Endocytic Modulation of Developmental Signaling during Zebrafish Gastrulation
Biological information processing in living systems like cells, tissues and organs critically depends on the physical interactions of molecular signaling components in time and space. How endocytic transport of signaling molecules contributes to the regulation of developmental signaling in the compl...
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Saechsische Landesbibliothek- Staats- und Universitaetsbibliothek Dresden
2014
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ndltd-DRESDEN-oai-qucosa.de-bsz-14-qucosa-1566362015-02-17T03:29:31Z Endocytic Modulation of Developmental Signaling during Zebrafish Gastrulation Gerstner, Norman Zebrafisch Endozytose Signaltransduktion WNT Information Signaling Endocytosis Zebrafish Gastrulation b-catenin WNT Transport Information ddc:570 rvk:WE 5320 Biological information processing in living systems like cells, tissues and organs critically depends on the physical interactions of molecular signaling components in time and space. How endocytic transport of signaling molecules contributes to the regulation of developmental signaling in the complex in vivo environment of a developing organism is not well understood. In a previously performed genome-wide screen on endocytosis, several genes have been identified, that selectively regulate transport of signaling molecules to different types of endosomes, without disrupting endocytosis. My PhD thesis work provides the first functional in vivo characterization of one of these candidate genes, the novel, highly conserved Rab5 effector protein P95 (PPP1R21). Cell culture studies suggest that P95 is a novel endocytic protein important to maintain the balance of distinct endosomal sub-populations and potentially regulates the sorting of signaling molecules between them (unpublished work, Zerial lab). The scientific evidence presented in this study demonstrates that zebrafish P95 is essential for early zebrafish embryogenesis. Both, knockdown and overexpression of zebrafish P95 compromise accurate morphogenetic movements and patterning of the zebrafish gastrula, showing that P95 functions during zebrafish gastrulation. P95 is functionally required to maintain signaling activity of signaling pathways that control embryonic patterning, in particular for WNT/β-catenin signaling activity. Knockdown of zebrafish P95 amplifies the recruitment of β-catenin to early endosomes, which correlates with the limitation of β-catenin to translocate to the nucleus and function as transcriptional activator. The obtained results suggest that zebrafish P95 modulates the cytoplasmic pools of β-catenin in vivo, via endosomal transport of β-catenin. In conclusion, the data presented in this thesis work provides evidence that the cytoplasm-to-nucleus shuttling of β-catenin is modulated by endocytic trafficking of β-catenin in vivo. We propose the endocytic modulation of β-catenin cytoplasm-to-nucleus trafficking as potential new mechanism to fine-tune the functional output of WNT/β-catenin signaling during vertebrate gastrulation. Saechsische Landesbibliothek- Staats- und Universitaetsbibliothek Dresden Technische Universität Dresden, Fakultät Mathematik und Naturwissenschaften Prof. Dr. Marino Zerial Prof. Dr. Michael Brand Prof. Dr. Carl-Philipp Heisenberg 2014-12-18 doc-type:doctoralThesis application/pdf http://nbn-resolving.de/urn:nbn:de:bsz:14-qucosa-156636 urn:nbn:de:bsz:14-qucosa-156636 PPN426352408 http://www.qucosa.de/fileadmin/data/qucosa/documents/15663/PhD%20Thesis_NG_complete_SLUB.pdf eng |
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NDLTD |
language |
English |
format |
Doctoral Thesis |
sources |
NDLTD |
topic |
Zebrafisch Endozytose Signaltransduktion WNT Information Signaling Endocytosis Zebrafish Gastrulation b-catenin WNT Transport Information ddc:570 rvk:WE 5320 |
spellingShingle |
Zebrafisch Endozytose Signaltransduktion WNT Information Signaling Endocytosis Zebrafish Gastrulation b-catenin WNT Transport Information ddc:570 rvk:WE 5320 Gerstner, Norman Endocytic Modulation of Developmental Signaling during Zebrafish Gastrulation |
description |
Biological information processing in living systems like cells, tissues and organs critically depends on the physical interactions of molecular signaling components in time and space. How endocytic transport of signaling molecules contributes to the regulation of developmental signaling in the complex in vivo environment of a developing organism is not well understood.
In a previously performed genome-wide screen on endocytosis, several genes have been identified, that selectively regulate transport of signaling molecules to different types of endosomes, without disrupting endocytosis. My PhD thesis work provides the first functional in vivo characterization of one of these candidate genes, the novel, highly conserved Rab5 effector protein P95 (PPP1R21). Cell culture studies suggest that P95 is a novel endocytic protein important to maintain the balance of distinct endosomal sub-populations and potentially regulates the sorting of signaling molecules between them (unpublished work, Zerial lab).
The scientific evidence presented in this study demonstrates that zebrafish P95 is essential for early zebrafish embryogenesis. Both, knockdown and overexpression of zebrafish P95 compromise accurate morphogenetic movements and patterning of the zebrafish gastrula, showing that P95 functions during zebrafish gastrulation. P95 is functionally required to maintain signaling activity of signaling pathways that control embryonic patterning, in particular for WNT/β-catenin signaling activity. Knockdown of zebrafish P95 amplifies the recruitment of β-catenin to early endosomes, which correlates with the limitation of β-catenin to translocate to the nucleus and function as transcriptional activator.
The obtained results suggest that zebrafish P95 modulates the cytoplasmic pools of β-catenin in vivo, via endosomal transport of β-catenin. In conclusion, the data presented in this thesis work provides evidence that the cytoplasm-to-nucleus shuttling of β-catenin is modulated by endocytic trafficking of β-catenin in vivo. We propose the endocytic modulation of β-catenin cytoplasm-to-nucleus trafficking as potential new mechanism to fine-tune the functional output of WNT/β-catenin signaling during vertebrate gastrulation. |
author2 |
Technische Universität Dresden, Fakultät Mathematik und Naturwissenschaften |
author_facet |
Technische Universität Dresden, Fakultät Mathematik und Naturwissenschaften Gerstner, Norman |
author |
Gerstner, Norman |
author_sort |
Gerstner, Norman |
title |
Endocytic Modulation of Developmental Signaling during Zebrafish Gastrulation |
title_short |
Endocytic Modulation of Developmental Signaling during Zebrafish Gastrulation |
title_full |
Endocytic Modulation of Developmental Signaling during Zebrafish Gastrulation |
title_fullStr |
Endocytic Modulation of Developmental Signaling during Zebrafish Gastrulation |
title_full_unstemmed |
Endocytic Modulation of Developmental Signaling during Zebrafish Gastrulation |
title_sort |
endocytic modulation of developmental signaling during zebrafish gastrulation |
publisher |
Saechsische Landesbibliothek- Staats- und Universitaetsbibliothek Dresden |
publishDate |
2014 |
url |
http://nbn-resolving.de/urn:nbn:de:bsz:14-qucosa-156636 http://nbn-resolving.de/urn:nbn:de:bsz:14-qucosa-156636 http://www.qucosa.de/fileadmin/data/qucosa/documents/15663/PhD%20Thesis_NG_complete_SLUB.pdf |
work_keys_str_mv |
AT gerstnernorman endocyticmodulationofdevelopmentalsignalingduringzebrafishgastrulation |
_version_ |
1716730545954619392 |