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人体呼吸黏液的磁性线主动微流变学。

Magnetic wire active microrheology of human respiratory mucus.

机构信息

Université de Paris, CNRS, Matière et Systèmes Complexes, 75013 Paris, France.

出版信息

Soft Matter. 2021 Aug 28;17(32):7585-7595. doi: 10.1039/d1sm00512j. Epub 2021 Aug 3.

DOI:10.1039/d1sm00512j
PMID:34341819
Abstract

Mucus is a viscoelastic gel secreted by the pulmonary epithelium in the tracheobronchial region of the lungs. The coordinated beating of cilia moves mucus upwards towards the pharynx, removing inhaled pathogens and particles from the airways. The efficacy of this clearance mechanism depends primarily on the rheological properties of mucus. Here we use magnetic wire based microrheology to study the viscoelastic properties of human mucus collected from human bronchus tubes. The response of wires between 5 and 80 μm in length to a rotating magnetic field is monitored by optical time-lapse microscopy and analyzed using constitutive equations of rheology, including those of Maxwell and Kelvin-Voigt. The static shear viscosity and elastic modulus can be inferred from low frequency (3 × 10-30 rad s) measurements, leading to the evaluation of the mucin network relaxation time. This relaxation time is found to be widely distributed, from one to several hundred seconds. Mucus is identified as a viscoelastic liquid with an elastic modulus of 2.5 ± 0.5 Pa and a static viscosity of 100 ± 40 Pa s. Our work shows that beyond the established spatial variations in rheological properties due to microcavities, mucus exhibits secondary inhomogeneities associated with the relaxation time of the mucin network that may be important for its flow properties.

摘要

黏液是肺部气管支气管区域的肺上皮分泌的一种黏弹性凝胶。纤毛有节奏的摆动将黏液向上移动到咽部,从而清除气道中的吸入病原体和颗粒。这种清除机制的效率主要取决于黏液的流变学特性。在这里,我们使用基于磁丝的微流变学来研究从人支气管管中收集的人黏液的黏弹性特性。通过光学时程显微镜监测长度在 5 至 80 微米之间的磁丝对旋转磁场的响应,并使用流变学的本构方程进行分析,包括麦克斯韦和 Kelvin-Voigt 方程。可以从低频(3×10-30 rad s)测量中推断出静态剪切黏度和弹性模量,从而评估黏蛋白网络松弛时间。发现该松弛时间分布广泛,从 1 到几百秒不等。黏液被鉴定为具有 2.5±0.5 Pa 弹性模量和 100±40 Pa s 静态黏度的黏弹性液体。我们的工作表明,除了由于微腔引起的流变特性的既定空间变化之外,黏液还表现出与黏蛋白网络松弛时间相关的次要非均质性,这可能对其流动特性很重要。

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