| Literature DB >> 30337656 |
Da-Han Kuan1, Chia-Chien Wu1, Wei-Yu Su1, Nien-Tsu Huang2,3.
Abstract
This study reports a microfluidic device for whole blood processing. The device uses the bifurcation law, cross-flow method, and hydrodynamic flow for simultaneous extraction of plasma, red blood cells, and on-chip white blood cell trapping. The results demonstrate successful plasma and red blood cell collection with a minimum dilution factor (0.76x) and low haemolysis effect. The extracted red blood cells can also be applied for blood type tests. Moreover, the device can trap up to ~1,800 white blood cells in 20 minutes. The three components can be collected simultaneously using only 6 μL of whole blood without any sample preparation processes. Based on these features, the microfluidic device enables low-cost, rapid, and efficient whole blood processing functionality that could potentially be applied for blood analysis in resource-limited environments or point-of-care settings.Entities:
Mesh:
Year: 2018 PMID: 30337656 PMCID: PMC6194116 DOI: 10.1038/s41598-018-33738-8
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
A summary of microfluidics for whole blood processing.
| Author | Active/Passive | Mechanism | Label-free | Injected Sample | Sample Volume/ Throughpu | Desired target (# of targets) | Performance |
|---|---|---|---|---|---|---|---|
| Yuchao Chen | Active | Acoustic | Yes | Whole blood | 10000 μL/min | Platelet (1) | >85% Platelet recovery rate >80% RBC/WBC removal rate |
| Maria Antfolk | Active | Acoustic | Yes | Spiked cancer cells in RBC-lysed and 10X diluted whole blood | 100 μL/min | CTC (1) | 91.8% MCF7 separation efficiency 84.1% DU145 recovery rate |
| P. Dow | Active | Acoustic | Yes | Spiked bacteria in PBS-diluted whole blood to 20% Hct | 10 μL/min | Bacteria (1) | >85% RBC removal rate.45–60% Bacteria yield |
| Crispin Szydzik | Active | Dielectrophoretic | Yes | Whole blood | 15 μL in 15 min | Plasma (1) | 165 nL undiluted plasma |
| Anas Alazzam | Active | Dielectrophoretic | Yes | Spike cancer cells in sucrose/dextrose medium resuspended whole blood | 1.67 μL/min | CTC (1) | 95–98% MDA231 separation efficiency |
| Matthew S. Pommer | Active | Dielectrophoretic | Yes | ~10X diluted whole blood using LEC buffer | 2.5 μL/min | Platelet (1) | 95% Platelet purity |
| Ki-Ho Han | Active | Magnetic | Yes | 10X diluted whole blood using sodium hydrosulfite | 0.083 μL/min | RBC, WBC (2) | 93.5% RBC separation efficiency 97.4% WBC separation efficiency. |
| Macdara T. Glynn | Active | Magnetic | No | Spike magnetically-labelled CD4 + cell in whole blood | 4 μL in 15 sec | CD4 + cell (1) | 93.0% CD4 + cell capture efficiency |
| Nezihi Murat Karabacak | Active/ Passive | Magnetic + Hydrodynamic | No | Add magnetic beads in whole blood. | 120 μL/min | CTC (1) | 3.8-log depletion of WBC.97% CTC yield. |
| Hye-Kyoung Seo | Active/ Passive | Magnetic + Hydrodynamic | Yes | 1000X RBC dilution using PBS | 1000 μL/min | WBC, RBC (2) | 86.8% RBC separation efficiency 29.1% WBC separation efficiency |
| Mahdi Mohammadi | Active/ Passive | Dielectrophoretic + Hydrodynamic | Yes | Whole blood mix with 1:1 heparin sodium. | 2 μL in 7 min | Plasma (1) | 100 nL plasma with 99% purity. |
| C. Wyatt Shield IV | Active | Acoustic + Magnetic | No | Spike magnetically-labelled LNCaP cancer cell line in RBC- lysed and PBS resuspended whole blood. | 50 μL/min | CTC (1) | 89% LNCaP cancer cell line separation efficiency |
| Ivan K. Dimov | Passive | Sedimentation | Yes | Whole blood | 5 μL in 10 min | Plasma (1) | 99.9–100% blood cell retention. |
| John A. Davis | Passive | Hydrodynamic | Yes | Whole blood | 0.4 μL/min | Plasma (1) | 100% plasma recovery rate 100% cell removal rate. |
| Siddhartha Tripathi | Passive | Hydrodynamic | Yes | Diluted whole blood using sodium chloride to 7–62% Hct. | 500 μL/min | Plasma (1) | 99.5% blood cell removal rate. |
| Elodie Sollier | Passive | Hydrodynamic | Yes | 20X diluted blood using PBS. | 100 μL/min | Plasma (1) | 17.8% plasma extraction |
| Sung Yang | Passive | Hydrodynamic | Yes | Whole blood | 0.16 μL/min | Plasma (1) | 100% plasma purity 15–25% plasma extraction. |
| Myounggon Kim et al.[ | Passive | Hydrodynamic | Yes | Whole blood | 0.33 μL/min | WBC (1) | 96.9% WBC purity 97.2% WBC recovery rate. |
| This work | Passive | Hydrodynamic | Yes | Whole blood | 0.3 μL/min 6 μL in 20 min | Plasma, RBC, WBC (3) | ~1.5 μL 0.76-fold dilution, low hemolysed plasma, 1200–1800 trapped WBC |
Figure 1(a) Schematic of the microfluidic device, which contains a whole blood sample inlet and a buffer inlet, respectively. After the whole blood sample flowed to the bifurcation region (orange zone), plasma and RBCs were extracted to plasma zone and RBC zone, respectively. WBCs flowed to the main channel and were trapped in the WBC zone. (b) Photograph of the plasma zone and RBC zone entrance. Green particles are packed beads, and red particles are RBCs. (c) Photograph of the WBC zone with trapped WBCs.
Figure 2The fluorescence images of beads in the microfluidic device. Green, white and yellow dashed line represent to the plasma zone, RBC zone, and WBC zone, respectively. (a) Most 2-μm red fluorescent beads flow into the RBC zone; (b) 10-μm blue fluorescent beads flow into the WBC zone.
Figure 3(a) Plot of the dilution factor test in 4 clinical samples. Each sample was processed by 3 individual devices. (b) The UV-VIS spectra of the plasma extracted from centrifugation (black line), the microfluidic device (blue line), and mechanically lysed whole blood (red line).
Figure 4Blood type test images from the extracted RBC solutions of blood sample 1 and sample 2 under anti-A, anti-B, and anti-D treatment. The red triangles indicate blood agglutination.
Figure 5WBC seeding pattern in the trapping units of the microfluidic device. (a) Schematic and time-lapse fluorescence images of WBC zone. (b) Trapped WBC numbers in top, middle, and bottom regions at different time points. The red dashed lines are the regression lines of each region, representing the WBC capture rate. (c) Enlarged image of the yellow box showing the WBC seeding profile.
Figure 6Simultaneous extraction of plasma, RBCs and on-chip white blood cell trapping. (a) Image of the microfluidic device showing the position of each zone. (b) Standard curve of the absorbance intensity versus dilution factor of manually diluted blood (black rectangles and red dashed line). The blue star represents the absorbance and corresponding dilution factor (0.67x) of extracted plasma in this test. (c) Blood type test images from the extracted RBC solution. The red triangles represent blood agglutination. (d) WBC seeding pattern in the WBC zone.