Literature DB >> 12932772

Resolution enhancement by subtraction of confocal signals taken at different pinhole sizes.

Rainer Heintzmann1, Vassilios Sarafis, Paul Munroe, John Nailon, Quentin S Hanley, Thomas M Jovin.   

Abstract

Subtractive imaging in confocal fluorescence light microscopy is based on the subtraction of a suitably weighted widefield image from a confocal image. An approximation to a widefield image can be obtained by detection with an opened confocal pinhole. The subtraction of images enhances the resolution in-plane as well as along the optic axis. Due to the linearity of the approach, the effect of subtractive imaging in Fourier-space corresponds to a reduction of low spatial frequency contributions leading to a relative enhancement of the high frequencies. Along the direction of the optic axis this also results in an improved sectioning. Image processing can achieve a similar effect. However, a 3D volume dataset must be acquired and processed, yielding a result essentially identical to subtractive imaging but superior in signal-to-noise ratio. The latter can be increased further with the technique of weighted averaging in Fourier-space. A comparison of 2D and 3D experimental data analysed with subtractive imaging, the equivalent Fourier-space processing of the confocal data only, and Fourier-space weighted averaging is presented.

Mesh:

Year:  2003        PMID: 12932772     DOI: 10.1016/s0968-4328(03)00054-4

Source DB:  PubMed          Journal:  Micron        ISSN: 0968-4328            Impact factor:   2.251


  12 in total

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Review 6.  A guide to super-resolution fluorescence microscopy.

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7.  Breaking the diffraction barrier using fluorescence emission difference microscopy.

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8.  Intensity Weighted Subtraction Microscopy Approach for Image Contrast and Resolution Enhancement.

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Review 9.  Navigating challenges in the application of superresolution microscopy.

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