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Exploring the role of bioactive lipids in cell death pathways underpinning inflammatory skin disease

Exploring the role of bioactive lipids in cell death pathways underpinning inflammatory skin disease
探索生物活性脂质在炎症性皮肤病细胞死亡途径中的作用
批准号:
2899550
负责人:
金额:
$0.0万
依托单位:
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2023
资助国家:
英国
项目状态:
未结题
起止时间:
2023 至 --

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中文摘要
翻译
细胞死亡途径,如细胞凋亡、坏死下垂或铁下垂,对于控制免疫反应、删除自我反应性免疫细胞、杀死感染细胞和癌细胞至关重要。重要的是,这些途径参与了慢性炎症疾病的发病机制。生物活性脂质,如类二十烷和神经酰胺,具有信号特性并介导炎症和免疫反应。人类皮肤依赖生物活性脂质来维持其正确的结构和功能,有证据表明,它们的失调导致炎症性皮肤病的发展。尽管生物活性脂质已被证明参与细胞死亡途径,但它们对炎症性皮肤病发展的分子机制的确切贡献尚未得到充分探讨。破译细胞死亡途径和脂质之间的联系为发现新的炎症疾病机制、开发治疗干预措施和促进精准医学方法提供了一个令人兴奋的机会。我们建议探讨生物活性脂质和细胞死亡途径在炎症性皮肤病发生的分子机制中的作用,重点是银屑病。我们将使用人类皮肤和血细胞来充分了解脂质介质疾病在不同区室中的生物标志物。我们将激活细胞死亡途径来探索基因和细胞因子的变化,并使用质谱脂质组学来关联细胞脂质和信号脂质介质产生的变化。我们还将研究已知靶向细胞死亡途径的候选药物对细胞脂质组的影响。这项研究将导致发现细胞死亡途径特异性的生物标志物,阐明炎症疾病发展的分子机制,并推进治疗干预。这一点尤其重要,因为目前还没有获得许可的治疗药物直接针对细胞死亡途径,尽管这些药物在包括牛皮癣在内的几种免疫介导疾病的发病机制中起着重要作用。这个多学科项目将提供细胞生物学、免疫学、皮肤生物学、分析学、制药和临床研究、处理由基因组学和脂质组学、细胞和器官培养、脂质提取、质谱和遗传分析产生的大型数据集的培训。该学生还将在英国剑桥的阿斯利康研究实验室进行工业实习。该学生将加入曼彻斯特大学充满活力的研究环境,并将与我们在阿斯利康的工业合作者密切合作。这种合作关系将在生物化学-生物学-医学的界面上提供独特的跨学科培训,并将为学生在现代学术界和制药行业的职业生涯提供宝贵的独特技能。
英文摘要
Cell death pathways such as apoptosis, necroptosis or ferroptosis, are critical for controlling immune responses, deleting self-reactive immune cells, and killing infected and cancer cells. Importantly, these pathways are involved in the pathogenesis of chronic inflammatory disease. Bioactive lipids such as the eicosanoids and ceramides, have signalling properties and mediate inflammatory and immune responses. Human skin depends on bioactive lipids to maintain its correct structure and function, and evidence suggests that their dysregulation leads to the development of inflammatory skin disease. Although bioactive lipids have been shown to be involved in cell death pathways, their exact contribution to the molecular mechanisms underpinning the development of inflammatory skin disease, are not fully explored. Deciphering the links between cell death pathways and lipids offers an exciting opportunity to discover new inflammatory disease mechanisms, develop therapeutic interventions and promote precision medicine approaches. We propose to explore the role of bioactive lipids and cell death pathways in the molecular mechanisms involved in the development of inflammatory skin disease, with emphasis on psoriasis. We will use human skin and blood cells to fully understand lipid mediator disease biomarkers in different compartments. We will activate cell death pathways to explore changes in genes and cytokines, and correlate changes in cellular lipids and signalling lipid mediator production using mass spectrometry lipidomics. We will also investigate the impact of drug candidates known to target cell death pathways on the cellular lipidome. The study will lead to the discovery of biomarkers specific to cell death pathways, elucidate the molecular mechanism of inflammatory disease development, and advance therapeutic interventions. This is of particular importance as there are currently no licensed therapeutics that directly target cell death pathways, although these play important roles in the pathogenesis of several immune-mediated diseases, including psoriasis. This multidisciplinary project will provide training in cell biology, immunology, skin biology, analytics, pharmaceutical and clinical research, handling of large data sets generated by genomics and lipidomics, cell and organ culture, lipid extractions, mass spectrometry and genetic analyses. The student will also undertake industrial placements at AstraZeneca's research laboratories at Cambridge, UK. The student will join a vibrant research environment at the University of Manchester and will work closely with our industrial collaborators at AstraZeneca. This partnership will provide unique interdisciplinary training at the interface of biological chemistry-biology-medicine and will give the student unique skills valuable for a career in modern academia and the pharmaceutical industry.
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  • 批准号:
    82371070
  • 项目类别:
    面上项目
  • 资助金额:
    49.00万元
  • 批准年份:
    2023
  • 负责人:
    赵培泉
  • 依托单位: