Literature DB >> 26607393

Relationship between retinal blood flow and arterial oxygen.

Richard W Cheng1,2,3, Firdaus Yusof1,3,4, Edmund Tsui1, Monica Jong1,5, James Duffin2,6,7, John G Flanagan1,8,9, Joseph A Fisher2,6,7, Chris Hudson1,3,8.   

Abstract

KEY POINTS: Vascular reactivity, the response of the vessels to a vasoactive stimulus such as hypoxia and hyperoxia, can be used to assess the vascular range of adjustment in which the vessels are able to compensate for changes in PO2. Previous studies in the retina have not accurately quantified retinal vascular responses and precisely targeted multiple PaO2 stimuli at the same time as controlling the level of carbon dioxide, thus precluding them from modelling the relationship between retinal blood flow and oxygen. The present study modelled the relationship between retinal blood flow and PaO2, showing them to be a combined linear and hyperbolic function. This model demonstrates that the resting tonus of the vessels is at the mid-point and that they have great vascular range of adjustment, compensating for decreases in oxygen above a PETCO2 of 32-37 mmHg but being limited below this threshold. Retinal blood flow (RBF) increases in response to a reduction in oxygen (hypoxia) but decreases in response to increased oxygen (hyperoxia). However, the relationship between blood flow and the arterial partial pressure of oxygen has not been quantified and modelled in the retina, particularly in the vascular reserve and resting tonus of the vessels. The present study aimed to determine the limitations of the retinal vasculature by modelling the relationship between RBF and oxygen. Retinal vascular responses were measured in 13 subjects for eight different blood gas conditions, with the end-tidal partial pressure of oxygen (PETCO2) ranging from 40-500 mmHg. Retinal vascular response measurements were repeated twice; using the Canon laser blood flowmeter (Canon Inc., Tokyo, Japan) during the first visit and using Doppler spectral domain optical coherence tomography during the second visit. We determined that the relationship between RBF and PaO2 can be modelled as a combination of hyperbolic and linear functions. We concluded that RBF compensated for decreases in arterial oxygen content for all stages of hypoxia used in the present study but can no longer compensate below a PETCO2 of 32-37 mmHg. These vessels have a great vascular range of adjustment, increasing diameter (8.5% arteriolar and 21% total venous area) with hypoxia (40 mmHg P ETC O2; P < 0.001) and decreasing diameter (6.9% arteriolar and 23% total venous area) with hyperoxia (500 mmHg PETCO2; P < 0.001) to the same extent. This indicates that the resting tonus is near the mid-point of the adjustment ranges at resting PaO2 where sensitivity is maximum.
© 2015 The Authors. The Journal of Physiology © 2015 The Physiological Society.

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Year:  2015        PMID: 26607393      PMCID: PMC5341714          DOI: 10.1113/JP271182

Source DB:  PubMed          Journal:  J Physiol        ISSN: 0022-3751            Impact factor:   5.182


  47 in total

Review 1.  Isolated preparations of ocular vasculature and their applications in ophthalmic research.

Authors:  Dao-Yi Yu; Er-Ning Su; Stephen J Cringle; Paula K Yu
Journal:  Prog Retin Eye Res       Date:  2003-03       Impact factor: 21.198

2.  Extracellular lactate as a dynamic vasoactive signal in the rat retinal microvasculature.

Authors:  Shigeki Yamanishi; Kozo Katsumura; Takatoshi Kobayashi; Donald G Puro
Journal:  Am J Physiol Heart Circ Physiol       Date:  2005-11-18       Impact factor: 4.733

3.  The interaction of carbon dioxide and hypoxia in the control of cerebral blood flow.

Authors:  Alexandra Mardimae; Dahlia Y Balaban; Matthew A Machina; Anne Battisti-Charbonney; Jay S Han; Rita Katznelson; Leonid L Minkovich; Ludwik Fedorko; Patricia M Murphy; Marcin Wasowicz; Finola Naughton; Massimiliano Meineri; Joseph A Fisher; James Duffin
Journal:  Pflugers Arch       Date:  2012-09-09       Impact factor: 3.657

4.  Vascular response of retinal arteries and veins to acute hypoxia of 8,000, 10,000, 12,500, and 15,000 feet of simulated altitude.

Authors:  O Brinchmann-Hansen; K Myhre
Journal:  Aviat Space Environ Med       Date:  1990-02

5.  The effect of arterial PCO 2 on relative retinal blood flow in monkeys.

Authors:  M Tsacopoulos; N J David
Journal:  Invest Ophthalmol       Date:  1973-05

6.  Myogenic vasoregulation overrides local metabolic control in resting rat skeletal muscle.

Authors:  G A Meininger; C A Mack; K L Fehr; H G Bohlen
Journal:  Circ Res       Date:  1987-06       Impact factor: 17.367

7.  The contrast sensitivity of cat retinal ganglion cells at reduced oxygen tensions.

Authors:  C Enroth-Cugell; T K Goldstick; R A Linsenmeier
Journal:  J Physiol       Date:  1980-07       Impact factor: 5.182

8.  Systemic hyperoxia and retinal vasomotor responses.

Authors:  Seendy Jean-Louis; John V Lovasik; Hélène Kergoat
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9.  Electrophysiological consequences of retinal hypoxia.

Authors:  R A Linsenmeier
Journal:  Graefes Arch Clin Exp Ophthalmol       Date:  1990       Impact factor: 3.117

10.  Corelease of nitric oxide and prostaglandins mediates flow-dependent dilation of rat gracilis muscle arterioles.

Authors:  A Koller; D Sun; A Huang; G Kaley
Journal:  Am J Physiol       Date:  1994-07
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7.  Longitudinal stability of retinal blood flow regulation in response to flicker stimulation and systemic hyperoxia in mice assessed with laser speckle flowgraphy.

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8.  Retinal Vascular Reactivity in Type 1 Diabetes Patients Without Retinopathy Using Optical Coherence Tomography Angiography.

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9.  Relating Retinal Vascular Oxygen Saturation and Microvasculature Morphology at Progressive Stages of Diabetic Retinopathy.

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10.  A case of retinal vascular involvement in a 6-year-old patient with Covid-19.

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