Visualisation of cerebrospinal fluid flow patterns in albino <it>Xenopus </it>larvae <it>in vivo</it>

<p>Abstract</p> <p>Background</p> <p>It has long been known that cerebrospinal fluid (CSF), its composition and flow, play an important part in normal brain development, and ependymal cell ciliary beating as a possible driver of CSF flow has previously been studied in m...

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Main Authors: Mogi Kazue, Adachi Takeshi, Izumi Susumu, Toyoizumi Ryuji
Format: Article
Language:English
Published: BMC 2012-04-01
Series:Fluids and Barriers of the CNS
Subjects:
Online Access:http://www.fluidsbarrierscns.com/content/9/1/9
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spelling doaj-ec13f17a02a44416ad43fa1a349651ff2020-11-25T00:06:34ZengBMCFluids and Barriers of the CNS2045-81182012-04-0191910.1186/2045-8118-9-9Visualisation of cerebrospinal fluid flow patterns in albino <it>Xenopus </it>larvae <it>in vivo</it>Mogi KazueAdachi TakeshiIzumi SusumuToyoizumi Ryuji<p>Abstract</p> <p>Background</p> <p>It has long been known that cerebrospinal fluid (CSF), its composition and flow, play an important part in normal brain development, and ependymal cell ciliary beating as a possible driver of CSF flow has previously been studied in mammalian fetuses <it>in vitro</it>. Lower vertebrate animals are potential models for analysis of CSF flow during development because they are oviparous. Albino <it>Xenopus laevis </it>larvae are nearly transparent and have a straight, translucent brain that facilitates the observation of fluid flow within the ventricles. The aim of these experiments was to study CSF flow and circulation <it>in vivo </it>in the developing brain of living embryos, larvae and tadpoles of <it>Xenopus laevis </it>using a microinjection technique.</p> <p>Methods</p> <p>The development of <it>Xenopus </it>larval brain ventricles and the patterns of CSF flow were visualised after injection of quantum dot nanocrystals and polystyrene beads (3.1 or 5.8 μm in diameter) into the fourth cerebral ventricle at embryonic/larval stages 30-53.</p> <p>Results</p> <p>The fluorescent nanocrystals showed the normal development of the cerebral ventricles from embryonic/larval stages 38 to 53. The polystyrene beads injected into stage 47-49 larvae revealed three CSF flow patterns, left-handed, right-handed and non-biased, in movement of the beads into the third ventricle from the cerebral aqueduct (aqueduct of Sylvius). In the lateral ventricles, anterior to the third ventricle, CSF flow moved anteriorly along the outer wall of the ventricle to the inner wall and then posteriorly, creating a semicircle. In the cerebral aqueduct, connecting the third and fourth cerebral ventricles, CSF flow moved rostrally in the dorsal region and caudally in the ventral region. Also in the fourth ventricle, clear dorso-ventral differences in fluid flow pattern were observed.</p> <p>Conclusions</p> <p>This is the first visualisation of the orchestrated CSF flow pattern in developing vertebrates using a live animal imaging approach. CSF flow in <it>Xenopus </it>albino larvae showed a largely consistent pattern, with the exception of individual differences in left-right asymmetrical flow in the third ventricle.</p> http://www.fluidsbarrierscns.com/content/9/1/9CSF flowDorso-ventral asymmetryLeft-right asymmetryBrain ventricle<it>Xenopus laevis</it>Albino larvaVisualisationQdot nanocrystalsPolystyrene beads
collection DOAJ
language English
format Article
sources DOAJ
author Mogi Kazue
Adachi Takeshi
Izumi Susumu
Toyoizumi Ryuji
spellingShingle Mogi Kazue
Adachi Takeshi
Izumi Susumu
Toyoizumi Ryuji
Visualisation of cerebrospinal fluid flow patterns in albino <it>Xenopus </it>larvae <it>in vivo</it>
Fluids and Barriers of the CNS
CSF flow
Dorso-ventral asymmetry
Left-right asymmetry
Brain ventricle
<it>Xenopus laevis</it>
Albino larva
Visualisation
Qdot nanocrystals
Polystyrene beads
author_facet Mogi Kazue
Adachi Takeshi
Izumi Susumu
Toyoizumi Ryuji
author_sort Mogi Kazue
title Visualisation of cerebrospinal fluid flow patterns in albino <it>Xenopus </it>larvae <it>in vivo</it>
title_short Visualisation of cerebrospinal fluid flow patterns in albino <it>Xenopus </it>larvae <it>in vivo</it>
title_full Visualisation of cerebrospinal fluid flow patterns in albino <it>Xenopus </it>larvae <it>in vivo</it>
title_fullStr Visualisation of cerebrospinal fluid flow patterns in albino <it>Xenopus </it>larvae <it>in vivo</it>
title_full_unstemmed Visualisation of cerebrospinal fluid flow patterns in albino <it>Xenopus </it>larvae <it>in vivo</it>
title_sort visualisation of cerebrospinal fluid flow patterns in albino <it>xenopus </it>larvae <it>in vivo</it>
publisher BMC
series Fluids and Barriers of the CNS
issn 2045-8118
publishDate 2012-04-01
description <p>Abstract</p> <p>Background</p> <p>It has long been known that cerebrospinal fluid (CSF), its composition and flow, play an important part in normal brain development, and ependymal cell ciliary beating as a possible driver of CSF flow has previously been studied in mammalian fetuses <it>in vitro</it>. Lower vertebrate animals are potential models for analysis of CSF flow during development because they are oviparous. Albino <it>Xenopus laevis </it>larvae are nearly transparent and have a straight, translucent brain that facilitates the observation of fluid flow within the ventricles. The aim of these experiments was to study CSF flow and circulation <it>in vivo </it>in the developing brain of living embryos, larvae and tadpoles of <it>Xenopus laevis </it>using a microinjection technique.</p> <p>Methods</p> <p>The development of <it>Xenopus </it>larval brain ventricles and the patterns of CSF flow were visualised after injection of quantum dot nanocrystals and polystyrene beads (3.1 or 5.8 μm in diameter) into the fourth cerebral ventricle at embryonic/larval stages 30-53.</p> <p>Results</p> <p>The fluorescent nanocrystals showed the normal development of the cerebral ventricles from embryonic/larval stages 38 to 53. The polystyrene beads injected into stage 47-49 larvae revealed three CSF flow patterns, left-handed, right-handed and non-biased, in movement of the beads into the third ventricle from the cerebral aqueduct (aqueduct of Sylvius). In the lateral ventricles, anterior to the third ventricle, CSF flow moved anteriorly along the outer wall of the ventricle to the inner wall and then posteriorly, creating a semicircle. In the cerebral aqueduct, connecting the third and fourth cerebral ventricles, CSF flow moved rostrally in the dorsal region and caudally in the ventral region. Also in the fourth ventricle, clear dorso-ventral differences in fluid flow pattern were observed.</p> <p>Conclusions</p> <p>This is the first visualisation of the orchestrated CSF flow pattern in developing vertebrates using a live animal imaging approach. CSF flow in <it>Xenopus </it>albino larvae showed a largely consistent pattern, with the exception of individual differences in left-right asymmetrical flow in the third ventricle.</p>
topic CSF flow
Dorso-ventral asymmetry
Left-right asymmetry
Brain ventricle
<it>Xenopus laevis</it>
Albino larva
Visualisation
Qdot nanocrystals
Polystyrene beads
url http://www.fluidsbarrierscns.com/content/9/1/9
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