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首页> 外文期刊>Analytical and bioanalytical chemistry >A glass microfluidic chip for continuous blood cell sorting by a magnetic gradient without labeling
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A glass microfluidic chip for continuous blood cell sorting by a magnetic gradient without labeling

机译:用于连续血液细胞的玻璃微流体芯片通过磁性梯度排序而无需标记

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摘要

This paper presents a microfluidic chip for highly efficient separation of red blood cells (RBCs) from whole blood on the basis of their native magnetic properties. The glass chip was fabricated by photolithography and thermal bonding. It consisted of one inlet and three outlets, and a nickel wire of 69-mu m diameter was positioned in the center of a separation channel with 149-mu m top width and 73-mu m depth by two parallel ridges (about 10 mu m high). The two ridges were formed simultaneously during the wet etching of the channels. The nickel wire for generating the magnetic gradient inside the separation channel was introduced from the side of the chip through a guide channel. The external magnetic field was applied by a permanent magnet of 0.3 T placed by the side of the chip and parallel to the main separation channel. The RBCs were separated continuously from the 1:40 (v/v) diluted blood sample at a flow rate in the range 0.12-0.92 mu L/min (974 mm/min) with the chip, and up to 93.7% of the RBCs were collected in the middle outlet under a flow rate of 0.23 mu L/min. The cell sedimentation was alleviated by adjusting the specific density of the supporting media with bovine serum albumin. Quantum dot labeling was introduced for visual fluorescence tracking of the separation process. The uneven distribution phenomenon of the blood cells around the nickel wire was reported and discussed.
机译:本文介绍了一种微流体芯片,用于基于其天然磁性,从全血中高效分离红细胞(RBC)。通过光刻和热粘合制造玻璃芯片。它包括一个入口和三个出口,直径为69-mu m的镍线,位于分离通道的中心,具有149亩的顶部宽度和73μm深度的两个平行脊(约10 mu m高的)。在通道的湿法蚀刻期间同时形成两个脊。用于在分离通道内产生磁性梯度的镍线从芯片的侧通过引导通道引入。通过0.3 T的永磁体施加外部磁场并由芯片侧面放置并平行于主分离通道。从1:40(v / v)稀释的血液样品连续分离RBC,其流速为0.12-0.92μmL/ min(974mm / min),芯片高达93.7%的RBCs在0.23μl/ min的流速下在中间出口中收集。通过用牛血清白蛋白调节支撑介质的比密度来缓解细胞沉降。引入了量子点标记,用于分离过程的视觉荧光跟踪。报道并讨论了镍线周围的血细胞的不均匀分布现象。

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