversion of DAPI that results in detection of a DAPI signal using a standard filter set for detection of green emission due to blue excitation. When a sample stained with DAPI only was first imaged with the green filter set (FITC/GFP), only a weak cytoplasmic autofluorescence was observed. Next, we imaged the sample with a DAPI filter set, obtaining a strong nuclear DAPI signal as expected. Upon reimaging the same samples with a FITC/GFP filter set, robust nuclear fluorescence was observed. We conclude that excitation with UV results in a photoconversion of DAPI that leads to detection of DAPI due to excitation and emission in the FITC/GFP channel. This phenomenon can affect data interpretation and lead to false-positive results when used together with fluorochrome-labeled nuclear proteins detected with blue excitation and green emission. In order to avoid misinterpretations, extra precaution should be taken to prepare staining solutions with low DAPI concentration and DAPI (UV excitation) images should be acquired after all other higher wavelength images. Of various DNA dyes tested, Hoechst 33342 exhibited the lowest photoconversion while that for DAPI and Hoechst 33258 was much stronger. Different fixation methods did not substantially affect the strength of photoconversion. We also suggest avoiding the use of mounting medium with high glycerol concentrations since glycerol showed the strongest impact on photoconversion. This photoconversion effect cannot be avoided even when using narrow bandpass filter sets.
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Breeuwer P, Abee T. Assessment of the intracellular pH of immobilized and continuously perfused yeast cells employing fluorescence ratio imaging analysis. J Microbiol Methods 2000; 39:253-64. [PMID: 10670771 DOI: 10.1016/s0167-7012(99)00124-4] [Citation(s) in RCA: 31] [Impact Index Per Article: 1.3] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/24/2022]
Abstract
The intracellular pH (pHin) of Saccharomyces cerevisiae was measured employing fluorescence ratio imaging microscopy (FRIM). The yeast cells were fluorescently labeled with the pH dependent probe 5(and-6)-carboxyfluorescein (cF) or 5(and-6)-carboxyfluorescein succinimidyl ester (cFSE), and subsequently attached to ferric nitrate pretreated glass slides. The labeled and adhered cells could still divide and were metabolically active. Measurement of the pHin was performed during continuous perfusion of the cells with buffer or medium. Cells labeled with cF are highly fluorescent and in non-energized cells the pHin could be easily measured. However, in energized yeast cells cF was accumulated in the vacuoles and/or exported to the extracellular environment, most likely by an energy-dependent transport system, thus limiting the time period over which the pHin can be effectively measured. Therefore, cFSE (which conjugates with aliphatic amines in the cytoplasm) was applied to prevent translocation of fluorescent probe to the vacuole and/or extracellular environment. The continuous perfusion in combination with the cFSE labeling of the immobilized cells was successfully applied to determine the effect of low and high pHin and addition of glucose on the pHin of individual yeast cells over a long time period.
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Affiliation(s)
- P Breeuwer
- Department of Food Technology and Nutritional Sciences, Wageningen University and Research Center, The Netherlands.
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Plymale DR, Haskins JR, de la Iglesia FA. Monitoring simultaneous subcellular events in vitro by means of coherent multiprobe fluorescence. Nat Med 1999; 5:351-5. [PMID: 10086396 DOI: 10.1038/6574] [Citation(s) in RCA: 17] [Impact Index Per Article: 0.7] [Reference Citation Analysis] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/08/2022]
Affiliation(s)
- D R Plymale
- Pathology and Experimental Toxicology Department, Parke-Davis Pharmaceutical Research, Ann Arbor, Michigan 48105, USA
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Abstract
Both isotopic and nonisotopic assay methodologies are employed in high-throughput screening for drug discovery. Recent advances in cell-based and in vitro biochemical assays will be reviewed, with special emphasis on detection technologies amenable to automated 'mix and read' procedures in high-throughput screening. A major trend is the advent of homogenous assay systems which employ fluorescence resonance energy transfer, fluorescence polarization, and fluorescence correlation spectroscopy. Cell-based assay systems have also become popular in high-throughput screens in which active compounds that directly modulate the disease target are identified. Colorimetric and amperometric methods have also been described recently, but are yet to be adapted widely in high-throughput screens.
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Affiliation(s)
- G S Sittampalam
- Research Technologies and Proteins, Lilly Research Laboratories, Eli Lilly and Company Indianapolis, Indiana, 46285, USA.
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