MetEpiClock · Circadian Control of Histone Methylation Dynamics through the Fine-tuning of Methionine Metabolic Flux
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2017-11-01 → 2022-10-01
- Финансиране от ЕС
- 262 269 €
- Участници
- 2
- Схема
- MSCA-IF
Линиите свързват координатора с партньорите.
Накратко на български
Биологичният часовник регулира метаболизма на метионина и промените в структурата на хроматина, които контролират работата на гените. Разбирането на този механизъм помага да се обясни появата на затлъстяване, диабет и сърдечно-съдови заболявания при нарушен ритъм на организма.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Circadian Control of Histone Methylation Dynamics through the Fine-tuning of Methionine Metabolic Flux
The circadian clock is an endogenous, time-tracking system that directs multiple metabolic and physiological functions required for homeostasis. The master or “central” clock is located within the suprachiasmatic nucleus (SCN) in the hypothalamus; it functions autonomously and can be reset by environmental cues such as light. The central clock governs peripheral clocks present in all systemic tissues, keeping them synchronized with each other and with the solar cycle, therefore ensuring temporally coordinated physiology. The importance of a functional clock in organismal homeostasis is provided by the evidence that genetic models with disrupted circadian rhythms show many features of metabolic syndrome, including obesity, diabetes, steatosis, cardiovascular diseases, and accelerated aging. About 10% of all mammalian transcripts display circadian oscillation in expression in a tissue-specific manner. At the molecular level, the core circadian clock machinery relies on coupled feedback loops of transcriptional and translational control. Circadian transcription is driven by the DNA binding transcription factors, CLOCK and BMAL1, which heterodimerize and drive the transcription of a large number of core clock and clock-controlled genes (CCGs) by binding to E-box sequences within their promoters. Dynamic changes in chromatin structure play an essential role in the proper timing and extent of circadian gene expression. Chromatin plasticity relies on a variety of enzymes that are dependent on intermediary metabolites, thereby coupling metabolic pathways to epigenetic modifications and gene regulation. A feature of the metabolic-chromatin axis is the translocation of some metabolic enzymes into the nucleus and their contribution to localized availability of metabolites involved in epigenetic regulation. The methionine metabolic pathway intermediates S-adenosyl methionine (SAM) and S-adenosyl homocysteine (SAH), influence gene expression through epigenetic mechanisms as they activate and inhibit, respectively, the activity of enzymes that drive DNA and histone methylation. The project aims at investigating a possible direct link between cellular metabolism, epigenetic dynamics and circadian rhythms. Results from MetEpiClock will uncover a functional crosstalk between the molecular clock and methionine metabolism. Objectives: 1. To determine if key enzymes and metabolites of the methionine cycle display circadian expression and are clock controlled. 2. To elucidate if disruption of cellular methionine homeostasis affects circadian rhythms. 2.1 To investigate the effect of methionine metabolic perturbation on circadian gene expression in vitro. 2.2 To investigate the effect of methionine metabolic perturbation of circadian rhythms and metabolic homeostasis in vivo.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
The circadian clock directs almost all aspects of diurnal physiology, including metabolism. Defects in circadian rhythms influence physiology and behavior with implications for numerous pathological conditions, including cancer, metabolic syndrome, obesity, diabetes and cardiovascular diseases. By controlling metabolic homeostasis at the cellular level, the clock can directly influence cellular regulatory networks, including those that govern chromatin dynamics. The goal of this proposal is to investigate if metabolic pathways able to influence gene expression via chromatin dynamics are under circadian control and whether these regulatory networks are crucial for the maintenance of a correct metabolic homeostasis. We will test if the clock governs the “methylation potential” of the cell by regulating the diurnal expression of rate-limiting enzymes of methionine metabolism. By using metabolite restriction, pharmacological and gene editing approaches we will disrupt circadian rhythmicity of SAM and SAH. We will then use state-of-the-art methods including, transcriptomics, epigenomics and metabolomics to investigate the impact of this regulatory network on circadian transcriptional regulation, histone methylation dynamics and metabolic homeostasis. By dissecting how circadian regulation, metabolism and epigenetics are interconnected we will gain novel insights into how these factors contribute to normal physiology and disease.At UCI I will exploit the expertise of the outgoing supervisor in the area of circadian biology, molecular metabolism and epigenetics. Then, at Humanitas University I will refine the knowledge and skills acquired during the outgoing phase, with the final aim of applying them to the cardiovascular field. This will place me in a privileged position to establish myself as a competent researcher within the European Community, in the field of cardiovascular biology, metabolism and epigenetics.
Оригинален текст от CORDIS (на английски).
Участници
- UNIVERSITA HUMANITAS · PIEVE EMANUELEКоординаторИталия
- THE REGENTS OF THE UNIVERSITY OF CALIFORNIA · OaklandСъединени щати
Връзки
Данни: CORDIS, © Европейски съюз
