H2020Индивидуална стипендия2021–2023

ZEBREXPANSION · Expansion microscopy in zebrafish embryo to study primary cilia function during cardiovascular development and diseases

„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“

Период
2021-06-01 → 2023-05-31
Финансиране от ЕС
212 934 €
Участници
1
Схема
MSCA-IF

Линиите свързват координатора с партньорите.

Накратко на български

Първичните цилии (клеточни „антени“) и генът Dzip1 се изследват при ембриони на зебра риба, за да се разбере как влияят на развитието на сърцето. Това помага да се обясни защо при някои хора се появяват вродени сърдечни дефекти и други заболявания.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

Expansion microscopy in zebrafish embryo to study primary cilia function during cardiovascular development and diseases

This MSCA project aimed at revealing the function of primary cilia during cardiovascular development and cardiovascular diseases, through an imaging approach based on expansion light microscopy. Nearly every cell in the human body exhibits one or multiple cilia for which functions may vary depending on tissue specificity and developmental stage. Primary cilia (PC), defined as a single microtubule-based protrusion per cell, have been identified in vertebrates and are described as cellular antennae. Defects in PC are responsible for a disease group referred to as ciliopathies, affecting 1 in 1000 people, displaying a large spectrum of symptoms ranging from neurodevelopmental abnormalities to cardiovascular defects, polycystic kidneys, obesity, etc. However, while cilia composition seems to be conserved among cell types, it is unclear why ciliopathies affect specific tissues and not others. Cardiovascular defects are common in patients diagnosed with ciliopathies. Genetic approaches used to study congenital heart diseases (CHDs) have highlighted a strong implication of genes coding for ciliary proteins, suggesting an important role for this organelle during cardiovascular development. Still, the role of PC in cardiovascular development is understudied and poorly understood. Essential for ciliogenesis, Dzip1 has recently been identified as a key gene leading to CHD in humans when mutated. To date, ciliary and DZIP1 functions in cardiovascular development are unknown. We aimed to understand how cilia assembly, maintenance, and disassembly are correlated with essential regulatory functions during cardiogenesis. To reach a comprehensive description of ciliary implication in CHDs, we aimed to study ciliary features upon cardiac remodeling in a quantitative manner with nanometric resolution. Specifically, our objectives were: - to use the previously developed U-ExM method in cultured cells and establish a precise molecular mapping of the CHD-related protein DZIP1 to reveal its structural function in cilium assembly and disassembly. - to establish U-ExM in zebrafish and characterize PC remodeling upon cardiac maturation. - to investigate to which extent cilia are blunted, stunted, or erased specifically in the heart of Dzip1 mutants. While we rapidly chose to move from cultured human cells to develop tissue ultrastructure expansion microscopy (TissUExM) in whole zebrafish embryos, we extended the scope of this MSCA to additional models: Drosophila melanogaster wing discs and whole mouse embryos, in collaboration with the Mao’s and Norris’s labs (UK). This resulted in two first-author publications (Steib et al, Cell Rep Methods 2022; Steib et al, STAR Protocol 2023), and this work was acknowledged by cilia experts through the award for best talk for the Fellow at the 2022 EMBO Cilia Meeting. In the meantime, we also set up a collaboration with the Roy Lab (Singapore), the leading expert of Dzip1 studies in zebrafish embryos. Current and future work consists in applying TissUExM and live imaging expertise from the Vermot Lab to different Dzip1 mutants, to provide a comprehensive structural and functional description of Dzip1 in zebrafish valve development and maturation.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

This project aims at revealing the function of primary cilia during cardiovascular development and cardiovascular diseases, with a specific focus on cardiac valves, through an imaging approach based on expansion light microscopy. Cilia are evolutionary conserved organelles, involved in fundamental processes such as motility, signalling and mechano-sensing, associated with a group of developmental diseases termed ciliopathies. Cardiovascular defects are common in patients diagnosed with ciliopathies and genetic studies have identified mutations in genes coding for ciliary proteins in patient suffering from congenital heart diseases, suggesting an important role for this organelle in cardiogenesis. In particular, it has been shown that DZIP1, a cilia related protein involved in ciliogenesis, is mutated in patients. However, little is known about molecular mechanisms underlying DZIP1 abnormal function at developmental stages of valvulopathies. Using an innovative imaging-based approach in human ciliated cells and in zebrafish, we will investigate if cilia assembly, maintenance and disassembly are correlated with essential regulatory functions of DZIP1 during cardiogenesis, more precisely in endocardial cells (EdCs) during valvulogenesis. We will test if the protein DZIP1/Iguana function is not restricted to ciliogenesis in differentiated cells, but displays dynamic functions at centrioles and in the cytoplasm, that are important for tissue-remodelling. My multidisciplinary approach will allow me to tackle this question from the molecular and structural to the cellular and tissue-scale.

Оригинален текст от CORDIS (на английски).

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Връзки

Данни: CORDIS, © Европейски съюз