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1.
J Phys D Appl Phys ; 53(16): 163001, 2020 Apr 15.
Artigo em Inglês | MEDLINE | ID: mdl-33994582

RESUMO

Super-resolution microscopy (SRM) enables non-invasive, molecule-specific imaging of the internal structure and dynamics of cells with sub-diffraction limit spatial resolution. One of its major limitations is the requirement for high-intensity illumination, generating considerable cellular phototoxicity. This factor considerably limits the capacity for live-cell observations, particularly for extended periods of time. Here, we give an overview of new developments in hardware, software and probe chemistry aiming to reduce phototoxicity. Additionally, we discuss how the choice of biological model and sample environment impacts the capacity for live-cell observations.

2.
J Phys D Appl Phys ; 52(16): 163001, 2019 Apr 17.
Artigo em Inglês | MEDLINE | ID: mdl-33191949

RESUMO

Super-resolution microscopy (SRM) has become essential for the study of nanoscale biological processes. This type of imaging often requires the use of specialised image analysis tools to process a large volume of recorded data and extract quantitative information. In recent years, our team has built an open-source image analysis framework for SRM designed to combine high performance and ease of use. We named it NanoJ-a reference to the popular ImageJ software it was developed for. In this paper, we highlight the current capabilities of NanoJ for several essential processing steps: spatio-temporal alignment of raw data (NanoJ-Core), super-resolution image reconstruction (NanoJ-SRRF), image quality assessment (NanoJ-SQUIRREL), structural modelling (NanoJ-VirusMapper) and control of the sample environment (NanoJ-Fluidics). We expect to expand NanoJ in the future through the development of new tools designed to improve quantitative data analysis and measure the reliability of fluorescent microscopy studies.

3.
Int J Biochem Cell Biol ; 101: 74-79, 2018 08.
Artigo em Inglês | MEDLINE | ID: mdl-29852248

RESUMO

Super-resolution microscopy techniques break the diffraction limit of conventional optical microscopy to achieve resolutions approaching tens of nanometres. The major advantage of such techniques is that they provide resolutions close to those obtainable with electron microscopy while maintaining the benefits of light microscopy such as a wide palette of high specificity molecular labels, straightforward sample preparation and live-cell compatibility. Despite this, the application of super-resolution microscopy to dynamic, living samples has thus far been limited and often requires specialised, complex hardware. Here we demonstrate how a novel analytical approach, Super-Resolution Radial Fluctuations (SRRF), is able to make live-cell super-resolution microscopy accessible to a wider range of researchers. We show its applicability to live samples expressing GFP using commercial confocal as well as laser- and LED-based widefield microscopes, with the latter achieving long-term timelapse imaging with minimal photobleaching.


Assuntos
Corantes Fluorescentes/química , Microscopia de Fluorescência/métodos , Imagem Molecular/métodos , Imagem com Lapso de Tempo/métodos , Algoritmos , Animais , Células COS , Carbocianinas/química , Chlorocebus aethiops , Expressão Gênica , Proteínas de Fluorescência Verde/genética , Proteínas de Fluorescência Verde/metabolismo , Processamento de Imagem Assistida por Computador/estatística & dados numéricos , Microscopia de Fluorescência/instrumentação , Imagem Molecular/instrumentação , Compostos Orgânicos/química , Faloidina/química , Proteínas Recombinantes de Fusão/genética , Proteínas Recombinantes de Fusão/metabolismo , Imagem com Lapso de Tempo/instrumentação , Utrofina/genética , Utrofina/metabolismo
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