Claims
- 1. A centrifugal method of processing a fluid having first and second components dispersed therein and of collecting a volume of the fluid being rich with the second components which are less susceptible to centrifugal forces than the first component, comprising:
receiving a fill device containing a fill volume of the fluid and a collection device for storing the collected volume of the second component; filling a separation chamber with the fluid including pumping the fluid from the fill device through a fluid connection line to the separation chamber, wherein during the filling the separation chamber is rotated by a centrifuge at a fill rotation rate; performing a soft spin to first separate the first components from the second components by operating the centrifuge to spin the separation chamber at a soft spin rotation rate; first withdrawing the fluid from the separation chamber to remove a first portion of the first components, wherein the first withdrawing includes pumping a fast withdraw volume of the fluid with the first components away from the separation chamber; second withdrawing the fluid from the separation chamber to remove a second portion of the first components, wherein the second withdrawing includes monitoring the separation chamber for an interface between the first components and the second components in the fluid and pumping the fluid away from the separation chamber until the interface is detected; pumping a line clearing volume of the fluid from the separation chamber and the fluid connection line to remove the fluid containing the first component from the separation chamber and the fluid connection line; and collecting the collection volume of the fluid rich with the second components by pumping the fluid from the fluid connection line and the separation chamber into the collection device until the collection volume has been received in the collection device.
- 2. The method of claim 1, wherein the first withdrawing includes determining a calibrated output signal from a sensor proximal the separation chamber during the fast withdraw volume pumping and wherein the interface monitoring includes comparing signals received from the sensor with the calibrated output signal.
- 3. The method of claim 1, further including selecting the collection volume at a user interface.
- 4. The method of claim 1, further including mounting the separation chamber on the centrifuge and connecting the fluid communication line to the fill and collection devices.
- 5. The method of claim 4, wherein the fill and collection devices are syringes and wherein the separation chamber filling, the first withdrawing, the second withdrawing, and the line clearing pumping include selectively operating a syringe pump connected to the fill device and the collecting includes selectively operating a syringe pump connected to the collection device.
- 6. The method of claim 1, wherein the fluid is blood and the first components are red blood cells and the second components are platelets.
- 7. The method of claim 6, further including after the second components collecting, collecting a portion of the fluid remaining in the separation chamber.
- 8. The method of claim 1, wherein the fluid is blood and the first components are red blood cells and the second components are white blood cells.
- 9. The method of claim 1, further including after the second withdrawing and prior to the line clearing pumping, operating the centrifuge to spin the separation chamber at hard spin rotation rate that is higher than the soft spin rotation rate.
- 10. The method of claim 9, wherein the soft spin rotation rate is selected from the range of about 2000 to 3200 RPM or to achieve about 343 to about 880 g's within the separation chamber and the hard spin rotation rate is selected from the range of about 3200 to 4000 RPM or to achieve about 880 to about 1375 g's within the separation chamber.
- 11. The method of claim 9, wherein the soft spin rotation rate is selected from the range of about 1000 to 2000 RPM or to achieve about 86 to 538 g's within the separation chamber.
- 12. The method of claim 9, further including prior to the hard spin operating, isolating the fill device and including after the hard spin operating, operating the centrifuge to spin the separation chamber at about the fill rotation rate and removing the fill device isolation, and further including after the line clearing pumping, isolating the fill device.
- 13. The method of claim 1, wherein the filling, the soft spin performing, the first withdrawing, the second withdrawing, the line clearing pumping, and the collecting are controlled automatically by a control system.
- 14. A separation and collection system for processing blood to collect platelet rich plasma (PRP), comprising:
means for inputting a volume of blood; means for containing the input volume of blood, the containing means being adapted for balanced spinning at rotation rates adequate to separate the blood into red blood cell (RBC), PRP, white blood cells, and platelet poor plasma (PPP) and the containing means including two ports for receiving the input volume and for withdrawing the RBC, the PRP, the white blood cells, and the PPP; means for selectively rotating the containing means at a plurality of processing rotation speeds; means for selectively withdrawing and collecting the RBC, the PPP, the white blood cells, and the PRP from the containing means; means for transferring the blood between the inputting means and the containing means and for transferring the RBC, the PPP, the white blood cells, and the PRP between the containing means and the withdrawing and collecting means; and means for defining a loop in the transferring means to enhance rotation and wear characteristics of the transferring means, the loop defining means including contact surfaces configured for reduced wear of portions of the transferring means abutting the contact surfaces.
- 15. The system of claim 14, further including means for controlling operations of the inputting means, the rotating means, and the withdrawing and collecting means and for controlling timing of the operations.
- 16. The system of claim 15, wherein control means includes an operations module communicatively linked to the inputting means, the rotating means, and the withdrawing and collecting means to monitor the controlled operations and includes a user interface for receiving a user-input collection volume defining a volume of the PRP to collect with the withdrawing and collecting means, and further wherein the operations module operates the withdrawing and collecting means to withdraw the user-input collection volume of the PRP.
- 17. The system of claim 14, wherein the transferring means includes flexible tubing connected to the inputting means, the containing means, and the withdrawing and collecting means and wherein the rotating means comprises a centrifuge and a drive assembly rotating the centrifuge about a rotation axis.
- 18. The system of claim 17, wherein transferring means further includes a tube clamp for joining two portions of the flexible tubing and wherein the loop defining means includes an arm assembly including a latch for mating with and supporting the tube clamp and an arm for positioning the latch a distance from the centrifuge, the latch being positioned such that the tube clamp is positioned on the rotation axis of the centrifuge.
- 19. The system of claim 17, wherein the centrifuge includes a top aperture with a center coinciding rotation axis of the centrifuge, a hollow drive core with an opening adjacent the top aperture, and a shield with a wall having a window providing access to the drive core, and wherein the loop defining means includes a skid plate positioned within the drive core and having a curved contact surface for contacting the flexible tubing during rotation of the rotating means.
- 20. The system of claim 19, wherein the loop defining means further includes a deflector positioned within the drive core opposite the skid plate and having a curved contact surface, the two curved contact surfaces of the skid plate and the diverter defining a curved elbow in a tube path through the drive core.
- 21. The system of claim 17, wherein the flexible tubing includes a surface treatment to reduce coefficient of friction between the flexible tubing and mating surfaces of the system.
- 22. The system of claim 17, wherein the skid plate includes a surface treatment to reduce coefficient of friction between the flexible tubing and mating surfaces of the system.
- 23. The system of claim 14, further including means for selectively isolating a portion of the inputting means and the withdrawing and collecting means.
- 24. The system of claim 14, further including means for detecting an interface in the containing means between the RBC and the PPP.
- 25. The system of claim 24, further including means for calibrating the detecting means during operation of the means for selectively withdrawing and collecting to withdraw the RBC, the calibrating means being adapted for determining a calibrated output signal from a sensor in the detecting means and the detecting means being operable for comparing the calibrated output signal to later received signals from the sensor.
- 26. The system of claim 14, further including a caddy mounted on an output rotation surface of the rotating means for supporting and positioning the containing means during operation of the rotating means, wherein the caddy includes a level detection assembly including a support for supporting a portion of the containing means and including means for directing light received from a source through the portion of the containing means and back toward the light source.
- 27. The system of claim 26, wherein the caddy includes a pair of saddles for receiving and at least partially retaining the containing means, a recessed surface about a portion of the periphery of the caddy sized to receive a portion of the transferring means, and an aperture between the saddles through which the transferring means is passed.
- 28. An apparatus for use within a blood separation and collection system holding a volume of blood during separation and collection processes, for providing a fill and collection lines with known lengths and volumes, and for forming a loop that can be rotated in a balanced manner without twisting, the apparatus comprising:
a separation chamber for containing the volume of blood configured for mounting on a support structure rotatable by a centrifuge, wherein the separation chamber includes two sections separated by a divider element with each chamber section including a cylindrical elongated portion adjacent the divider element, a collection portion with a side wall that slopes inward toward the central axis of the chamber section to define a reducing circular cross-section along the central axis, a cylindrical nipple attached to the collection portion, and a port providing an inlet and an outlet path for fluid to the chamber section; a tubing assembly including first and second tubing sections attached to the chamber section ports at a first end and a three-way tubing connector connecting second ends of the first and second tubing sections, wherein the first tubing assembly is shaped substantially as an arc with a radius substantially corresponding to a radius of a base of the support structure; a third tubing section attached to the three-way tubing connector having a length selected such that the third tubing section provides a fluid path for the blood from the three-way tubing connector through the centrifuge and the defined loop to a tube positioning arm of the separation and collection system; a fourth tubing section providing a fluid path for the blood to and from the tube positioning arm; and a tube clamp connecting the third and fourth tubing sections and including external contact surfaces for mating with a latch on the tube-positioning arm.
- 29. The apparatus of claim 28, further including:
a fifth tubing section extending from the fourth tubing section for use in transferring the blood from a fill syringe to the separation chamber and including a syringe connector on an end opposite the fourth tubing section; a sixth tubing section extending from the fourth tubing section for use in transferring portions of the blood from the separation chamber to a collection syringe and including a syringe connector on an end opposite the fourth tubing section; and a tubing connector connecting the fourth, the fifth, and the sixth tubing sections.
- 30. A compact, automated system for producing platelet rich plasma from a patient's blood by automatically removing the patient's blood from a first syringe and returning platelet rich plasma made from the patient's blood automatically into a second syringe.
- 31. A compact, automated system for producing platelet rich plasma and platelet poor plasma from a patient's blood, comprising:
automatically removing the patient's blood from a first syringe; returning platelet rich plasma made from the patient's blood automatically into a second syringe; and delivering platelet poor plasma made from the patient's blood into a third syringe.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application No. 60/388,877, filed Jun. 14, 2002, entitled “System for Producing Platelet Rich Plasma,” which is incorporated by reference herein in its entirety.
Provisional Applications (1)
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Number |
Date |
Country |
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60388877 |
Jun 2002 |
US |