ePANC-SPLICE · Regulation and Function of Endocrine-Specific Splicing Programs in Pancreas and their Role in Diabetes
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2020-01-01 → 2021-12-31
- Финансиране от ЕС
- 172 932 €
- Участници
- 1
- Схема
- MSCA-IF-EF-ST
Линиите свързват координатора с партньорите.
Накратко на български
Алтернативният сплайсинг позволява на един ген да създава различни протеини, което се изследва при бета-клетките в панкреаса. Разбирането на този процес помага да се разбере как се развиват тези клетки и как функционира диабетът.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Regulation and Function of Endocrine-Specific Splicing Programs in Pancreas and their Role in Diabetes
Diabetes affects ~10% of the adult population worldwide and its prevalence is rapidly increasing, representing a major health challenge. Diabetes is caused by dysfunction or loss of the insulin secreting beta cells of the pancreatic islets and the alteration of blood glucose levels. Despite the significant improvement of the life quality of diabetic patients during the last decades, there are currently no therapies to prevent or cure the disease. Thus, understanding how beta cells are generated, how they acquire their mature function and the ability to properly secrete insulin are major needs for the development of new therapies. Extensive research in the field have uncovered the gene networks and signals that control the development of the different pancreatic endocrine cells. Moreover, the integration of genomics and genetics has revealed that genetic risk variants often alter the expression of key genes for beta cell function. Despite these remarkable advances, many aspects of gene regulation and function in pancreatic islets remain poorly understood. Among them, the roles of pre-mRNA alternative splicing (AS) have been largely unexplored. AS is a mechanism that allow single genes to produce multiple variants of its products (called RNAs and protein isoforms) by controlling the differential combination of gene pieces (introns and exons) into final molecules. This mechanism is a key generator of molecular diversity and plays pivotal roles in the development of organs and tissues, in the specialization of cell functions, and importantly, in several human diseases. Thus, understanding how AS participates in beta cell differentiation and insulin secretory function, and its impact on glucose metabolism and diabetes can provide both basic and translatable knowledge for islet biology and for the development of novel therapies. Against this background, the goal of this project was to mechanistically and functionally characterize tissue-specific alternative splicing in endocrine pancreas, trying to answer the following questions: 1) Which are the master splicing regulators of AS in pancreas? 2) What is the impact of AS on beta cell development and secretory function? 3) Are endocrine-specific splicing programs deregulated in diabetes? During the course of this project, we uncovered a conserved program of alternatively spliced microexons included specifically in islet cells. Our work revealed that islet microexons are regulated by the splicing factor SRRM3, and that dysregulation of the islet microexon program leads to defects in islet development and insulin secretion regulation, causing alteration of glucose homeostasis. Our findings thus provide novel insights into the transcriptional regulation of pancreatic endocrine cells development and function by alternative splicing.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
Pancreatic beta cells are highly specialized cells that play a key role in maintaining glucose homeostasis by secreting insulin. Dysfunction or loss of beta cells results in diabetes, a worldwide growing epidemic. Extensive research has started to uncover the signals and transcriptional networks that control specification, differentiation and maturity of the different pancreatic cell lineages, and in particular of beta cells. However, posttranscriptional regulation during pancreas development has remained mostly unexplored. Alternative splicing (AS) is the main posttranscriptional mechanism that generates transcriptomic and proteomic diversity, playing essential roles in cell specification and functional specialization. My previous data suggest that beta cells activate neuron-related splicing programs involved in the regulation of insulin secretion. Moreover, pro-inflammatory cytokines (mediators of beta cell failure in type 1 diabetes) affect the splicing of signaling and pro-apoptotic genes that determine beta cell survival. However, the presence of beta- or endocrine-specific splicing programs and their role in diabetes remains to be clarified. In this project, we will investigate the regulation and function of endocrine-specific alternative exons. I will combine comparative transcriptomics, biochemical and functional studies, iPCS reprogramming and zebrafish knock-outs to: (i) comprehensively identify endocrine-AS exons, and study their regulation during beta cell differentiation and pancreas development; (ii) probe the phenotypic impact of endocrine-AS programs on beta cell differentiation and function; and (iii) Investigate the role of ENDO-AS exons in remodeling transcriptional and signaling networks involved in diabetes. We foresee that this project will provide new insights into beta cell pathophysiology and generate valuable knowledge for the development of splicing-modulating therapies and disease biomarkers.
Оригинален текст от CORDIS (на английски).
Участници
- FUNDACIO CENTRE DE REGULACIO GENOMICA · BarcelonaКоординаторИспания
Връзки
- Виж в CORDIS
- DOI: 10.3030/841758
- https://fundacionlacaixa.org/es/convocatoria-caixaresearch-investigacion-salud-2020-proyecto-diabetes
Данни: CORDIS, © Европейски съюз
