Literature DB >> 23224002

Effects of hypoxia on cochlear blood flow in mice evaluated using Doppler optical microangiography.

Suzan Dziennis1, Roberto Reif, Zhongwei Zhi, Alfred L Nuttall, Ruikang K Wang.   

Abstract

Reduced cochlear blood flow (CoBF) is a main contributor to hearing loss. Studying CoBF has remained a challenge due to the lack of available tools. Doppler optical microangiography (DOMAG), a method to quantify single-vessel absolute blood flow, and laser Doppler flowmetry (LDF), a method for measuring the relative blood flow within a large volume of tissue, were used for determining the changes in CoBF due to systemic hypoxia in mice. DOMAG determined the change in blood flow in the apical turn (AT) with single-vessel resolution, while LDF averaged the change in the blood flow within a large volume of the cochlea (hemisphere with ∼1 to 1.5 mm radius). Hypoxia was induced by decreasing the concentration of oxygen-inspired gas, so that the oxygen saturation was reduced from >95% to ∼80%. DOMAG determined that during hypoxia the blood flow in two areas of the AT near and far from the helicotrema were increased and decreased, respectively. The LDF detected a decrease in blood flow within a larger volume of the cochlea (several turns averaged together). Therefore, the use of DOMAG as a tool for studying cochlear blood flow due to its ability to determine absolute flow values with single-vessel resolution was proposed.

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Year:  2012        PMID: 23224002      PMCID: PMC3461130          DOI: 10.1117/1.JBO.17.10.106003

Source DB:  PubMed          Journal:  J Biomed Opt        ISSN: 1083-3668            Impact factor:   3.170


  37 in total

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Authors:  Z Chen; T E Milner; S Srinivas; X Wang; A Malekafzali; M J van Gemert; J S Nelson
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4.  The influence of ischemia upon the energy reserves of inner ear tissues.

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5.  Effects of trimetaphan-induced deliberate hypotension on human cochlear blood flow.

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9.  Effects of vasodilating agents on cochlear blood flow in mice.

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3.  Monitoring hypoxia induced changes in cochlear blood flow and hemoglobin concentration using a combined dual-wavelength laser speckle contrast imaging and Doppler optical microangiography system.

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4.  Influence of high-altitude hypoxic environments on the survival of cochlear hair cells and spiral ganglion neurons in rats.

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7.  Monitoring blood-flow in the mouse cochlea using an endoscopic laser speckle contrast imaging system.

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8.  The mechanoelectrical transducer channel is not required for regulation of cochlear blood flow during loud sound exposure in mice.

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  8 in total

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