IP Library Granted Patent US 12,179,194
Granted Patent B2
US 12,179,194 · App. 17/207,057 · Granted Dec 31, 2024

Ultrasound-based patterning of particles and cells within fluid matrices

Inventors: Rohan Shirwaiker (Raleigh, NC); Parth Chansoria (Raleigh, NC); Lokesh Narayanan (Raleigh, NC)
Assignee: North Carolina State University
B01L3/50273B01L3/502761B33Y40/00C12N5/0062C12N13/00B01L2200/0668B01L2400/0436B01L2400/0439
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Quick Facts
Patent No.
US 12,179,194
App. No.
17/207,057
Granted
Dec 31, 2024
Kind
B2
Abstract

Method of ultrasound-assisted 3D bioprinting includes depositing a bioink fluid matrix containing a suspension of cells into a chamber comprising two piezo transducers on opposing ends of the chamber. The method further includes vibrating the piezo transducers to generate longitudinal bulk acoustic waves within the bioink fluid matrix such that waves from opposing piezo transducers superimpose to form a standing bulk acoustic wave to drive the cells to cluster and align along one or more nodes or nodal planes formed within the bioink fluid matrix at points of intersection of the standing bulk acoustic wave. The nodes or nodal planes are spaced apart from each other by a distance equaling half a wavelength of the standing bulk acoustic wave. The nodes or nodal planes further mimic a contour of the vibrating surfaces of the piezo transducers.

Claims (45)

1. A method of ultrasound-assisted three-dimensional (3D) bioprinting, the method comprising:

depositing a bioink fluid matrix containing a suspension of cells or particles into a chamber comprising a 3D-printing head, and a piezo transducer and a reflector positioned on opposing ends of the chamber;

vibrating the piezo transducer to generate longitudinal bulk acoustic waves within the bioink fluid matrix such that waves emanating from the piezo transducer and reflected waves from the reflector superimpose to form a standing bulk acoustic wave; and

driving the cells or particles to cluster and align the cells or particles along one or more nodes or nodal planes formed within the bioink fluid matrix at points of intersection of the standing bulk acoustic wave to form a construct, wherein:

the nodal planes are spaced apart from each other by a distance equaling half a wavelength of the standing bulk acoustic wave,

the nodes or nodal planes mimic a contour of vibrating surfaces of the piezo transducer or the reflector, or organize a pattern determined using computational modeling, and

the 3D-printing head comprises an apparatus for gelling or solidifying the suspension of cells or particles.

2. The method of claim 1 , further comprising solidifying the bioink fluid matrix using one or more of: chemical, heat, and light treatment to entrap the aligned cells or particles in place.

3. The method of claim 1 , further comprising gelling the bioink fluid matrix using one or more of: chemical, heat, and light treatment to entrap the aligned cells or particles in place.

4. The method of claim 1 , wherein a chamber shape and a number of piezo transducers is configured based on a predetermined pattern of cell arrangement.

5. The method of claim 1 , further comprising providing additional piezo transducers wherein a control algorithm vibrates the piezo transducers in a specified sequence to obtain a predetermined pattern of cell arrangement.

6. The method of claim 1 , wherein spacing between the piezo transducer and the reflector is equal to an integer multiple of half the wavelength of the standing bulk acoustic wave.

7. The method of claim 1 , wherein spacing between the piezo transducer and the reflector is correlated to a frequency of the standing bulk acoustic wave.

8. The method of claim 1 , further comprising one or more of: increasing a frequency of the standing bulk acoustic wave to decrease a width of the nodal planes; increasing a voltage amplitude supplied to the piezo transducer to decrease a width of the nodes or nodal planes; increasing excitation duration or actuation duration of the piezo transducer to decrease a width of the nodes or nodal planes; delaying a crosslinking initiation or a gelling initiation within the chamber to reduce a width of the nodes or nodal planes; and increasing a frequency of the standing bulk acoustic wave to decrease spacing between adjacent nodal planes.

9. The method of claim 1 , wherein the piezo transducer is electrically coupled to an intermediate high frequency radio frequency power amplifier.

10. The method of claim 1 , wherein the piezo transducer is electrically coupled to one or more of a function generator and a signal generator.

11. The method of claim 1 , further comprising cross-linking the aligned cells or particles nodes or nodal planes by one or more of a gelling process and a solidifying process.

12. The method of claim 1 , wherein the bioink fluid matrix is a homogenous suspension of one or more of: cells, proteins, micro particles, nano-particles, micro-fibers and nano-fibers.

13. The method of claim 1 , further comprising:

transferring the chamber comprising a completed construct with aligned cells or particles to an incubator; and

maturing the construct, using the incubator, over a predetermined time period under predetermined environmental conditions.

14. The method of claim 1 , wherein the 3D-printing head further comprises a dispenser of the bioink fluid matrix.

15. The method of claim 1 , wherein the 3D-printing head further comprises an apparatus for orienting the piezo transducers.

16. A method of ultrasound-assisted three-dimensional (3D) bioprinting, the method comprising:

depositing a bioink fluid matrix containing a suspension of cells or particles into a chamber, the chamber comprising a 3D-printing head and two piezo transducers on opposing ends of the chamber;

vibrating the piezo transducers to generate longitudinal bulk acoustic waves within the bioink fluid matrix such that waves from opposing piezo transducers superimpose to form a standing bulk acoustic wave; and

driving the cells or particles to cluster and align along one or more nodes or nodal planes formed within the bioink fluid matrix at points of intersection of the standing bulk acoustic wave to form a construct,

wherein the nodes or nodal planes are spaced apart from each other by a distance equaling half a wavelength of the standing bulk acoustic wave,

wherein the nodes mimic a contour of vibrating surfaces of the piezo transducers, or a pattern determined using computational modeling, and

the 3D-printing head comprises an apparatus for gelling or solidifying the suspension of cells or particles.

17. The method of claim 16 , wherein spacing between the piezo transducers is equal to an integer multiple of half the wavelength of the standing bulk acoustic wave.

18. The method of claim 16 , further comprising:

transferring the chamber comprising a completed construct with aligned cells or particles to an incubator; and

maturing the construct, using the incubator, over a predetermined time period under predetermined environmental conditions.

19. The method of claim 15 , wherein the cells or particles comprise one or more of: proteins, micro particles, nano-particles, micro-fibers and nano-fibers.

20. A method of ultrasound-assisted three-dimensional (3D) bioprinting, the method comprising:

depositing a bioink fluid matrix containing a suspension of cells into a chamber comprising a 3D-printing head, and a piezo transducer and a reflector positioned on opposing ends of the chamber;

vibrating the piezo transducer to generate longitudinal bulk acoustic waves within the bioink fluid matrix such that waves emanating from the piezo transducer and reflected waves from the reflector superimpose to form a standing bulk acoustic wave; and

driving the cells to cluster and align along one or more nodes or nodal planes formed within the bioink fluid matrix at points of intersection of the standing bulk acoustic wave to form a construct,

wherein the nodal planes are spaced apart from each other by a distance equaling half a wavelength of the standing bulk acoustic wave,

wherein the nodes or nodal planes mimic a contour of vibrating surfaces of the piezo transducer or the reflector, or organize a pattern determined using computational modeling, and

the 3D-printing head comprises an apparatus for gelling or solidifying the suspension of cells or particles.

21. The method of claim 20 , further comprising:

transferring the chamber comprising a completed construct with aligned cells to an incubator; and

maturing the construct, using the incubator, over a predetermined time period under predetermined culture conditions.

Assignments (2)
CONFIRMATORY LICENSE Recorded Apr 19, 2022
From: NORTH CAROLINA STATE UNIVERSITY RALEIGH
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 059726/0961 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 19, 2021
From: SHIRWAIKER, ROHAN; CHANSORIA, PARTH; NARAYANAN, LOKESH
To: NORTH CAROLINA STATE UNIVERSITY
Reel/Frame 055654/0396 →
Continuity (3)
Continuation PCTUS2019056859 · Oct 18, 2019
Provisional Application 62747789 · Oct 19, 2018
Related Publication 20210260578A1 · Aug 26, 2021