课题基金 / 基金详情

EPSRC Centre for Doctoral Training in Tissue Engineering and Regenerative Medicine; Innovation in Medical and Biological Engineering

EPSRC Centre for Doctoral Training in Tissue Engineering and Regenerative Medicine; Innovation in Medical and Biological Engineering
EPSRC 组织工程和再生医学博士培训中心;
批准号:
EP/L014823/1
负责人:
金额:
$429.74万
依托单位:
依托单位国家:
英国
项目类别:
Training 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

相似基金

相关文献

中文摘要
翻译
组织工程和再生医学博士培训中心将为75名学生提供研究生研究和培训,他们将能够研究、开发和提供再生疗法和设备,这些疗法和设备可以修复或替换病变组织并恢复正常组织功能。与其他更复杂的细胞治疗方法相比,通过使用新型支架与患者自身(自体)细胞相结合,可以开发出成本更低、时间更短、风险更低的有效的组织修复脱细胞再生疗法。无细胞疗法还有一个额外的优势,因为它被列为三级医疗设备,这减少了开发和临床评估的成本和时间。非细胞技术,无论是合成技术还是生物技术,作为商业医疗产品,以及作为人类移植组织的增强生物过程,对NHS血液和移植具有相当大的兴趣。在这一新兴行业中有越来越多的中小型公司,此外,大型医疗技术公司看到了通过开发再生设备来扩大其医疗产品范围和解决未满足临床需求的机会。英国生命科学产业战略和英国再生医学战略已经确定了这是一个支持财富和健康的机会,政府最近将再生医学确定为英国的伟大技术之一。在最近的一个例子中,我们已经证明了这种新兴技术可以成功地转化为再生干预,通过心脏瓣膜修复和慢性伤口治疗的脱细胞人体组织支架,并被商业化,正如我们大学的分支组织Regenix所展示的那样,他们从动物组织中开发了脱细胞支架,该支架已经作为血管修复的dCEL支架商业化。这一概念有可能应用于身体所有功能组织的修复。政府已经认识到,跨越“死亡创新谷”(下议院科学技术特别委员会2013年3月)的创新和技术转化是具有挑战性的,需要在创新方面进行额外的投资。此外,我们已经与我们在工业和卫生服务领域的合作伙伴确认,在这一领域的研究生的高水平技能和能力方面存在差距,这些研究生接受过适当的多学科培训,以应对再生疗法和设备的应用研究、创新、评估、制造和转化方面的挑战。这一新兴部门需要一种新型的多学科工程师,他们在应用物理科学和生命科学、先进的工程方法和技术方面有研究和培训,在创新、监管、卫生经济学和商业方面有培训,并在再生疗法和设备领域有研究经验。CDT TERM将通过将学术界、工业界和医疗保健专业人员聚集在一个独特的研究和创新生态系统中,为再生疗法和设备的新兴领域培养和发展未来的医学和生物工程师,创造一个增强的多学科研究培训环境。CDT学期将由我们现有的多学科研究和创新活动和资产提供支持,其中包括150多学科研究生和博士后研究人员,超过6000万英镑的外部研究资金以及新的设施和实验室。与我们在工业和卫生服务领域的合作伙伴一起,我们将培训和发展下一代医学和生物工程师,他们将在英国的再生疗法和设备的创新和翻译方面处于前沿,推动经济增长,为健康和患者带来好处
英文摘要
The Centre for Doctoral Training in Tissue Engineering and Regenerative Medicine will provide postgraduate research and training for 75 students, who will be able to research, develop and deliver regenerative therapies and devices, which can repair or replace diseased tissues and restore normal tissue function. By using novel scaffolds in conjunction with the patient`s own (autologous) cells, effective acellular regenerative therapies for tissue repair can be developed at a lower cost, reduced time and reduced risk, compared to alternative and more complex cell therapy approaches. Acellular therapies have the additional advantage as being regulated as a class three medical device, which reduces the cost and time of development and clinical evaluation. Acellular technologies, whether they be synthetic or biological, are of considerable interest to industry as commercial medical products and for NHS Blood and Transplant as enhanced bioprocesses for human transplant tissues. There are an increasing number of small to medium size companies in this emerging sector and in addition larger medical technology companies see opportunities for enhancing their medical product range and address unmet clinical needs through the development of regenerative devices. The UK Life Sciences Industry Strategy and the UK Strategy for Regenerative Medicine have identified this an opportunity to support wealth and health, and the government has recently identified Regenerative Medicine as one of UK`s Great Technologies. In one recent example, we have already demonstrated that this emergent technology be translated successfully into regenerative interventions, through acellular human tissue scaffolds for heart valve repair and chronic wound treatment, and be commercialised as demonstrated by our University spin out Tissue Regenix who have developed acellular scaffold from animal tissue, which has been commercialised as a dCEL scaffold for blood vessel repair. The concept can potentially be applied to the repair of all functional tissues in the body. The government has recognised that innovation and translation of technology across "the innovation valley of death" (Commons Science and Technology Select Committee March 2013), is challenging and needs additional investment in innovation. In addition, we have identified with our partners in industry and Health Service, a gap in high level skills and capability of postgraduates in this area, who have appropriate multidisciplinary training to address the challenges in applied research, innovation, evaluation, manufacturing, and translation of regenerative therapies and devices. This emerging sector needs a new type of multidisciplinary engineer with research and training in applied physical sciences and life sciences, advanced engineering methods and techniques, supported by training in innovation, regulation, health economics and business, and with research experience in the field of regenerative therapies and devices. CDT TERM will create an enhanced multidisciplinary research training environment, by bringing together academics, industry and healthcare professionals in a unique research and innovation eco system, to train and develop the medical and biological engineers for the future, in the emerging field of regenerative therapies and devices. The CDT TERM will be supported by our existing multidisciplinary research and innovation activities and assets, which includes over 150 multidisciplinary postgraduate and postdoctoral researchers, external research funding in excess of £60M and new facilities and laboratories. With our partners in industry and the health service we will train and develop the next generation of medical and biological engineers, who will be at the frontier in the UK in innovation and translation of regenerative therapies and devices, driving economic growth and delivering benefits to health and patients
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
海外基金