Literature DB >> 20302861

Choroidal blood flow compensation in rats for arterial blood pressure decreases is neuronal nitric oxide-dependent but compensation for arterial blood pressure increases is not.

Anton Reiner1, Chunyan Li, Nobel Del Mar, Malinda E C Fitzgerald.   

Abstract

Choroidal blood flow (ChBF) compensates for changes in arterial blood pressure (ABP) and thereby remains relatively stable within a +/-40 mmHg range of basal ABP in rabbits, humans and pigeons. In the present study, we investigated if ChBF can compensate for increases and decreases in ABP in rats. ChBF was continuously monitored using laser Doppler flowmetry in anesthetized rats, and ABP measured via the femoral artery. At multiple intervals over a 2-4 h period during which ABP varied freely, ChBF and ABP were sampled and the results compiled across rats. We found that ChBF remained near baseline over an ABP range from 40 mmHg above basal ABP (90-100 mmHg) to 40 mmHg below basal ABP, but largely followed ABP linearly below 60 mmHg. Choroidal vascular resistance increased linearly as BP increased above 100 mmHg, and decreased linearly as BP declined from basal to 60 mmHg, but resistance declined no further below 60 mmHg. Inhibition of nitric oxide (NO) formation by either a selective inhibitor of neuronal nitric oxide synthase (NOS) (N(omega)-propyl-L-arginine) or a nonselective inhibitor of both neuronal NOS and endothelial NOS (N(omega)-nitro-l-arginine methyl ester) did not affect compensation above 100 mmHg ABP, but did cause ChBF to linearly follow declines in BP below 90 mmHg. In NOS-inhibited rats, vascular resistance increased linearly with BP above 100 mmHg, but remained at baseline below 90 mmHg. These findings reveal that ChBF in rats, as in rabbits, humans and pigeons, compensates for rises and/or declines in arterial blood pressure so as to remain relatively stable within a physiological range of ABPs. The ChBF compensation for low ABP in rats is dependent on choroidal vasodilation caused by neuronal NO formation but not the compensation for elevated BP, implicating parasympathetic nervous system vasodilation in the ChBF compensation to low ABP. Copyright 2010 Elsevier Ltd. All rights reserved.

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Year:  2010        PMID: 20302861      PMCID: PMC3376639          DOI: 10.1016/j.exer.2010.03.006

Source DB:  PubMed          Journal:  Exp Eye Res        ISSN: 0014-4835            Impact factor:   3.467


  56 in total

1.  Transfer function analysis of dynamic cerebral autoregulation in humans.

Authors:  R Zhang; J H Zuckerman; C A Giller; B D Levine
Journal:  Am J Physiol       Date:  1998-01

2.  The significance of nitric oxide for parasympathetic vasodilation in the eye and other orbital tissues in the cat.

Authors:  S F Nilsson
Journal:  Exp Eye Res       Date:  2000-01       Impact factor: 3.467

3.  Functional and morphological assessment of age-related changes in the choroid and outer retina in pigeons.

Authors:  M E Fitzgerald; E Tolley; S Frase; Y Zagvazdin; R F Miller; W Hodos; A Reiner
Journal:  Vis Neurosci       Date:  2001 Mar-Apr       Impact factor: 3.241

4.  Role of muscarinic cholinergic transmission in Edinger-Westphal nucleus-induced choroidal vasodilation in pigeon.

Authors:  Y Zagvazdin; M E Fitzgerald; A Reiner
Journal:  Exp Eye Res       Date:  2000-03       Impact factor: 3.467

5.  Major role for neuronal NO synthase in curtailing choroidal blood flow autoregulation in newborn pig.

Authors:  P Hardy; D Lamireau; X Hou; I Dumont; D Abran; A M Nuyt; D R Varma; S Chemtob
Journal:  J Appl Physiol (1985)       Date:  2001-10

6.  Regional regulation of choroidal blood flow by autonomic innervation in the rat.

Authors:  J J Steinle; D Krizsan-Agbas; P G Smith
Journal:  Am J Physiol Regul Integr Comp Physiol       Date:  2000-07       Impact factor: 3.619

7.  Chronic parasympathetic sectioning decreases regional cerebral blood flow during hemorrhagic hypotension and increases infarct size after middle cerebral artery occlusion in spontaneously hypertensive rats.

Authors:  N Koketsu; M A Moskowitz; H A Kontos; M Yokota; T Shimizu
Journal:  J Cereb Blood Flow Metab       Date:  1992-07       Impact factor: 6.200

8.  Response of choroidal blood flow in the foveal region to hyperoxia and hyperoxia-hypercapnia.

Authors:  M H Geiser; C E Riva; G T Dorner; U Diermann; A Luksch; L Schmetterer
Journal:  Curr Eye Res       Date:  2000-08       Impact factor: 2.424

Review 9.  Oxygen distribution and consumption within the retina in vascularised and avascular retinas and in animal models of retinal disease.

Authors:  D Y Yu; S J Cringle
Journal:  Prog Retin Eye Res       Date:  2001-03       Impact factor: 21.198

10.  NTS neuronal responses to arterial pressure and pressure changes in the rat.

Authors:  R F Rogers; J F Paton; J S Schwaber
Journal:  Am J Physiol       Date:  1993-12
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  14 in total

1.  Age-related impairment in choroidal blood flow compensation for arterial blood pressure fluctuation in pigeons.

Authors:  Anton Reiner; Nobel Del Mar; Yuri Zagvazdin; Chunyan Li; Malinda E C Fitzgerald
Journal:  Invest Ophthalmol Vis Sci       Date:  2011-09-14       Impact factor: 4.799

2.  Pharmacological MRI of the choroid and retina: blood flow and BOLD responses during nitroprusside infusion.

Authors:  Yen-Yu I Shih; Guang Li; Eric R Muir; Bryan H De La Garza; Jeffrey W Kiel; Timothy Q Duong
Journal:  Magn Reson Med       Date:  2011-12-19       Impact factor: 4.668

3.  Projections from the hypothalamic paraventricular nucleus and the nucleus of the solitary tract to prechoroidal neurons in the superior salivatory nucleus: Pathways controlling rodent choroidal blood flow.

Authors:  Chunyan Li; Malinda E C Fitzgerald; Mark S Ledoux; Suzhen Gong; Patrick Ryan; Nobel Del Mar; Anton Reiner
Journal:  Brain Res       Date:  2010-08-27       Impact factor: 3.252

4.  Disinhibition of neurons of the nucleus of solitary tract that project to the superior salivatory nucleus causes choroidal vasodilation: Implications for mechanisms underlying choroidal baroregulation.

Authors:  Chunyan Li; Malinda E C Fitzgerald; Nobel Del Mar; Anton Reiner
Journal:  Neurosci Lett       Date:  2016-09-20       Impact factor: 3.046

5.  The identification and neurochemical characterization of central neurons that target parasympathetic preganglionic neurons involved in the regulation of choroidal blood flow in the rat eye using pseudorabies virus, immunolabeling and conventional pathway tracing methods.

Authors:  Chunyan Li; Malinda E C Fitzgerald; Nobel Del Mar; Sherry Cuthbertson-Coates; Mark S LeDoux; Suzhen Gong; James P Ryan; Anton Reiner
Journal:  Front Neuroanat       Date:  2015-06-02       Impact factor: 3.856

6.  Changes in the choroidal thickness in reproductive-aged women with iron-deficiency anemia.

Authors:  Erhan Yumusak; Aydin Ciftci; Selim Yalcin; Cemile Dayangan Sayan; Nevin Hande Dikel; Kemal Ornek
Journal:  BMC Ophthalmol       Date:  2015-12-29       Impact factor: 2.209

7.  Age-related macular degeneration: choroidal ischaemia?

Authors:  D Jackson Coleman; Ronald H Silverman; Mark J Rondeau; Harriet O Lloyd; Aziz A Khanifar; R V Paul Chan
Journal:  Br J Ophthalmol       Date:  2013-06-05       Impact factor: 4.638

8.  Stimulation of Baroresponsive Parts of the Nucleus of the Solitary Tract Produces Nitric Oxide-mediated Choroidal Vasodilation in Rat Eye.

Authors:  Chunyan Li; Malinda E C Fitzgerald; Nobel Del Mar; Anton Reiner
Journal:  Front Neuroanat       Date:  2016-10-07       Impact factor: 3.856

9.  Compact Laser Doppler Flowmeter (LDF) Fundus Camera for the Assessment of Retinal Blood Perfusion in Small Animals.

Authors:  Marielle Mentek; Frederic Truffer; Christophe Chiquet; Diane Godin-Ribuot; Serge Amoos; Corinne Loeuillet; Mario Bernabei; Martial Geiser
Journal:  PLoS One       Date:  2015-07-30       Impact factor: 3.240

10.  Choroidal thickness in obese women.

Authors:  Erhan Yumusak; Kemal Ornek; Senay Arıkan Durmaz; Aydin Cifci; Hatice Ayhan Guler; Zehra Bacanli
Journal:  BMC Ophthalmol       Date:  2016-05-04       Impact factor: 2.209

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