4.5 Article

Blood viscoelasticity measurement using steady and transient flow controls of blood in a microfluidic analogue of Wheastone-bridge channel

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BIOMICROFLUIDICS
卷 7, 期 5, 页码 -

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AMER INST PHYSICS
DOI: 10.1063/1.4827355

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资金

  1. National Research Foundation of Korea (NRF)
  2. Korea Government (MSIP) [2008-0061991]
  3. National Research Foundation of Korea [2008-0061991] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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Accurate measurement of blood viscoelasticity including viscosity and elasticity is essential in estimating blood flows in arteries, arterials, and capillaries and in investigating sub-lethal damage of RBCs. Furthermore, the blood viscoelasticity could be clinically used as key indices in monitoring patients with cardiovascular diseases. In this study, we propose a new method to simultaneously measure the viscosity and elasticity of blood by simply controlling the steady and transient blood flows in a microfluidic analogue of Wheastone-bridge channel, without fully integrated sensors and labelling operations. The microfluidic device is designed to have two inlets and outlets, two side channels, and one bridge channel connecting the two side channels. Blood and PBS solution are simultaneously delivered into the microfluidic device as test fluid and reference fluid, respectively. Using a fluidic-circuit model for the microfluidic device, the analytical formula is derived by applying the linear viscoelasticity model for rheological representation of blood. First, in the steady blood flow, the relationship between the viscosity of blood and that of PBS solution (mu(Blood)/mu(PBS)) is obtained by monitoring the reverse flows in the bridge channel at a specific flow-rate rate (Q(PBS)(SS) /Q(Blood)(L)). Next, in the transient blood flow, a sudden increase in the blood flow-rate induces the transient behaviors of the blood flow in the bridge channel. Here, the elasticity (or characteristic time) of blood can be quantitatively measured by analyzing the dynamic movement of blood in the bridge channel. The regression formula (A(Blood) (t) = A(alpha) + A(beta) exp [-(t - t(0))/lambda(Blood)]) is selected based on the pressure difference (Delta P = P-A - P-B) at each junction (A, B) of both side channels. The characteristic time of blood (lambda(Blood)) is measured by analyzing the area (A(Blood)) filled with blood in the bridge channel by selecting an appropriate detection window in the microscopic images captured by a high-speed camera (frame rate = 200 Hz, total measurement time = 7 s). The elasticity of blood (G(Blood)) is identified using the relationship between the characteristic time and the viscosity of blood. For practical demonstrations, the proposed method is successfully applied to evaluate the variations in viscosity and elasticity of various blood samples: (a) various hematocrits form 20% to 50%, (b) thermal-induced treatment (50 degrees C for 30 min), (c) flow-induced shear stress (53 +/- 0.5 mL/h for 120 min), and (d) normal rat versus spontaneously hypertensive rat. Based on these experimental demonstrations, the proposed method can be effectively used to monitor variations in viscosity and elasticity of bloods, even with the absence of fully integrated sensors, tedious labeling and calibrations. (C) 2013 AIP Publishing LLC.

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