Home LiteratureArticle Details
PMID: 1104295 Published · ppublish English Journal Article Review

The function of the retina in the perfused eye.

Documenta ophthalmologica. Advances in ophthalmology ·Vol. 39 ·No. 1 ·1975-11-21 ·Pages 53-116

Niemeyer G

Abstract

The data show that the enucleated eye of the cat can be maintained in apparently physiologically functioning condition by appropriate arterial perfusion. Under appropriate conditions, photically evoked electrical mass responses can be recorded from various parts of the isolated, perfused eye for 8 to 10 hours. ERGs as well as responses from axonal bundles of the optic nerve exhibit shapes, amplitudes and time courses comparable to their counterparts in vivo. Homeostasis of the perfusion ensures the stability of these light-evoked electrical responses. Transient changes in biophysical parameters of the perfusate rapidly induce marked, although reversible, changes in the amplitudes of b-waves of the ERGs. Increases or decreases in the flow rate of the perfusate induce parallel increases or decreases in the amplitudes of the b-waves as well as of the optic nerve responses. Similar alterations in the oxygen concentration of the perfusate induce similar and proportional changes in the amplitudes of the b-waves. It is concluded, that low flow rates of hemoglobin-free perfusate induce hypoxia; consequently, acceleration of the flow can compensate for hypoxia in a certain range. Previous studies on the effects of and recovery after transient hypoxia in mammalian retina are in concordance with the present data. Progressive decrease of temperature induces gradual and reversible reductions in the amplitudes of the b-waves and increases their latencies and peak-times. It is suggested, that initial hypothermia, which occurs during the period of cannulation, reduces the deliterious effects of the coincident unavoidable hypoxia on retinal neuronal elements. Since light-evoked electrical responses can be maintained for many hours in these preparations and since movements of cardiovascular and respiratory origin, invariably present to varying extent in the in vivo experiments, are eliminated, this preparation is suitable for intracellular recordings from neuronal elements of the retina. Potentials were recorded from cells in various layers of the retina of the cat; intracellular recordings from horizontal cells (S-potentials) are described in detail. Spectral analysis of S-potentials allowed to distinguish between three types according to their inputs: a mixed, rod-cone type, which was most frequently encountered, a pure cone- and a pure rod-type. Light- and electronmicroscopic investigation of the retina after perfusion revealed that (1) the extent of cellular damage depends on the flow rate of the perfusate; (2) little cellular damage is observed if medium flow rates, which maintain physiologic responsiveness of the isolated eye to light, were applied for two hours; (3) high flow rates applied for two hours, or medium flow rates applied for 7 hours appear to induce cystic changes in the pigment epithelium, but only minor changes in the cells of the inner nuclear layer.

MeSH Terms
Animals Anura Cats Electroretinography Evoked Potentials Hypoxia/complications In Vitro Techniques Neurons/physiology Optic Disk/physiology Optic Nerve/physiology Oxygen/pharmacology Perfusion/instrumentation,methods Photic Stimulation Pigment Epithelium of Eye/physiology Retina/drug effects,physiology,ultrastructure Retinal Vessels/physiology Temperature Time Factors
Chemicals
Oxygen
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
Niemeyer G
References (100)
100 references, click to expand
  1. The role of neural mechanisms in the regulation of intraocular pressure in the cat.
    Exp Neurol. 1960 Jun;2:199-220 PMID: 14415518
  2. Uveal extraction and clearance of oxygen in normal, inflamed and hyperthermic eyes.
    Ophthalmologica. 1966;152(1):37-45 PMID: 5919997
  3. The connections between bipolar cells and photoreceptors in the retina of the domestic cat.
    J Comp Neurol. 1973 Mar 1;148(1):91-114 PMID: 4633446
  4. VASCULATURE OF THE CAT EYE.
    Arch Ophthalmol. 1964 Sep;72:351-8 PMID: 14186779
  5. [Phototopic dominator in flicker electroretinography in rats].
    Pflugers Arch Gesamte Physiol Menschen Tiere. 1958;266(2):175-86 PMID: 13553735
  6. Optic nerve axon diameters measured in the cat retina: some functional considerations.
    Exp Brain Res. 1971 Nov 30;13(5):498-503 PMID: 5137299
  7. Rod and cone pathways in the inner plexiform layer of cat retina.
    Science. 1974 Oct 4;186(4158):47-9 PMID: 4417736
  8. Circumvention of anoxia during arrest of cerebral circulation for intracranial surgery.
    J Neurosurg. 1955 May;12(3):226-39 PMID: 14381930
  9. Synaptic connections made by horizontal cells within the outer plexiform layer of the retina of the cat and the rabbit.
    Proc R Soc Lond B Biol Sci. 1974 Jul 30;186(1085):317-31 PMID: 4154444
  10. Electrophysiological investigations of the frog retina.
    Cold Spring Harb Symp Quant Biol. 1952;17:165-73 PMID: 13049163
  11. Significance of diffusion loss of oxygen in determining respiration of isolated, perfused organs.
    Pflugers Arch. 1971;323(1):80-5 PMID: 5100572
  12. Failure of the visual pathway during anoxia.
    Am J Physiol. 1950 Jun 1;161(3):573-90 PMID: 15432662
  13. The origin of the electroretinogram.
    Am J Ophthalmol. 1954 Jul;38(1:2):78-90 PMID: 13180621
  14. Cerebral effects of experimental hypothermia.
    AMA Arch Surg. 1954 Feb;68(2):208-15 PMID: 13123656
  15. SOME PROPERTIES OF COMPONENTS OF THE CAT ELECTRORETINOGRAM REVEALED BY LOCAL RECORDING UNDER OIL.
    J Physiol. 1965 Feb;176:429-61 PMID: 14288517
  16. Organization of the retina of the mudpuppy, Necturus maculosus. II. Intracellular recording.
    J Neurophysiol. 1969 May;32(3):339-55 PMID: 4306897
  17. Identification of horizontal cells as S-potential generators in the cat retina by intracellular dye injection.
    Vision Res. 1970 Sep;10(9):817-20 PMID: 5492771
  18. The electroretinogram of the isolated rat retina.
    Vision Res. 1972 Jun;12(6):1183-98 PMID: 5043568
  19. Evoked electrical activity of the brain during hypothermia; the visual system.
    AMA Arch Neurol Psychiatry. 1958 Nov;80(5):554-61 PMID: 13582291
  20. The effect of lowered body temperature on the cerebral hemodynamics and metabolism of man.
    Surg Gynecol Obstet. 1956 Sep;103(3):313-7 PMID: 13360635
  21. The eclectroretinogram: its components and their origins.
    Vision Res. 1968 Jun;8(6):633-77 PMID: 4978009
  22. A quantitative analysis of the distribution of ganglion cells in the cat's retina.
    J Comp Neurol. 1965 Jun;124(3):337-52 PMID: 4955540
  23. Neurotransmission in central nervous tissue: a study of isolated rabbit retina.
    J Neurophysiol. 1969 May;32(3):424-42 PMID: 4308417
  24. UVEAL BLOOD FLOW DETERMINED BY THE NITROUS OXIDE METHOD.
    Invest Ophthalmol. 1964 Apr;3:227-36 PMID: 14166279
  25. Physiological and morphological identification of horizontal, bipolar and amacrine cells in goldfish retina.
    J Physiol. 1970 May;207(3):623-33 PMID: 5499739
  26. Intraretinal recording with micropipette electrodes in the intact cat eye.
    J Physiol. 1959 Dec;149:537-62 PMID: 13804971
  27. Electroretinography: Some basic principles.
    Invest Ophthalmol. 1970 Aug;9(8):557-69 PMID: 5311619
  28. The action of light on the eye: Part I. The discharge of impulses in the optic nerve and its relation to the electric changes in the retina.
    J Physiol. 1927 Sep 9;63(4):378-414 PMID: 16993896
  29. [The significance of constant temperature conditions for electroretinogram studies in infant mammals].
    Experientia. 1959 Jul 15;15:269-70 PMID: 13802897
  30. Fixation in aldehydes. A study on the influence of the fixative, buffer, and osmolarity upon the fixation of the rat retina.
    J Ultrastruct Res. 1974 Jan;46(1):87-102 PMID: 4130468
  31. Organization of the outer plexiform layer of the primate retina: electron microscopy of Golgi-impregnated cells.
    Philos Trans R Soc Lond B Biol Sci. 1970 May 7;258(823):261-83 PMID: 22408829
  32. Intracellular recording from the isolated perfused mammalian eye.
    Vision Res. 1973 Aug;13(8):1613-8 PMID: 4719090
  33. [Influence of anoxia upon ERG and standing potential of the mammalian eyes].
    Nippon Ganka Gakkai Zasshi. 1966 Oct;70(10):1536-47 PMID: 6010229
  34. [The electrogram of the unperfused human retina].
    Ber Zusammenkunft Dtsch Ophthalmol Ges. 1961;63:316-8 PMID: 14039259
  35. Organization of vertebrate retinas.
    Invest Ophthalmol. 1970 Sep;9(9):655-80 PMID: 4915972
  36. Retinal function in an isolated, perfused mammalian eye.
    Invest Ophthalmol. 1970 May;9(5):388-99 PMID: 4314884
  37. A modified aldehyde perfusion technique for preventing certain artifacts in electron microscopy of the central nervous system.
    J Microsc. 1970;92(2):69-84 PMID: 5537202
  38. The horizontal cells of the rhesus monkey retina.
    J Comp Neurol. 1973 Mar 1;148(1):115-39 PMID: 4121525
  39. [The influence of the environmental temperature on the retinal survival time of enucleated eyeballs].
    Vision Res. 1964 Dec;4(11):609-25 PMID: 5888629
  40. Oxygen and carbon dioxide transfer in membrane oxygenators.
    Med Biol Eng. 1969 Mar;7(2):169-84 PMID: 5802203
  41. OSCILLATORY POTENTIALS IN THE VISUAL SYSTEM OF CATS AND MONKEYS.
    J Physiol. 1963 Aug;168:205-18 PMID: 14056488
  42. Localization of origins of electroretinogram components by intraretinal recording in the intact cat eye.
    J Physiol. 1961 Sep;158:257-80 PMID: 13873687
  43. The distribution of rods and cones in the retina of the cat (Felis domesticus).
    J Comp Neurol. 1973 Mar 15;148(2):229-48 PMID: 4700509
  44. A method for quantitative determination of the blood flow through the cat uvea.
    Arch Ophthalmol. 1962 Feb;67:156-62 PMID: 13869180
  45. [Importance of plasma factors for the isolated perfused rabbit retina].
    Experientia. 1966 Apr 15;22(4):215-6 PMID: 5955981
  46. [Studies on the electroretinogram of the isolated rat eyeball].
    Nippon Ganka Gakkai Zasshi. 1972 Sep;76(9):884-92 PMID: 4675312
  47. [Special survival conditions for isolated retinas of various warm-blooded animals].
    Experientia. 1965 Aug 15;21(8):484-5 PMID: 5870933
  48. Receptor pedicle density in the cat's retina.
    Brain Res. 1972 Jul 20;42(2):497-502 PMID: 5050180
  49. Conduction velocity groups in the cat's optic nerve classified according to their retinal origin.
    Exp Brain Res. 1971 Nov 30;13(5):489-97 PMID: 5137298
  50. [ERG sensitivity and rhodopsin content of the isolated human retina].
    Pflugers Arch. 1973 Jul 6;341(3):219-32 PMID: 4737414
  51. The components of the retinal action potential in mammals and their relation to the discharge in the optic nerve.
    J Physiol. 1933 Feb 8;77(3):207-39 PMID: 16994385
  52. RETINAL EXCITATION AND INHIBITION FROM DIRECT ELECTRICAL STIMULATION.
    J Neurophysiol. 1963 Nov;26:924-47 PMID: 14084167
  53. Organization of the primate retina: electron microscopy.
    Proc R Soc Lond B Biol Sci. 1966 Nov 15;166(1002):80-111 PMID: 4382694
  54. Incremental responses to light recorded from pigment epithelial cells and horizontal cells of the cat retina.
    J Physiol. 1971 Aug;217(1):93-110 PMID: 5571955
  55. [Retinal sensitivity, crystalline lens absorption of physical light diffusion; scotopic dominator in cats in visible and ultraviolet spectral regions].
    Pflugers Arch Gesamte Physiol Menschen Tiere. 1958;266(2):167-74 PMID: 13553734
  56. The rod after-effect in S-potentials from the cat retina.
    Vision Res. 1969 Nov;9(11):1345-55 PMID: 5358839
  57. Recording of single unit activity in isolated central nervous tissue.
    Science. 1961 Jun 2;133(3466):1767-8 PMID: 13682988
  58. The oxygen supply to the retina. I. Effects of changes in intraocular and arterial blood pressures, and in arterial P O2 and P CO2 on the oxygen tension in the vitreous body of the cat.
    Acta Physiol Scand. 1972 Feb;84(2):261-74 PMID: 5015191
  59. Fast intraretinal potentials of the isolated mammalian retina.
    Vision Res. 1972 May;12(5):781-91 PMID: 5037701
  60. The morphological types of ganglion cells of the domestic cat's retina.
    J Physiol. 1974 Jul;240(2):397-419 PMID: 4422168
  61. Localization of electrical activity in the cat retina by an electrode marking method.
    J Physiol. 1961 Sep;158:281-95 PMID: 13873684
  62. Studies on the ultrastructure of the retina in the isolated and perfused feline eye.
    Vision Res. 1975 Jul;15(7):809-12 PMID: 1154660
  63. Effects of anoxia, CO2 and NH3 on S-potential producing cells and on neurons.
    Pflugers Arch Gesamte Physiol Menschen Tiere. 1966;292(3):177-205 PMID: 5234189
  64. The optic nerve; properties of a central tract.
    J Physiol. 1953 Aug;121(2):415-32 PMID: 13085344
  65. [Light sensitivity of the isolated rabbit retina].
    Wien Klin Wochenschr. 1967 Jun 16;79(24):460-3 PMID: 5586369
  66. Intraretinal recording in the unopened cat eye.
    Am J Ophthalmol. 1958 Sep;46(3 Part 2):91-6; discussion 96-8 PMID: 13571362
  67. A stable preparation for rat brain perfusion: effect of flow rate on glucose uptake.
    J Appl Physiol. 1972 May;32(5):658-63 PMID: 5038854
  68. [Effects of temperature and sodium aspartate on the ERG of the albino rabbit retina].
    Nippon Ganka Gakkai Zasshi. 1971 Mar;75(3):1071-5 PMID: 5102366
  69. Intracellular responses to light from cat pigment epithelium: origin of the electroretinogram c-wave.
    Nature. 1970 Aug 15;227(5259):728-30 PMID: 5432076
  70. The action of light on the eye: Part II. The processes involved in retinal excitation.
    J Physiol. 1927 Dec 29;64(3):279-301 PMID: 16993920
  71. VISUAL OPTICS IN THE CAT, INCLUDING POSTERIOR NODAL DISTANCE AND RETINAL LANDMARKS.
    Vision Res. 1963 Nov;61:289-314 PMID: 14168297
  72. Blood flow and oxygen extraction in the cat uvea at normal and high intraocular pressures.
    Acta Physiol Scand. 1970 Sep;80(1):19-28 PMID: 5475327
  73. Intracellular responses of the Müller (glial) cells of mudpuppy retina: their relation to b-wave of the electroretinogram.
    J Neurophysiol. 1970 May;33(3):323-41 PMID: 5439340
  74. [On the recovery of various positive components of the electroretinogram following retinal and choroidal ischemia as depending on temperature].
    Ber Zusammenkunft Dtsch Ophthalmol Ges. 1968;68:377-81 PMID: 5756802
  75. [Bioelectric activity and oxygen consumption of isolated potential builders at oxygen pressures between 0 and 10 atmospheres].
    Pflugers Arch Gesamte Physiol Menschen Tiere. 1958;267(6):636-48 PMID: 13613928
  76. The nerve fibre composition of the cat optic nerve.
    J Anat. 1967 Jan;101(Pt 1):1-11 PMID: 6047699
  77. The electroretinogram of the living extracorporeal bovine eye. The influence of anoxia and hypothermia.
    Invest Ophthalmol. 1972 Aug;11(8):691-8 PMID: 5044721
  78. [The electronic-flash ERG of isolated retinas of warm-blooded animals. II. Influence of intensity and temperature on the positive waves].
    Vision Res. 1970 Oct;10(10):1035-43 PMID: 5492787
  79. Acetazolamide and the venous pressure of the eye.
    Arch Ophthalmol. 1960 Jun;63:953-65 PMID: 14419646
  80. Rod-cone interaction in S-potentials from the cat retina.
    Vision Res. 1969 Nov;9(11):1331-44 PMID: 5358838
  81. Effects of temperature on S-potential producing cells and on neurons.
    Pflugers Arch Gesamte Physiol Menschen Tiere. 1966;292(3):206-17 PMID: 5234190
  82. The time relations of the photo-electric changes in the eyeball of the frog.
    J Physiol. 1903 Jun 15;29(4-5):388-410 PMID: 16992679
  83. The effect of diphenylhydantoin on the electroretinogram of rabbits. II. Effects of hypoxia and potassium.
    Invest Ophthalmol. 1973 Aug;12(8):573-8 PMID: 4742057
  84. Rod-dependent intracellular responses to light recorded from the pigment epithelium of the cat retina.
    J Physiol. 1971 Aug;217(1):71-91 PMID: 5571953
  85. Rod and cone contributions to S-potentials from the cat retina.
    Vision Res. 1969 Nov;9(11):1319-29 PMID: 5358837
  86. Effects of glucose and oxygen deprivation on function of isolated mammalian retina.
    J Neurophysiol. 1963 Jul;26:617-34 PMID: 14012566
  87. Rod and cone signals in S-potentials of the isolated perfused cat eye.
    Vision Res. 1973 Aug;13(8):1603-12 PMID: 4719089
  88. Rod responses in retinitis pigmentosa, dominantly inherited.
    Arch Ophthalmol. 1968 Jul;80(1):58-67 PMID: 5660019
  89. [Oxygen pressure and b-wave of electroretinogram of isolated frog eyes].
    Pflugers Arch Gesamte Physiol Menschen Tiere. 1956;263(5):566-76 PMID: 13400630
  90. ERG dependence on flow rate in the isolated and perfused mammalian eye.
    Brain Res. 1973 Jul 16;57(1):203-7 PMID: 4716752
  91. Effects of extended hypoxia on visual performance and retinal vascular state.
    J Appl Physiol. 1971 Sep;31(3):357-62 PMID: 5111853
  92. Discharge patterns and functional organization of mammalian retina.
    J Neurophysiol. 1953 Jan;16(1):37-68 PMID: 13035466
  93. Measurement of function in an in vitro preparation of mammalian central nervous tissue.
    J Neurophysiol. 1960 Nov;23:676-91 PMID: 13682987
  94. Evidence for the anoxia sensitivity of the synaptic region at the outer plexiform layer in the fish retina.
    Vision Res. 1973 May;13(5):983-7 PMID: 4706722
  95. The connections between horizontal cells and photoreceptors in the retina of the cat: electron microscopy of Golgi preparations.
    J Comp Neurol. 1974 May 1;155(1):1-14 PMID: 4836060
  96. Oscillatory activity in the optic tract of cat and light adaptation.
    J Neurophysiol. 1966 Mar;29(2):139-56 PMID: 5927454
  97. Rapid effects of light and dark adaptation upon the receptive field organization of S-potentials and late receptor potentials.
    Vision Res. 1968 Sep;8(9):1145-71 PMID: 4971582
  98. The electroretinogram during terminal anoxia in humans.
    Electroencephalogr Clin Neurophysiol. 1971 Dec;31(6):537-46 PMID: 4111477
  99. Velocity profiles in the retinal microcirculation.
    Bibl Anat. 1973;11:448-52 PMID: 4207767
  100. Ganglion, amacrine and horizontal cells of the cat's retina.
    Vision Res. 1967 Sep;7(9):695-705 PMID: 4181430
Article Info
Journal
Documenta ophthalmologica. Advances in ophthalmology
Abbr.
Doc Ophthalmol
ISSN
0012-4486
Published
1975-11-21
Pages
53-116
Language
English
Region
Netherlands
NLM ID
0370667
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