IP Library Granted Patent US 12,083,516
Granted Patent B2
US 12,083,516 · App. 18/118,279 · Granted Sep 10, 2024

Portable electrical impedance-based blood testing device for diagnosis and monitoring sickle cell disease

Inventors: E Du (Boca Raton, FL); Darryl Dieujuste (Boca Raton, FL); Jia Liu (Boca Raton, FL); Yuhao Qiang (Boca Raton, FL)
Assignee: FLORIDA ATLANTIC UNIVERSITY BOARD OF TRUSTEES
B01L3/502715B01L3/502761G01N15/1031G01N33/4915B01L2300/025B01L2300/06B01L2300/0645B01L2300/0809B01L2300/16G01N2015/012G01N2015/1006G01N15/1425G01N15/1431G01N15/1484
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Quick Facts
Patent No.
US 12,083,516
App. No.
18/118,279
Granted
Sep 10, 2024
Kind
B2
Abstract

An exemplary mobile impedance-based flow cytometer is developed for the diagnosis of sickle cell disease. The mobile cytometer may be controlled by a computer (e.g., smartphone) application. Calibration of the portable device may be performed using a component of known impedance value. With the developed portable flow cytometer, analysis may be performed on two sickle cell samples and a healthy cell sample. The acquired results may subsequently be analyzed to extract single-cell level impedance information as well as statistics of different cell conditions. Significant differences in cell impedance signals may be observed between sickle cells and normal cells, as well as between sickle cells under hypoxia and normoxia conditions.

Claims (11)

1. A system for measuring impedance of particles at a remote location, comprising:

a microfluidic impedance sensor having a microfluidic channel for sample flow and a microfluidic chip with two electrodes for impedance measurement, the microfluidic channel including an inlet and an outlet, the microfluidic channel housing the impedance sample particles between the inlet and the outlet; and

a portable impedance-based flow cytometer conductively coupled to the microfluidic impedance sensor, the portable impedance-based flow cytometer having a microcontroller, an impedance converter, a radiofrequency (RF) switch, and a memory, the microcontroller configured to output a command, the impedance converter connected to the microcontroller and configured to output a signal having a voltage amplitude, phase and frequency based on the command output from the microcontroller, the RF switch connected to the microcontroller and the impedance converter, the RF switch configured to receive the signal from the impedance converter, and based on a communication from the microcontroller, direct the signal towards one of a calibration resistor and the impedance sample particles, wherein the signal is modified by the one of the calibration resistor and the impedance sample particles and returned to the impedance converter, the impedance converter further configured to measure the modified signal as impedance data for collection by the microcontroller, the memory in communication with the microcontroller that stores the impedance data,

the portable impedance-based flow cytometer further comprising a communication device attached to the microcontroller, the communication device configured for communication with a computer having a graphical user interface, the computer programed with a computer program enabling the computer to connect to the communication device and direct the measuring and monitoring of the impedance data of the particles between the inlet and the outlet of the microfluidic channel.

2. The system of claim 1 , further comprising a printed circuit board conductively coupled to the microcontroller, the impedance converter, the RF switch and the memory.

3. The system of claim 1 , the microfluidic impedance sensor further including a microfluidic chip with a glass substrate and the two electrodes deposited thereon, the microfluidic channel being defined within a silicone layer bonded with the glass substrate.

4. The system of claim 3 , the microfluidic impedance sensor further including a second silicone layer defining a gas chamber having an inlet and an outlet, the inlet being in communication with an oxygen-poor gas mixture source to supply a gas mixture across the microfluidic channel.

5. The system of claim 3 , further comprising a chemical coating over the silicone layer defining the microfluidic channel to transform the microfluidic into a hypoxic deoxygenated environment.

6. The system of claim 1 , wherein the signal from the impedance converter includes a sinusoidal wave at a frequency of about 100 kHz, the sinusoidal wave being approximately a 1.98 Vp-p sinusoidal wave.

7. The portable impedance-based flow cytometer of claim 1 , wherein the portable impedance-based flow cytometer is handheld and weighs less than 1 lb.

8. The portable impedance-based flow cytometer of claim 1 , wherein the particles include sickle cell red blood cells.

Assignments (3)
CONFIRMATORY LICENSE Recorded Feb 12, 2025
From: FLORIDA ATLANTIC UNIVERSITY
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 070191/0144 →
CORRECTIVE ASSIGNMENT TO CORRECT THE CORRECT THE RECEIVING PARTY DATA PREVIOUSLY RECORDED AT REEL: 63880 FRAME: 249. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Oct 10, 2024
From: DU, E; DIEUJUSTE, DARRYL; LIU, JIA; QIANG, YUHAO
To: FLORIDA ATLANTIC UNIVERSITY BOARD OF TRUSTEES
Reel/Frame 069139/0418 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 7, 2023
From: DU, E; DIEUJUSTE, DARRYL; LIU, JIA; QIANG, YUHAO
To: FLORIDA ATLANTIC UNIVERSITY
Reel/Frame 063880/0249 →
Continuity (3)
Division 16585897 · Sep 27, 2019
Provisional Application 62773677 · Nov 30, 2018
Related Publication 20230211340A1 · Jul 6, 2023