Liver ID3ntity · Unravelling the molecular basis of the Kupffer cell-hepatocyte crosstalk and its role in the functional specialization of liver Kupffer cells.
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2021-05-01 → 2023-06-30
- Финансиране от ЕС
- 166 320 €
- Участници
- 1
- Схема
- MSCA-IF
Линиите свързват координатора с партньорите.
Накратко на български
Молекулярните връзки между хепатоцитите и Купферските клетки в черния дроб определят функциите на тези макрофаги чрез фактора ID3. Разбирането на тези взаимодействия помага да се разбере как се развиват чернодробните заболявания при нарушаване на клетъчния баланс.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Unravelling the molecular basis of the Kupffer cell-hepatocyte crosstalk and its role in the functional specialization of liver Kupffer cells.
Each organ is thought to primarily comprise of 4 main cell types that form a minimal tissue module: parenchymal cells, endothelial cells, fibroblasts and macrophages. The liver is mainly constituted of hepatocytes (~60%), liver sinusoidal endothelial cells (LSECs) (~15%), liver-resident fibroblasts called stellate cells (~15%) and liver-resident macrophages called Kupffer cells (KCs) (~15%).Macrophages (Macs) are found in all tissues and perform unique functions that are essential to maintain homeostasis in their respective organ, such as synaptic pruning in the brain, recycling of surfactant in the lung or electrical conduction in the heart. Transcriptomic profiling has revealed that each tissue-resident Mac expresses a relatively unique gene expression profile controlled by a restricted set of transcription factors. Little is known, however, about the precise cell-cell circuits that underlie the tissue-specific imprinting of Macs. In the case of KCs, previous studies indicate that this identity and functionality is imprinted by the other cells that constitute the liver module (hepatocytes, LSECs and stellate cells) that together form the Kupffer cell niche. The host lab has previously shown that the transcription factor LXRa controls 30% of liver-specific KC identity and is essential for KC development and survival. ID3, is a transcription factor that is highly expressed in KCs and conserved across species (human, mouse, pig, zebrafish,etc). We hypothesize that the cell-cell circuits within the sinusoidal liver module not only form the blueprint of liver homeostasis, but that perturbations in these cell-cell interactions will lead to the development of liver diseases. The Liver ID3ntity project sought to identify the molecular cues driving ID3 expression, a key transcription factor in KCs, and identify whether mice lacking these signals would display aberrant liver responses. The overall objectives of this project were to: Design an in vivo CRISPR pipeline to screen and identify key genes driving ID3 expression, identify the cell-cell interactions and define the pathophysiological implications of these cell-cell interactions. The effect of KCs on the steady-state identity of the other module cells remains almost completely unknown. Deciphering the reciprocal cell-cell interactions by which these cells imprint the liver sinusoidal identity on one another in vivo is not only key to understand liver biology, it also paves the way to the development of in vitro liver organoids that will more closely resemble the in vivo liver.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
Macrophages perform unique tissue-specific functions that are essential for the homeostasis of each organ. To perform these tissue-specific functions, each resident macrophage expresses a relatively unique gene expression profile controlled by specific transcription factors. Kupffer cells (KCs) are the biggest macrophage population of the body and represent 10% of all liver cells. The Guilliams lab recently reported that each KC projects an important part of its body across the liver endothelial cell barrier to be in close contact with hepatocytes. We have established that the transcription factor ID3 is highly expressed in murine KCs as compared to other macrophages, is highly preserved in KCs across 5 different species and is essential for controlling KC identity in vivo. We have recently reported that monocytes co-cultured with hepatocytes, but not with liver endothelial cells or liver fibroblasts, acquire strong ID3 expression, indicating that hepatocyte-derived signals induce ID3 expression. The objective of this proposal is to utilise ID3-expression in KCs to unravel the molecular mechanisms underlying the KC-Hepatocyte crosstalk. Since nothing is known about the hepatocyte-derived signals that induce ID3 expression in myeloid cells, I will utilize a genome-wide in vitro CRISPR screen to identify positive and negative regulators of the ID3 expression induced by hepatocytes. The result of this in vitro ID3-screen will then be combined with potential regulators predicted through epigenetic and ligand-receptor inference algorithms, to obtain our top candidates for genes involved in the liver KC-Hepatocyte crosstalk. Using cutting-edge technology combining direct guide-RNA capture with single-cell RNA sequencing, I will then perform a targeted in vivo CRISPR screen. Finally, I will knock-down the most interesting hits from this in vivo screen using CRE-Lox technology to understand the role of specific KC-Hepatocyte interactions in liver homeostasis and pathology.
Оригинален текст от CORDIS (на английски).
Участници
- VIB VZW · ZWIJNAARDE - GENTКоординаторБелгия
Връзки
Данни: CORDIS, © Европейски съюз
