Ventilation Improves Lung Physiology and Biology
Ventilation Improves Lung Physiology and Biology
批准号:
6879015
负责人:
BELA SUKI
金额:
$24.23万
依托单位国家:
美国
项目类别:
财政年份:
2004
资助国家:
美国
项目状态:
已结题
起止时间:
2004-04-01 至 2007-02-28
关键词:
biomechanicscellular pathologycytokinedisease /disorder modelendotoxinsgene expressionguinea pigshistopathologyinflammationlunglung injuryphospholipidspulmonary surfactantsrespiratorsrespiratory airway pressurerespiratory airway volumerespiratory epitheliumrespiratory functionrespiratory gas transport
中文摘要
描述(由申请人提供):据信,在机械通气(MV)期间,肺单位的过度扩张和/或在塌陷气道和肺不张肺泡区域的重复打开和关闭期间产生的剪切力会加剧,甚至可能触发肺损伤,导致炎症和潜在的多系统器官衰竭。最近,我们报道了在MV期间,在一个周期接一个周期的基础上增加潮气量(Vt)和频率的可变性,称为可变通气(VV),改善了急性肺损伤啮齿动物模型中的肺力学和氧合。此外,与接受常规MV的豚鼠相比,接受VV的健康豚鼠肺泡腔内表面活性剂含量增加,血浆蛋白和细胞因子水平降低。这表明VV不仅诱导内源性表面活性剂释放,而且还用于减少该动物模型中呼吸机诱导的肺损伤和炎症。基于这些观察结果,我们提出了以下两个主要假设:1)与目前公认的低Vt通气策略相比,VV通过改善肺泡募集,减少细胞损伤,炎症和细胞因子释放,从而增加肺对VILI发展的保护;和2)VV的可变性的量可以被“调节”,使得施加到肺泡上皮的拉伸模式用于刺激表面活性剂产生并使表面活性剂释放最大化,同时使损伤上皮和产生炎症的风险最小化。为了验证这些假设,我们建立了三个具体的目标:1)确定肺功能,其特征在于机械,气体交换和表面活性物质的组成作为一个功能的变异性包括在VV和呼气末正压在正常豚鼠。基本原理:该目的将测试在长期通气期间逐渐增加MV的可变性是否改善肺的生理和生物反应,以及是否存在与肺的压力-容积曲线相关的最佳可变性水平,在该最佳可变性水平下,力学、气体交换和表面活性剂成分的损害最小。将测量力学、血气、表面活性剂成分,并根据肺结构的组织病理学评价(作为变异性的函数)评估肺损伤的量和异质性。2)确定在内毒素诱导的急性肺损伤啮齿动物模型中是否可能进行力学、气体交换和表面活性剂组成的类似优化。理由:该目的将使我们能够测试VV是否也能有效降低既存肺损伤加重的风险。3)确定VV对肺泡上皮细胞的可变拉伸模式是否刺激磷脂(PL)和表面活性蛋白(SP)的产生和分泌。基本原理:通过测量PL和SP水平以及适当的RNA水平,我们将确定VV中的机械拉伸模式是否刺激基因表达。重要性:如果VV能够最小化机械力对肺泡隔室的有害影响,同时刺激表面活性剂的上调,则VV实质上将提供能够诱导治疗性“内源性表面活性剂替代”的简单机械通气策略。"
英文摘要
DESCRIPTION (provided by applicant): It is believed that during mechanical ventilation (MV), over-distension of lung units and/or shear forces generated during repetitive opening and closing of collapsed airways and atelectatic alveolar regions can exacerbate and may even trigger lung injury leading to inflammation and potentially to multiple-system organ failure. Recently, we have reported that during MV, variability added to tidal volume (Vt) and frequency on a cycle by cycle basis, called variable ventilation(VV), improves both lung mechanics and oxygenation in a rodent model of acute lung injury. Furthermore, healthy guinea pigs that underwent VV exhibited increased surfactant content and reduced plasma proteins and cytokine levels within the alveolar space compared to those that received conventional MV. This suggests that not only did VV induce endogenous surfactant release, but also served to reduce ventilator induced lung injury and inflammation in this animal model. Based on these observations, we formulate the following two primary hypotheses of this proposal: 1) Compared to the currently accepted low Vt ventilation strategy, VV provides an increased protection of the lung against the development of VILI by improving alveolar recruitment, which decreases cellular damage, inflammation and cytokine release; and 2) The amount of variability in VV can be "tuned" such that the stretch patterns applied to alveolar epithelium serve to stimulate surfactant production and maximize surfactant release while minimizing the risks of damaging the epithelium and generating inflammation. To test these hypotheses, we set up three specific aims: 1) To determine lung function characterized by mechanics, gas exchange and surfactant composition as a function of the variability included in VV and the positive end-expiratory pressure in normal guinea pigs. Rationale: This aim will test whether gradually adding variability to MV improves the physiological and biological response of the lung during long-term ventilation and whether there exists an optimal level of variability in relation to the pressure-volume curve of the lung at which mechanics, gas exchange, and surfactant composition are least compromised. Mechanics, blood gases, surfactant composition will be measured and the amount and heterogeneity of lung injury will be assessed from histopathological evaluation of the lung structure as a function of variability. 2) To determine whether a similar optimization of mechanics, gas exchange and surfactant composition is possible in a rodent model of endotoxin-induced acute lung injury. Rationale: This aim will allow us to test whether VV is also effective in minimizing the risk of exacerbation of pre-existing lung injury. 3) To determine whether the variable stretch pattern imparted by VV on the alveolar epithelium stimulates the production and secretion of phospholipids (PL) and surfactant proteins (SP). Rationale: By measuring PL and SP levels together with the appropriate RNA levels, we will determine whether the mechanical stretch patterns in VV stimulate gene expression or not. Significance: If VV is able to minimize the deleterious effects of mechanical forces on the alveolar compartment while simultaneously stimulate upregulation of surfactant, then VV will, in essence, provide a simple mechanical ventilation strategy capable of inducing therapeutic "endogenous surfactant replacement."
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