GLIAMAC · Uncovering Enteric GLIA-MACrophage communication in the intestinal homeostasis and inflammation
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2018-12-01 → 2020-11-30
- Финансиране от ЕС
- 160 800 €
- Участници
- 1
- Схема
- MSCA-IF
Линиите свързват координатора с партньорите.
Накратко на български
Връзката между ентеричните глийни клетки и имунните клетки в червата се анализира, за да се разбере как те регулират възпалителните процеси. Това помага за изясняване на причините за заболявания като възпалителни чревни болести и търсенето на нови методи за лечение.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Uncovering Enteric GLIA-MACrophage communication in the intestinal homeostasis and inflammation
It is well known that intestinal myeloid cells play a role in intestinal homeostasis and inflammation, in addition to that their phenotype and function can be regulated by a number of factors. We believe that glia-derived molecules help maintaining intestinal homeostasis via regulation of myeloid cells, our aim at demonstrating that a dysregulated glia-immune cell crosstalk leads to the development of intestinal inflammation. Therefore, for the first time, GLIAMAC will investigate the molecules and pathways involved in glia-immune interaction and elucidate the role of Enteric Glial Cells (EGCs) in the pathogenesis of intestinal inflammation. Based on my preliminary data in the current project (GLIAMAC), I will test the hypothesis that EGCs plays a central role in “educating” intestinal myeloid cells and promoting immunological tolerance. Using novel multicellular culture approaches and glial-specific transgenic mouse models, I will define the molecules and the molecular pathways involved in the enteric glia-myeloid cell crosstalk and define the relevance of this neuro-immune interaction in the course of intestinal inflammation. I am convinced that identification of new molecules and pathways involved in enteric glia-immune cell crosstalk will represent a major breakthrough in elucidating the pathogenesis of intestinal immune-mediated diseases such as Inflammatory Bowel Disease (IBD) or post-operative ileus (POI) and will potentially give rise to a new class of molecules to treat and favour remission in patients affected by intestinal inflammation. This knowledge may give rise to novel therapeutic approaches to treat patients affected by chronic intestinal inflammatory disorders. Moreover, the knowledge about the impact of neurological signals on immune cells and homeostasis can be extended beyond the context of the intestinal mucosal homeostasis and may be valuable in the context of several acute and chronic inflammatory conditions and autoimmune diseases. Based on my preliminary data in the current project (GLIAMAC),We test the hypothesis that enteric glia play a central role in “educating” intestinal myeloid cells and promoting immunological tolerance. Briefly, the gastrointestinal tract (GI) constitutes the largest area of body contact with the external environment. In order to control microbial aggressions and to maintain the homeostasis of the gut, the innate immune system, the enteric nervous system and intestinal epithelium facilitated the cohabitation of beneficial microorganisms for the establishment of regulatory networks that prevent inflammation such as Inflammatory Bowel Disease (IBD) and post-operative ileus (POI). The intestinal immune and nervous systems sense and integrate luminal cues and regulate physiological processes, including GI motility1,2. In the gut wall, the ENS forms clusters of neurons surrounded by Enteric Glial Cells (EGCs) in a network of ganglia. Historically, EGCs were mainly considered only as supporting cells of enteric neurons. However, recent evidences suggest that enteric glia have a much border participation in gastrointestinal physiology, contributing to motility, preserving epithelial barrier integrity and regulating the innate inflammatory response in the gut. In the enteric muscularis externa (ME) the resident Macrophages (Mφs) population, which closely interact with the enteric nervous system (ENS), regulate intestinal functioning via the secretion of bone morphogenetic protein 2 (BMP2), which supports the function and differentiation of enteric neurons in the absence of infections. Furthermore, evidence suggests that intestinal-resident macrophage populations upon tissue damage detect damage-associated and pathogen-associated molecular patterns and attract circulating monocytes and neutrophils. Moreover, the role of EGCs during tissue damage it is unknown, in our preliminary data showed that EGCs are in close proximity with the intestinal Mφs. Thus, how EGCs and myeloid cells communicate under tissue damage remains still completely unknown. Based on my preliminary data in the current project (GLIAMAC), I test the hypothesis that enteric glia play a central role in “educating” intestinal myeloid cells and promoting immunological tolerance. Using novel emergence techniques including single cell RNA sequencing (scRNA-seq) help us to uncover the molecular mechanisms driving the differentiation of monocytes towards pro-resolving Mφs as we can evaluate Mφs in different states during this process. Therefore, we will employ scRNA-seq to decipher the cues and the transcription factors driving the differentiation into pro-resolving Mφs in a model of small intestinal inflammation. Additionally, we evaluated how Mφs are influenced by their environment in the ME, where they are close of the EGCs. Thus, we analyze how EGCs attract circulating monocytes and promoted the differentiation of pro-resolving Mφs to support the resolution of inflammation.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
Uncovering Enteric GLIA-MACrophage communication in the intestinal homeostasis and inflammation.The enteric nervous system (ENS) is a network of neurons and enteric glial cells (EGCs) organized in ganglia essential to control gastrointestinal physiology. Although EGCs have historically been described as supporting cells for enteric neurons, recent data from my previous work and from my host group demonstrated that enteric glia is “communicating” with innate immune cells via the secretion of immune-active molecules. Interestingly, alterations in the morphology and function of EGCs have been reported in patients affected by chronic intestinal inflammation such as inflammatory bowel disease (IBD). Thus, I hypothesise that factors released by enteric GLIA may directly modulate MACrophage phenotype and function in the gut, making EGC a novel overlooked player in the pathophysiology of IBD. In the first part of GLIAMAC, the molecules and the molecular mechanisms involved in the enteric glia-macrophage crosstalk will be screened in vitro using co-culture experiments and assessed in vivo using novel EGC-specific mouse models of intestinal inflammation. Finally, I aim to translate our findings to the clinical setting using tissue samples from IBD patients. To this end, the immunomodulatory properties of EGCs isolated from healthy individuals and IBD patients will be compared using cellular, genomic and proteomic system-wide approaches. Identification of new molecules and pathways involved in enteric glia-immune cell crosstalk will represent a major breakthrough in elucidating the pathogenesis of intestinal immune-mediated diseases. Thus, GLIAMAC will potentially give rise to a new class of molecules to treat and favour remission in patients affected by IBD.
Оригинален текст от CORDIS (на английски).
Участници
- KATHOLIEKE UNIVERSITEIT LEUVEN · LeuvenКоординаторБелгия
Връзки
Данни: CORDIS, © Европейски съюз
