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Investigating the human myometrial acetylome and identifying potential new targets for treating preterm labour

Investigating the human myometrial acetylome and identifying potential new targets for treating preterm labour
研究人类子宫肌层乙酰组并确定治疗早产的潜在新靶点
批准号:
MR/L009560/1
负责人:
Nick Europe-Finner
金额:
$92.85万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2014
资助国家:
英国
项目状态:
已结题
起止时间:
2014 至 --

项目摘要

项目成果

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中文摘要
翻译
在英国,每年有5万例早产病例发生,这仍然是英国新生儿死亡和发病的主要原因。存活下来的早产儿患长期身体或智力残疾的风险较高。世卫组织估计,在全球范围内,每年有多达1500万人早产,新生儿死亡约100万人。因此,开发更好的治疗方法来管理早产,是一个主要的研究目标,旨在解决这种疾病对健康和社会经济的重大影响。早产发生率的一个主要因素是子宫收缩过早激活,即使在没有感染等其他临床风险关联的情况下也是如此,但仍然没有广泛有效的治疗方法来消除母亲和/或新生儿的风险因素。目前,与其他器官系统相比,我们对控制足月或早产子宫激活的机制的了解较弱,这反映在我们无法开出在不危及新生儿结局的情况下限制早产子宫收缩的药物。该项目旨在解决这些问题。高通量蛋白质组学的最新技术和实验进展使我们意识到,可能调节细胞功能的蛋白质修饰的范围正在扩大。我们实验室已发表的证据表明,肌丝相关蛋白乙酰化是调节人子宫肌层收缩能力的重要机制。通过抑制赖氨酸脱乙酰酶(KDAC)来增加蛋白质乙酰化的药物不仅在体外降低了人类子宫肌层的收缩能力,而且在早产动物模型中延缓了子宫的激活,同时提高了新生儿的存活率。在目前的研究中,我们将使用先进的蛋白质组学技术来鉴定在这些过程中作为乙酰化目标的蛋白质。利用包括科学和临床专业知识的跨学科方法,结合早产的活体动物模型对人类体外活组织进行实验,我们将提供子宫肌层蛋白乙酰化变化的新鉴定,包括通过KDAC抑制或赖氨酸乙酰化酶(KAT)激活治疗的单个乙酰化位点的鉴定。同时,我们将建立抑制KDAC或激活KAT的能力,以延缓实验诱导的早产,并改善新生儿存活率和结局。由于这些是开发任何新的胎头裂解药物的明确愿望,我们的数据不仅将告诉我们涉及调节足月和早产的新的分子机制,而且还将为我们提供未来开发早产治疗的有希望的蛋白质靶点。除了对怀孕和妊娠并发症感兴趣的直接科学和临床研究从业者之外,这项工作还将提供一个公开可用的数据集,其中包含对人类和豚鼠细胞蛋白质乙酰化的广泛评估,比较生物学家和蛋白质组生物信息学家将对此感兴趣。
英文摘要
Preterm birth occurs in >50,000 cases per annum in the UK and is still the major cause of neonatal mortality and morbidity in the UK. Preterm babies that survive do so with an elevated risk of long-term physical or mental handicap. Globally, the WHO estimate that up to 15 million births per annum occur prematurely with approximately 1 million neonatal deaths. The development of better therapeutics in managing preterm birth, therefore, is a prime research aim that serves to tackle the considerable health and socio-economic impacts of this disorder. A major contributor to the incidence of preterm birth is premature activation of uterine contractions, even in the absence of other clinical risk associations such as infection, yet there still is no broadly efficient therapeutic treatment free of risk factors for the mother and/or neonate. At present, our understanding of the mechanisms that control activation of the uterus at term or preterm is weak compared to other organ systems and this is reflected in our inability to prescribe drugs that limit premature uterine contractility without jeopardising neonatal outcome. This project seeks to address these issues.Recent technical and experimental advances in high throughput proteomics have made us aware of an expanding range of protein modifications that may regulate cell function. Published evidence from our laboratory has indicated that myofilament-associated protein acetylation is an important mechanism for regulating human myometrial contractility. Drugs which act to increase protein acetylation by inhibiting lysine deacetylases (KDACs) not only reduce human myometrial contractility in vitro but also delay uterine activation in an animal model of preterm labour whilst improving neonatal survival. In the present study we will employ advanced proteomic techniques to identify proteins that are targets for acetylation in these processes. Utilising a cross-disciplinary approach, encompassing scentific and clinical expertise, and experimentation on human ex vivo biopsies in alliance with in vivo animal model of preterm labour, we will provide novel identification of changes in myometrial protein acetylation, including the identification of individual acetylation sites, with treatment by KDAC inhibition or lysine acetylase (KAT) activation. In concert, we will establish the ability of KDAC inhibition or KAT activation to delay experimentally-induced preterm labour and improve neonatal survival and outcome. As these are the defining aspirations of developing any new tocolytic drugs, our data will not only inform us of novel molecular mechanisms involved in regulating term and preterm labour, but will also inform us of promising protein targets for development of future therapeutics for preterm labour. Beyond the immediate scientific and clinical research practitioners interested in pregnancy and pregnancy complications, this work will also provide a publicly-available dataset with a broad scale assessment of human and guinea pig cell protein acetylation which will be of interest to comparative biologists and proteomic bioinformaticians.
期刊论文(9)
专著(0)
科研奖励(0)
会议论文
Strategies for Peptide-Mediated Cargo Delivery to Human Smooth Muscle Cells.
肽介导的货物递送至人类平滑肌细胞的策略。
DOI: 10.1007/978-1-0716-1752-6_29
发表时间: 2022
期刊: Methods in molecular biology (Clifton, N.J.)
影响因子: --
作者: [Gurney L]
通讯作者: Gurney L
Physiological resilience across the lifecourse: in utero and beyond.
整个生命过程中的生理弹性:子宫内及以后。
DOI: 10.1113/ep090320
发表时间: 2022
期刊: Experimental physiology
影响因子: 2.7
作者: [Taggart MJ]
通讯作者: Taggart MJ
Letter to the editor: "KDAC and the regulation of nonnuclear smooth muscle protein acetylation".
致编辑的信:“KDAC 和非核平滑肌蛋白乙酰化的调节”。
DOI: 10.1152/ajpcell.00208.2014
发表时间: 2014
期刊: American journal of physiology. Cell physiology
影响因子: --
作者: [Taggart MJ]
通讯作者: Taggart MJ
Depletion of Myofibril-Associated Proteins Using Selective Protein Extraction as a Tool in Cardiac Proteomics.
使用选择性蛋白质提取作为心脏蛋白质组学工具来消耗肌原纤维相关蛋白质。
DOI: 10.1007/7651_2017_73
发表时间: 2018
期刊: Methods in molecular biology (Clifton, N.J.)
影响因子: --
作者: [Treumann A]
通讯作者: Treumann A
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