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. 2001 May;80(5):2455–2470. doi: 10.1016/S0006-3495(01)76214-5

Image restoration for confocal microscopy: improving the limits of deconvolution, with application to the visualization of the mammalian hearing organ.

J Boutet de Monvel 1, S Le Calvez 1, M Ulfendahl 1
PMCID: PMC1301433  PMID: 11325744

Abstract

Deconvolution algorithms have proven very effective in conventional (wide-field) fluorescence microscopy. Their application to confocal microscopy is hampered, in biological experiments, by the presence of important levels of noise in the images and by the lack of a precise knowledge of the point spread function (PSF) of the system. We investigate the application of wavelet-based processing tools to deal with these problems, in particular wavelet denoising methods, which turn out to be very effective in application to three-dimensional confocal images. When used in combination with more classical deconvolution algorithms, these methods provide a robust and efficient restoration scheme allowing one to deal with difficult imaging conditions. To make our approach applicable in practical situations, we measured the PSF of a Biorad-MRC1024 confocal microscope under a large set of imaging conditions, including in situ acquisitions. As a specific biological application, we present several examples of restorations of three-dimensional confocal images acquired inside an intact preparation of the hearing organ. We also provide a quantitative assessment of the gain in quality achieved by wavelet-aided restorations over classical deconvolution schemes, based on a set of numerical experiments that we performed with test images.

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Selected References

These references are in PubMed. This may not be the complete list of references from this article.

  1. Carlucci D. M., Inoue Ji J. Image restoration using the chiral Potts spin glass. Phys Rev E Stat Phys Plasmas Fluids Relat Interdiscip Topics. 1999 Sep;60(3):2547–2553. doi: 10.1103/physreve.60.2547. [DOI] [PubMed] [Google Scholar]
  2. Flock A., Flock B., Fridberger A., Scarfone E., Ulfendahl M. Supporting cells contribute to control of hearing sensitivity. J Neurosci. 1999 Jun 1;19(11):4498–4507. doi: 10.1523/JNEUROSCI.19-11-04498.1999. [DOI] [PMC free article] [PubMed] [Google Scholar]
  3. Flock A., Scarfone E., Ulfendahl M. Vital staining of the hearing organ: visualization of cellular structure with confocal microscopy. Neuroscience. 1998 Mar;83(1):215–228. doi: 10.1016/s0306-4522(97)00335-7. [DOI] [PubMed] [Google Scholar]
  4. Le Calvez S., Ulfendahl M. An in vitro preparation to access cellular and neuronal components in the mouse inner ear. J Neurocytol. 2000 Sep;29(9):645–652. doi: 10.1023/a:1010831303845. [DOI] [PubMed] [Google Scholar]
  5. Nishimori H., Wong K. Y. Statistical mechanics of image restoration and error-correcting codes. Phys Rev E Stat Phys Plasmas Fluids Relat Interdiscip Topics. 1999 Jul;60(1):132–144. doi: 10.1103/physreve.60.132. [DOI] [PubMed] [Google Scholar]
  6. Petersen N. O. Scanning fluorescence correlation spectroscopy. I. Theory and simulation of aggregation measurements. Biophys J. 1986 Apr;49(4):809–815. doi: 10.1016/S0006-3495(86)83709-2. [DOI] [PMC free article] [PubMed] [Google Scholar]
  7. Ulfendahl M., Flock A., Khanna S. M. A temporal bone preparation for the study of cochlear micromechanics at the cellular level. Hear Res. 1989 Jun 15;40(1-2):55–64. doi: 10.1016/0378-5955(89)90099-3. [DOI] [PubMed] [Google Scholar]
  8. Ulfendahl M., Scarfone E., Flock A., Le Calvez S., Conradi P. Perilymphatic fluid compartments and intercellular spaces of the inner ear and the organ of Corti. Neuroimage. 2000 Sep;12(3):307–313. doi: 10.1006/nimg.2000.0617. [DOI] [PubMed] [Google Scholar]

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