Home LiteratureArticle Details
PMID: 16551749 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Optophysiology: depth-resolved probing of retinal physiology with functional ultrahigh-resolution optical coherence tomography.

Bizheva K, Pflug R, Hermann B, Povazay B, Sattmann H, Qiu P, Anger E, Reitsamer H, Popov S, Taylor JR, Unterhuber A, Ahnelt P, Drexler W

Abstract

Noncontact, depth-resolved, optical probing of retinal response to visual stimulation with a <10-microm spatial resolution, achieved by using functional ultrahigh-resolution optical coherence tomography (fUHROCT), is demonstrated in isolated rabbit retinas. The method takes advantage of the fact that physiological changes in dark-adapted retinas caused by light stimulation can result in local variation of the tissue reflectivity. fUHROCT scans were acquired from isolated retinas synchronously with electrical recordings before, during, and after light stimulation. Pronounced stimulus-related changes in the retinal reflectivity profile were observed in the inner/outer segments of the photoreceptor layer and the plexiform layers. Control experiments (e.g., dark adaptation vs. light stimulation), pharmacological inhibition of photoreceptor function, and synaptic transmission to the inner retina confirmed that the origin of the observed optical changes is the altered physiological state of the retina evoked by the light stimulus. We have demonstrated that fUHROCT allows for simultaneous, noninvasive probing of both retinal morphology and function, which could significantly improve the early diagnosis of various ophthalmic pathologies and could lead to better understanding of pathogenesis.

MeSH Terms
Animals In Vitro Techniques Photoreceptor Cells/metabolism Rabbits Retina/cytology,physiology Tomography, Optical Coherence/methods
Authors & Affiliations
13 authors, click to expand affiliations / ORCID
Bizheva K
Center for Biomedical Engineering and Physics/Christian Doppler Laboratory, University of Vienna, A-1090 Vienna, Austria.
Pflug R
Hermann B
Povazay B
Sattmann H
Qiu P
Anger E
Reitsamer H
Popov S
Taylor J R
Unterhuber A
Ahnelt P
Drexler W
References (33)
33 references, click to expand
  1. Noninvasive detection of changes in membrane potential in cultured neurons by light scattering.
    Proc Natl Acad Sci U S A. 1991 Nov 1;88(21):9382-6 PMID: 1946349
  2. Compact, broad-bandwidth fiber laser for sub-2-microm axial resolution optical coherence tomography in the 1300-nm wavelength region.
    Opt Lett. 2003 May 1;28(9):707-9 PMID: 12747714
  3. Rapid light-induced changes in near infrared transmission of rods in Bufo marinus.
    Science. 1978 Dec 8;202(4372):1083-5 PMID: 102035
  4. The multifocal electroretinogram.
    J Neuroophthalmol. 2003 Sep;23(3):225-35 PMID: 14504596
  5. Special report: Noninvasive multi-parameter functional optical imaging of the eye.
    Ophthalmic Surg Lasers Imaging. 2005 Jan-Feb;36(1):57-66 PMID: 15688972
  6. Functional optical coherence tomography for detecting neural activity through scattering changes.
    Opt Lett. 2003 Jul 15;28(14):1218-20 PMID: 12885026
  7. Defective cone photoreceptor cytoskeleton, alignment, feedback, and energetics can lead to energy depletion in macular degeneration.
    Prog Retin Eye Res. 2004 Sep;23(5):495-522 PMID: 15302348
  8. Light and circadian regulation of retinomotor movement.
    Prog Brain Res. 2001;131:477-85 PMID: 11420964
  9. The network-selective actions of quinoxalines on the neurocircuitry operations of the rabbit retina.
    Brain Res. 1999 Jun 12;831(1-2):206-28 PMID: 10412000
  10. Electrophysiology in the investigation of acquired retinal disorders.
    Surv Ophthalmol. 2000 Jul-Aug;45(1):29-47 PMID: 10946080
  11. Compact, low-cost Ti:Al2O3 laser for in vivo ultrahigh-resolution optical coherence tomography.
    Opt Lett. 2003 Jun 1;28(11):905-7 PMID: 12816241
  12. Histologic correlation of pig retina radial stratification with ultrahigh-resolution optical coherence tomography.
    Invest Ophthalmol Vis Sci. 2003 Apr;44(4):1696-703 PMID: 12657611
  13. Analysis of ERG a-wave amplification and kinetics in terms of the G-protein cascade of phototransduction.
    Invest Ophthalmol Vis Sci. 1994 Jan;35(1):295-309 PMID: 8300357
  14. Optical coherence tomography.
    Science. 1991 Nov 22;254(5035):1178-81 PMID: 1957169
  15. Light-evoked changes in near-infrared transmission by the ON and OFF channels of the anuran retina.
    Vis Neurosci. 1993 Jul-Aug;10(4):687-92 PMID: 8338805
  16. Submicrometer axial resolution optical coherence tomography.
    Opt Lett. 2002;27(20):1800-2 PMID: 18033368
  17. G proteins and phototransduction.
    Annu Rev Physiol. 2002;64:153-87 PMID: 11826267
  18. Rapid optical coherence tomography and recording functional scattering changes from activated frog retina.
    Appl Opt. 2005 Apr 10;44(11):2019-23 PMID: 15835350
  19. In vivo ultrahigh-resolution optical coherence tomography.
    Opt Lett. 1999 Sep 1;24(17):1221-3 PMID: 18073990
  20. Measurements on fast light-induced light-scattering and -absorption changes in outer segments of vertebrate light sensitive rod cells.
    Biophys Struct Mech. 1976 Apr 15;2(1):61-77 PMID: 963228
  21. Ultrahigh-resolution optical coherence tomography.
    J Biomed Opt. 2004 Jan-Feb;9(1):47-74 PMID: 14715057
  22. Effect of bleached rhodopsin on signal amplification in rod visual receptors.
    Nature. 1990 Jun 7;345(6275):537-9 PMID: 2161501
  23. Ultrahigh-resolution optical coherence tomography using continuum generation in an air-silica microstructure optical fiber.
    Opt Lett. 2001 May 1;26(9):608-10 PMID: 18040398
  24. Contribution of rod, on-bipolar, and horizontal cell light responses to the ERG of dogfish retina.
    Vis Neurosci. 1999 May-Jun;16(3):503-11 PMID: 10349971
  25. Ultrahigh-resolution ophthalmic optical coherence tomography.
    Nat Med. 2001 Apr;7(4):502-7 PMID: 11283681
  26. Optical biopsy and imaging using optical coherence tomography.
    Nat Med. 1995 Sep;1(9):970-2 PMID: 7585229
  27. Measurement of rapid changes in cell volume by forward light scattering.
    Pflugers Arch. 2003 Oct;447(1):97-108 PMID: 12937987
  28. Enhanced visualization of macular pathology with the use of ultrahigh-resolution optical coherence tomography.
    Arch Ophthalmol. 2003 May;121(5):695-706 PMID: 12742848
  29. Photic modulation of a highly sensitive, near-infrared light-scattering signal recorded from intact retinal photoreceptors.
    Proc Natl Acad Sci U S A. 1988 Aug;85(15):5531-5 PMID: 3399504
  30. Inferred positive phototropic activity in human photoreceptors.
    Philos Trans R Soc Lond B Biol Sci. 1981 Mar 3;291(1051):323-51 PMID: 6111095
  31. Propagation of electromagnetic radiation in mitochondria?
    J Theor Biol. 2004 Sep 21;230(2):261-70 PMID: 15302557
  32. Reaction rate and collisional efficiency of the rhodopsin-transducin system in intact retinal rods.
    Biophys J. 1991 Feb;59(2):375-86 PMID: 1901231
  33. Thermal-light full-field optical coherence tomography.
    Opt Lett. 2002 Apr 1;27(7):530-2 PMID: 18007855
Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
0027-8424
Published
2006-03-28
Epub
2006-00-21
Pages
5066-71
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC1405907
Subset
IM
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com