Literature DB >> 18825267

Plastinated tissue samples as three-dimensional models for optical instrument characterization.

Daniel L Marks1, Eric J Chaney, Stephen A Boppart.   

Abstract

Histology of biological specimens is largely limited to investigating two-dimensional structure because of the sectioning required to produce optically thin samples for conventional microscopy. With the advent of three-dimensional optical imaging technologies such as optical coherence tomography (OCT), diffuse optical tomography (DOT), and multiphoton microscopy (MPM), methods of tissue preparation that minimally disrupt three-dimensional structure are needed. We propose plastination as a means of transforming tissues into three-dimensional models suitable for optical instrument characterization. Tissues are plastinated by infusing them with transparent polymers, after which they can be safely handled, unlike fresh or fixed tissues. Such models are useful for investigating three-dimensional structure, testing and comparing the performance of optical instruments, and potentially investigating tissue properties not normally observed after the three-dimensional scattering properties of a biological samples are lost. We detail our plastination procedures and show examples of imaging several plastinated tissues from a pre-clinical rat model using optical coherence tomography.

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Year:  2008        PMID: 18825267      PMCID: PMC3042746          DOI: 10.1364/oe.16.016272

Source DB:  PubMed          Journal:  Opt Express        ISSN: 1094-4087            Impact factor:   3.894


  32 in total

1.  Near-infrared dyes as contrast-enhancing agents for spectroscopic optical coherence tomography.

Authors:  Chenyang Xu; Jian Ye; Daniel L Marks; Stephen A Boppart
Journal:  Opt Lett       Date:  2004-07-15       Impact factor: 3.776

2.  Inverse scattering for high-resolution interferometric microscopy.

Authors:  Tyler S Ralston; Daniel L Marks; Stephen A Boppart; P Scott Carney
Journal:  Opt Lett       Date:  2006-12-15       Impact factor: 3.776

3.  Tissue phantom for optical diagnostics based on a suspension of microspheres with a fractal size distribution.

Authors:  D Passos; J C Hebden; P N Pinto; R Guerra
Journal:  J Biomed Opt       Date:  2005 Nov-Dec       Impact factor: 3.170

4.  Texture analysis of speckle in optical coherence tomography images of tissue phantoms.

Authors:  Kirk W Gossage; Cynthia M Smith; Elizabeth M Kanter; Lida P Hariri; Alice L Stone; Jeffrey J Rodriguez; Stuart K Williams; Jennifer K Barton
Journal:  Phys Med Biol       Date:  2006-03-01       Impact factor: 3.609

5.  Fluorescence quenching by polystyrene microspheres in UV-visible and NIR tissue-simulating phantoms.

Authors:  Karthik Vishwanath; Wei Zhong; Melanie Close; Mary-Ann Mycek
Journal:  Opt Express       Date:  2006-08-21       Impact factor: 3.894

6.  Two-photon laser scanning fluorescence microscopy.

Authors:  W Denk; J H Strickler; W W Webb
Journal:  Science       Date:  1990-04-06       Impact factor: 47.728

7.  An improved design for a stable and reproducible phantom material for use in near-infrared spectroscopy and imaging.

Authors:  M Firbank; M Oda; D T Delpy
Journal:  Phys Med Biol       Date:  1995-05       Impact factor: 3.609

8.  A solid tissue phantom for photon migration studies.

Authors:  R Cubeddu; A Pifferi; P Taroni; A Torricelli; G Valentini
Journal:  Phys Med Biol       Date:  1997-10       Impact factor: 3.609

9.  Effect of tissue preservation on imaging using ultrahigh resolution optical coherence tomography.

Authors:  Pei-Lin Hsiung; Prashant R Nambiar; James G Fujimoto
Journal:  J Biomed Opt       Date:  2005 Nov-Dec       Impact factor: 3.170

10.  Tissue-like phantoms for near-infrared fluorescence imaging system assessment and the training of surgeons.

Authors:  Alec M De Grand; Stephen J Lomnes; Deborah S Lee; Matthew Pietrzykowski; Shunsuke Ohnishi; Timothy G Morgan; Andrew Gogbashian; Rita G Laurence; John V Frangioni
Journal:  J Biomed Opt       Date:  2006 Jan-Feb       Impact factor: 3.170

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