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Is Normal Pressure Hydrocephalus more than a mechanical disruption to CSF flow?

机译:常压脑积水不仅仅是对CSF流量的机械性破坏吗?

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This work proposes a new theoretical framework for the water transport in the cerebral environment. The approach is based on Multiple-Network Poroelastic Theory (MPET) and is a natural extension of poroelasticity, a well reported technique applied to cerebrospinal fluid (CSF) transport. MPET accounts for the transport of CSF and blood simultaneously, as they permeate and deform the cerebral tissue. To demonstrate the strength of this approach, MPET is applied to one of the most paradoxical and non-intuitive cerebral pathologies, Normal Pressure Hydrocephalus (NPH). It is shown, for the first time, that clinically relevant ventricular deformations can be observed in the case of totally unobstructed, patient-specific aqueducts. Cerebral diseases are recognised as pivotal in healthcare; they relate to a whole host of unmet clinical needs. We are convinced that basic understanding of fluid transport, as provided by a validated MPET model, is the most promising way to address these needs meaningfully, in a clinical setting.
机译:这项工作为脑环境中水的运输提出了一个新的理论框架。该方法基于多网络多孔弹性理论(MPET),是多孔弹性的自然扩展,多孔弹性是一种广泛报道的应用于脑脊液(CSF)运输的技术。当它们渗透并使脑组织变形时,MPET同时负责脑脊液和血液的运输。为了证明这种方法的优势,MPET被应用于最悖论和最不直观的脑部疾病之一,即常压脑积水(NPH)。首次表明,在完全通畅,患者专用的输水管的情况下,可以观察到临床相关的心室变形。脑疾病被公认为医疗保健中的关键;它们涉及大量未满足的临床需求。我们相信,由经过验证的MPET模型提供的对流体输送的基本理解是在临床环境中有意义地满足这些需求的最有前途的方法。

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