The role of bone morphogenetic proteins in the development of the vertebrate midbrain

The purpose of the thesis is to explore the role of BMP signaling in developing vertebrate midbrain. BMP signaling plays important roles in various tissues and stages of neural development to regulate cell fate, proliferation, differentiation, morphogenesis and more. We observed that several major B...

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Main Author: Eom, Dae Seok
Format: Others
Language:English
Published: 2011
Subjects:
Online Access:http://hdl.handle.net/2152/ETD-UT-2010-12-2435
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spelling ndltd-UTEXAS-oai-repositories.lib.utexas.edu-2152-ETD-UT-2010-12-24352015-09-20T16:57:18ZThe role of bone morphogenetic proteins in the development of the vertebrate midbrainEom, Dae SeokNogginHinge pointApical constrictionBasal nuclear migrationEndocytosisEEA1Rab5PAR3Lethal giant larvaTight junctionsAdherens junctionsInterkinetic nuclear migrationMidbrainBone morphogenetic proteinsThe purpose of the thesis is to explore the role of BMP signaling in developing vertebrate midbrain. BMP signaling plays important roles in various tissues and stages of neural development to regulate cell fate, proliferation, differentiation, morphogenesis and more. We observed that several major BMPs are expressed not only at the roof plate but also the floor plate of the midbrain. This has led us to ask the role of BMP signaling in dorsal and ventral midbrain patterning. Despite ventral experiments, we found that BMP signaling does not regulate ventral cell fate specification in the midbrain. Instead BMPs profoundly influence the shape and early morphogenesis of the midbrain neural plate as it closes into a neural tube. During neural tube closure, one of the early events occurring at the ventral midline is median hinge point (MHP) formation. Failure to form MHP leads to neural tube closure defects, the 2nd most common birth defects in humans. However, the molecular mechanisms underlying MHP formation are not well known. We found that the lowest BMP signaling occurs at the MHP during early neurulation and BMP blockade is necessary and sufficient for MHP formation. Interestingly, we also demonstrated that BMP blockade directs MHP formation by regulating the apicobasal polarity pathway and this regulation may be mediated by biochemical interactions between pSMAD5 and the apical protein, PAR3. Additionally, our time-lapse data suggest that BMP blockade slows cell cycle progression by increasing duration of G1 to S transition and S phase which leads cell nuclei stay at the basal location longer. This mimics basal nuclear migration seen at the MHP where low BMP signaling occurs. Thus, we conclude that BMP signaling regulates neural tube closure via the apicobasal polarity pathway and in a cell cycle dependent manner at the ventral midline. We observed that BMP signaling is necessary and sufficient for the dorsal cell fate specification in a context-dependent manner and ventral BMP signaling affects dorsal cell fates. Taken together, we propose the idea that BMP signaling has distinct roles in different contexts. BMPs regulate tissue morphogenesis in the ventral midbrain and dorsally cell fate specification.text2011-02-08T20:56:54Z2011-02-08T20:57:25Z2011-02-08T20:56:54Z2011-02-08T20:57:25Z2010-122011-02-08December 20102011-02-08T20:57:25Zthesisapplication/pdfhttp://hdl.handle.net/2152/ETD-UT-2010-12-2435eng
collection NDLTD
language English
format Others
sources NDLTD
topic Noggin
Hinge point
Apical constriction
Basal nuclear migration
Endocytosis
EEA1
Rab5
PAR3
Lethal giant larva
Tight junctions
Adherens junctions
Interkinetic nuclear migration
Midbrain
Bone morphogenetic proteins
spellingShingle Noggin
Hinge point
Apical constriction
Basal nuclear migration
Endocytosis
EEA1
Rab5
PAR3
Lethal giant larva
Tight junctions
Adherens junctions
Interkinetic nuclear migration
Midbrain
Bone morphogenetic proteins
Eom, Dae Seok
The role of bone morphogenetic proteins in the development of the vertebrate midbrain
description The purpose of the thesis is to explore the role of BMP signaling in developing vertebrate midbrain. BMP signaling plays important roles in various tissues and stages of neural development to regulate cell fate, proliferation, differentiation, morphogenesis and more. We observed that several major BMPs are expressed not only at the roof plate but also the floor plate of the midbrain. This has led us to ask the role of BMP signaling in dorsal and ventral midbrain patterning. Despite ventral experiments, we found that BMP signaling does not regulate ventral cell fate specification in the midbrain. Instead BMPs profoundly influence the shape and early morphogenesis of the midbrain neural plate as it closes into a neural tube. During neural tube closure, one of the early events occurring at the ventral midline is median hinge point (MHP) formation. Failure to form MHP leads to neural tube closure defects, the 2nd most common birth defects in humans. However, the molecular mechanisms underlying MHP formation are not well known. We found that the lowest BMP signaling occurs at the MHP during early neurulation and BMP blockade is necessary and sufficient for MHP formation. Interestingly, we also demonstrated that BMP blockade directs MHP formation by regulating the apicobasal polarity pathway and this regulation may be mediated by biochemical interactions between pSMAD5 and the apical protein, PAR3. Additionally, our time-lapse data suggest that BMP blockade slows cell cycle progression by increasing duration of G1 to S transition and S phase which leads cell nuclei stay at the basal location longer. This mimics basal nuclear migration seen at the MHP where low BMP signaling occurs. Thus, we conclude that BMP signaling regulates neural tube closure via the apicobasal polarity pathway and in a cell cycle dependent manner at the ventral midline. We observed that BMP signaling is necessary and sufficient for the dorsal cell fate specification in a context-dependent manner and ventral BMP signaling affects dorsal cell fates. Taken together, we propose the idea that BMP signaling has distinct roles in different contexts. BMPs regulate tissue morphogenesis in the ventral midbrain and dorsally cell fate specification. === text
author Eom, Dae Seok
author_facet Eom, Dae Seok
author_sort Eom, Dae Seok
title The role of bone morphogenetic proteins in the development of the vertebrate midbrain
title_short The role of bone morphogenetic proteins in the development of the vertebrate midbrain
title_full The role of bone morphogenetic proteins in the development of the vertebrate midbrain
title_fullStr The role of bone morphogenetic proteins in the development of the vertebrate midbrain
title_full_unstemmed The role of bone morphogenetic proteins in the development of the vertebrate midbrain
title_sort role of bone morphogenetic proteins in the development of the vertebrate midbrain
publishDate 2011
url http://hdl.handle.net/2152/ETD-UT-2010-12-2435
work_keys_str_mv AT eomdaeseok theroleofbonemorphogeneticproteinsinthedevelopmentofthevertebratemidbrain
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