Engineering Personalised Cutaneous Hypobaric Microchambers to Facilitate the Treatment of Local Infectious Diseases with Gaseous Signalling Molecules
Engineering Personalised Cutaneous Hypobaric Microchambers to Facilitate the Treatment of Local Infectious Diseases with Gaseous Signalling Molecules
批准号:
EP/V009567/1
负责人:
Stuart Jones
金额:
$43.58万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2021
资助国家:
英国
项目状态:
已结题
起止时间:
2021 至 --
中文摘要
植物会释放几种挥发性含硫化合物作为逆境反应。当科学家用含硫气体模拟植物的这种反应时,他们抑制了水果表面的真菌和细菌生长。这些结果对食物保存具有重要意义,但此外,伦敦国王学院和巴斯大学的初步实验表明,这些气体可以抑制导致人类皮肤和指甲感染的微生物。尽管气体有可能被用作抗感染剂,但很难将其用于患者,因为气体除了通过呼吸道外,不容易进入人体。然而,报告表明,某些天然化学物质,如大蒜大蒜素提取物,在人体内一旦发生反应就会释放一种气体,可以用来给皮肤和指甲注射气体。现在需要一种医疗设备来控制化学捐赠者释放的这些气体的输送,以便它们能够有效地治疗人类感染。对组织施加正负压力梯度可以控制气体的输送。例如,新冠肺炎患者使用的连续呼吸道正压治疗机,通过在正压下将气体推入体内来增加血液中的氧气含量。如果可以制造一种对皮肤施加负压的装置,那么供体化学物质释放的气体将被释放并保持在应用地点,以定向其传递并增强其疗效。在这个项目中,伦敦国王学院的研究人员已经设计了一种定制的3D打印硅胶护套,其中包含一个在指甲表面容纳气体供体化学浸渍纱布的微腔,将对其进行提炼,并将其用于向指甲中注射硫化氢,以治疗指甲感染。微腔和纱布将根据需要治疗的指甲的确切区域进行定制。这种新的设备有可能治疗超过1亿被认为患有指甲病的人。这项研究项目将开发一种新的皮肤感染治疗模式。它将使用个性化的制造技术,通过商业上可用的台式3D打印机和数字3D扫描仪,为患者提供灵活性,以尽可能方便的方式提供有效的治疗。该产品将是一个具有成本效益的解决方案,以克服一个重大的健康问题,因为它促进了使用3D打印的医用级硅胶材料制造定制的医疗设备(总商品成本<;50便士)。可以开发这种方法来治疗其他皮肤感染,包括慢性伤口和烧伤引起的皮肤感染。
英文摘要
Plants release several volatile sulphur-containing compounds as a stress response. When scientists mimicked this plant response using sulphur-containing gases they inhibited fungal and bacterial growth on the surface of fruit. These results have important implications on food preservation, but in addition preliminary experiments by the King's College London and the University of Bath have shown that these gases can inhibit organisms that cause human skin and nail infections. Despite the potential of gases to be used as anti-infective agents, it is difficult to use them with patients because gases do not readily pass into the body other than via the airways. However, reports have suggested that certain natural chemicals, e.g., allicin extract from garlic, can react once in the body to release a gas can be used to administer gases to the skin and nail. A medical device is now required that can control the deliver of these gases released by chemical donors such that they can effectively treat human infections.Applying positive and negative pressure gradients to tissues can control the delivery of gases. For example, Continuous Positive Airway Pressure (CPAP) machines used with COVID-19 patients, increased the amount of oxygen in the blood by pushing the gas into the body under positive presure. If a device can be made that exerts negative pressure on the skin, then the gas delivered by a donor chemical will be released and held at the site of application to target its deliver and enhance its efficacy. In this project, a customized 3D printed silicone sheath containing a microchamber that holds a gas donor chemical impregnated gauze on the nail surface, already designed by researchers at King's College London, will be refined and used to administer hydrogen sulphide to the nail for the treatment of nail infections. The microchamber and gauze will be customized to the exact region of the nail to be treated. This new device has the potential to treat over 100 million people who are thought to suffer from nail disease.This research project will develop a new treatment paradigm for cutaneous infections. It will use personalised fabrication techniques, via commercially available benchtop 3D printers and digital 3D scanners, to provide patients with the flexibility to have effective treatments provided in the most user-friendly manner possible. The product will be a cost-effective solution to overcome a significant health problem as it facilitates the fabrication of a bespoke medical device from medical grade silicone materials using 3D printing (total cost of goods <50p). This approach could be developed to treat other skin infections including those arising as a consequence of chronic wounds and burns.
期刊论文(1)
专著(0)
科研奖励(0)
会议论文
Systematic review and QSPR analysis of chemical penetration through the nail to inform onychomycosis candidate selection
对指甲化学渗透的系统评价和 QSPR 分析,为甲癣候选者选择提供信息
DOI:
10.1016/j.drudis.2023.103844
发表时间:
2024
期刊:
Drug Discovery Today
影响因子:
7.4
作者:
[Malallah O]
通讯作者:
Malallah O
A multiplexed micro-suction biomarker extraction device to understand atopic eczema in babies
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批准号:EP/X013251/1
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项目类别:Research Grant
-
资助金额:$133.43万
-
财政年份:2023
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负责人:Stuart Jones
-
依托单位:
Engineering a topical hypobaric patch: A needle-free solution for biopharmaceutical drug administration into the skin
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批准号:EP/S021167/1
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项目类别:Research Grant
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资助金额:$58.9万
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财政年份:2019
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负责人:Stuart Jones
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依托单位:
Collaborative Research: Regulation of lake productivity by terrestrial dissolved organic matter
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批准号:1754561
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项目类别:Continuing Grant
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资助金额:$80.99万
-
财政年份:2018
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负责人:Stuart Jones
-
依托单位:
EAGER: The implications of interacting land use legacies and drought cycles for lake district carbon cycling
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批准号:1547866
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项目类别:Standard Grant
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资助金额:$19.87万
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财政年份:2015
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负责人:Stuart Jones
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依托单位:
Dimensions: Collaborative Research: Microbial seed banks: processes and patterns of dormancy-driven biodiversity
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批准号:1442230
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项目类别:Standard Grant
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资助金额:$59.08万
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财政年份:2015
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负责人:Stuart Jones
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依托单位:
A fundamental study to determine the difference in barrier properties of healthy and diseased nail in order to facilitate drug delivery
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批准号:BB/H009922/1
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项目类别:Research Grant
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资助金额:$14.03万
-
财政年份:2010
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负责人:Stuart Jones
-
依托单位:
NSF East Asia Summer Institutes for US Graduate Students
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批准号:0513118
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项目类别:Fellowship
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资助金额:$0.0万
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财政年份:2005
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负责人:Stuart Jones
-
依托单位:
海外基金