课题基金 / 基金详情

Mechanics and Deformation Responses of Lung Cells

Mechanics and Deformation Responses of Lung Cells
肺细胞的力学和变形反应
批准号:
8058815
负责人:
Rolf D Hubmayr
金额:
$37.78万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2000
资助国家:
美国
项目状态:
已结题
起止时间:
2000-04-01 至 2012-05-31

项目摘要

项目成果

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中文摘要
翻译
描述(由申请人提供):急性肺损伤(ALI)和成人呼吸窘迫综合征(ARDS)每年在北美夺去大约75,000人的生命。虽然机械通气是一种挽救生命的治疗方法,但在肺部特别容易因变形应力而受伤的时候,它可能会造成肺部紧张的伤害。与骨折可以铸造不同,受伤的肺部无法固定。因此,即使是所谓的肺保护呼吸机设置也不能使他们免受进一步的伤害。在过去的三年里,我们研究了细胞应激衰竭的决定因素,作为肺部对变形应激的先天免疫反应的中心驱动因素。我们已经证明,暴露于高容量和经肺压机械通气的肺细胞会经历可逆的质膜损伤,这种损伤可以触发促炎信号级联反应。在这一竞争性更新应用中,我们将确定和测试旨在保护肺泡上皮细胞免受变形损伤或促进伤口修复的治疗方法,并将确定其作用机制。在令人信服的初步数据的指导下,我们将重点研究渗透应激作为肺保护干预措施,并在呼吸机诱导的肺损伤实验模型中测试浓缩盐和糖溶液的功效。本实验将有三个具体目的:1)测试渗透胁迫对肺细胞变形损伤易感性和细胞修复概率的影响;2)探讨渗透胁迫对I型和II型肺泡上皮细胞(AEC)体积、表面积和质膜张力的调节作用;3)探讨嘌呤能信号在渗透应激介导的肺泡上皮修复中的作用。实验将在麻醉的机械通气啮齿动物、孤立的灌注肺和组织培养中受伤和/或变形的细胞上进行。研究终点包括通过活标本显微镜评估的损伤和/或修复细胞的数量,肺部炎症的测量,以及肺和细胞结构和功能的测量。我们将使用光学陷阱来表征AEC中质膜系索的长度张力关系,并将数据解释为膜面积和张力调节以及渗透胁迫对它们的影响的生物物理读数。我们将获得的知识,将告知疾病机制以及进行临床试验的风险和益处。公共卫生相关性。我们的小组研究了细胞应激衰竭的决定因素,作为肺部对变形应激的先天免疫反应的中心驱动因素。在初步的实验中,我们已经确定渗透应激作为潜在的细胞保护辅助机械通气。该建议旨在建立这种干预在呼吸机诱导肺损伤的临床前模型中的有效性,并剖析其作用机制。
英文摘要
DESCRIPTION (provided by applicant): Acute lung injury (ALI) and the Adult Respiratory Distress Syndrome (ARDS) claim approximately 75,000 lives in North America each year. While mechanical ventilation is a life saving treatment, it may nevertheless cause harm by straining lungs at a time they are particularly prone to injury from deforming stress. Unlike a broken bone which can be casted, one cannot immobilize injured lungs. Therefore, even so-called lung protective ventilator settings may not spare them from further damage. For the past three years we have studied the determinants of cellular stress failure as a central driver of the lungs' innate immune response to deforming stress. We have shown that cells of lungs, which are exposed to mechanical ventilation with high volumes and trans-pulmonary pressure, experience reversible plasma membrane wounds and that such wounds can trigger proinflammatory signaling cascades. In this competing renewal application we will identify and test therapies designed to protect alveolar epithelial cells from deformation injury or to promote wound repair and we will define their mechanisms of action. Guided by compelling preliminary data we will focus our efforts on osmotic stress as lung-protective intervention and test the efficacy of concentrated salt and sugar solutions in experimental models of ventilator induced lung injury. The proposed experiments will serve three specific aims: 1) To test the effect of osmotic stress on the susceptibility of lung cells to deformation injury and on the probability of cell repair; 2) To examine the effect of osmotic stress on the regulation of volume, surface area and plasma membrane tension in type I and type II alveolar epithelial cells (AEC); 3) To examine the importance of purinergic signaling on osmotic stress mediated alveolar epithelial repair. Experiments will be carried out on anesthetized mechanically ventilated rodents, in isolated perfuse lungs and on cells that will be injured and/or deformed in tissue culture. Study endpoints include the number of wounded and/or repaired cells as assessed by live specimen microscopy, measures of lung inflammation, as well as measures of lung and cell structure and function. We will use optical traps to characterize the length tension relationships of plasma membrane tethers in AEC's and interpret the data as a biophysical readout of membrane area and tension regulation and the effects of osmotic stress on them. The knowledge we will gain, will inform about disease mechanisms and the risks and benefits of conducting a clinical trial. PUBLIC HEALTH RELEVANCE. Our group investigates the determinants of cellular stress failure as a central driver of the lungs' innate immune response to deforming stress. In preliminary experiments we have identified osmotic stress as potential cytoprotective adjunct to mechanical ventilation. The proposal seeks to establish the efficacy of this intervention in preclinical models of ventilator induced lung injury and to dissect its mechanisms of action.
期刊论文(26)
专著(0)
科研奖励(0)
会议论文
Does oxygen tune cellular mechanotransduction?
氧气可以调节细胞的机械传导吗?
DOI: 10.1152/ajplung.00121.2012
发表时间: 2012
期刊: American journal of physiology. Lung cellular and molecular physiology
影响因子: --
作者: [Hubmayr,RolfD]
通讯作者: Hubmayr,RolfD
DOI: 10.1371/journal.pone.0027469
发表时间: 2011
期刊: PloS one
影响因子: 3.7
作者: [Belete HA, Hubmayr RD, Wang S, Singh RD]
通讯作者: Singh RD
Type I alveolar epithelial phenotype in primary culture.
原代培养物中的 I 型肺泡上皮表型。
DOI: 10.1165/rcmb.2009-0359oc
发表时间: 2011
期刊: American journal of respiratory cell and molecular biology
影响因子: 6.4
作者: [Wang,Shaohua, Hubmayr,RolfD]
通讯作者: Hubmayr,RolfD
Cell wounding and repair in ventilator injured lungs.
呼吸机损伤肺部的细胞损伤和修复。
DOI: 10.1016/j.resp.2008.06.019
发表时间: 2008
期刊: Respiratory physiology & neurobiology
影响因子: 2.3
作者: [Oeckler,RichardA, Hubmayr,RolfD]
通讯作者: Hubmayr,RolfD
12
    Clinical Core
    Clinical Core
    Treatment of Acute Lung Injury and Acute Respiratory Distress Syndrome
    • 批准号:
      8602423
    • 项目类别:
    • 资助金额:
      $7.96万
    • 财政年份:
      2005
    • 负责人:
      Rolf D Hubmayr
    • 依托单位:
    ARDS - SAILS Protocol
    • 批准号:
      8602426
    • 项目类别:
    • 资助金额:
      $4.56万
    • 财政年份:
      2005
    • 负责人:
      Rolf D Hubmayr
    • 依托单位:
    海外基金