IP Library Granted Patent US 10,960,023
Granted Patent B2
US 10,960,023 · App. 16/379,242 · Granted Mar 30, 2021

Spray dried human plasma

Inventors: Joseph A. DaCorta (Chapel Hill, NC); Keith Rosiello (Shrewsbury, MA)
Assignee: Entegrion, Inc.
A61K35/16A61K9/14A61K9/1682B01D1/18A61K9/16B01D1/20G01N33/49
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Quick Facts
Patent No.
US 10,960,023
App. No.
16/379,242
Granted
Mar 30, 2021
Kind
B2
Abstract

The technology relates to spray dried plasma and methods of making the same. The method includes providing plasma to a spray drying apparatus, spray drying the plasma, at the spray drying apparatus, to form physiologically active plasma powder, the spray drying apparatus configured utilizing one or more parameters, and storing the physiologically active plasma powder.

Claims (26)

1. A spray-drying apparatus, the apparatus comprising:

a pump device configured to transport plasma through a plasma line from a plasma storage device at a pump rate, the plasma having a protein concentration and a physiological activity;

a heated air stream device configured to deliver an air stream at an inlet temperature for drying the plasma;

an inert gas supply device configured to supply an inert gas at a flow rate;

a spray nozzle configured to spray the plasma into a spray chamber for drying utilizing the inert gas and the air stream, wherein the heated air stream device and the inert gas supply device each includes an inlet in fluid communication with the spray nozzle and each inlet being configured to deliver the air stream and, respectively, the inert gas, to the spray nozzle, and wherein the spray nozzle is also configured to spray the air stream and the inert gas into the spray chamber for drying the plasma; and

a particle collection device configured to collect the sprayed plasma via a vacuum formed by a vacuum pump at an aspiration setting, wherein the pump device, the heated air stream device, the inert gas supply device, the spray nozzle, the spray chamber, and the particle collection device being in fluid communication and utilizing one or more parameters depending on the protein concentration of the plasma and reconstituting the sprayed plasma to exhibit the physiological activity substantially equivalent to the plasma, wherein the inlet temperature is substantially between 100° to 114° C., the pump rate is substantially between 18 to 28%, the aspiration setting is substantially between 80% to 100%, the flow rate is substantially between 30 to 40 mm Hg, or any combination thereof.

2. The apparatus of claim 1 , wherein the pump rate is substantially 24%, the inlet temperature is substantially 107° C., the flow rate is substantially 35 mm Hg, the aspiration setting is substantially 100%, or any combination thereof.

3. The apparatus of claim 1 , wherein the inert gas comprises nitrogen, oxygen, filtered air, or any combination thereof.

4. The apparatus of claim 1 , further comprising an output optimization device in fluid communication with the particle collection device configured to modify the pump rate and/or the inlet temperature based on an outlet temperature at the particle collection device.

5. The apparatus of claim 4 , wherein the outlet temperature is substantially between 40° to 44° C.

6. A method for spray-drying plasma, the method comprising:

providing, from an inert gas supply to a spray nozzle, an inert gas at a flow rate;

providing, from a dehumidifier to the spray nozzle having an inlet and an outlet, a heated air stream having an inlet temperature at the inlet of the spray nozzle;

providing, from a pump device to the spray nozzle, plasma having a protein concentration and a physiological activity at a pump setting;

spraying, at the outlet of the spray nozzle, the inert gas, the heated air stream, and the plasma into a spray chamber to form a physiologically-active plasma powder, the heated air stream enabling transfer of moisture from the plasma to the heated air stream;

determining one or more parameters dependent on the protein concentration of the plasma and the sprayed physiologically-active plasma powder exhibiting the physiological activity substantially equivalent to the plasma, wherein the determining step comprises the steps of:

determining, at an outlet of the spray chamber, an outlet temperature of the physiologically-active plasma powder; and

modifying the flow rate and/or the inlet temperature based on the outlet temperature.

7. The method of claim 6 , further comprising collecting, at a particle collection chamber, the physiologically-active plasma powder utilizing a filter, a cyclone, or any combination thereof.

8. A spray-drying apparatus, the apparatus comprising:

a pump device configured to transport plasma through a plasma line from a plasma storage device at a pump rate, the plasma having a protein concentration and a physiological activity;

a heated air stream device configured to deliver an air stream at an inlet temperature for drying the plasma;

an inert gas supply device configured to supply an inert gas at a flow rate;

a spray nozzle configured to spray the plasma into a spray chamber for drying utilizing the inert gas and the air stream, wherein the heated air stream device and the inert gas supply device each includes an inlet in fluid communication with the spray nozzle and each inlet being configured to deliver the air stream and, respectively, the inert gas, to the spray nozzle, and wherein the spray nozzle is also configured to spray the air stream and the inert gas into the spray chamber for drying the plasma; and

a particle collection device configured to collect the sprayed plasma via a vacuum formed by a vacuum pump at an aspiration setting, wherein the pump device, the heated air stream device, the inert gas supply device, the spray nozzle, the spray chamber, and the particle collection device being in fluid communication and utilizing one or more parameters depending on the protein concentration and maintaining the plasma at a temperature to prevent denaturing of the proteins; and

an output optimization device in fluid communication with the particle collection device configured to modify the pump rate and/or the inlet temperature based on an outlet temperature at the particle collection device.

Assignments (5)
COURT ORDER Recorded Nov 23, 2025
From: ROSIELLO, KEITH; KROSS ENGINEERING, LLC
To: ENTEGRION, INC.
Reel/Frame 073078/0954 →
COURT ORDER Recorded Oct 28, 2025
From: ROSIELLO, KEITH; KROSS ENGINEERING LLC
To: ENTEGRION, INC.
Reel/Frame 073387/0813 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 14, 2025
From: ROSIELLO, KEITH
To: KROSS ENGINEERING LLC
Reel/Frame 072023/0171 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 14, 2025
From: DACORTA, JOSEPH A.
To: ENTEGRION, INC.
Reel/Frame 072023/0527 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 29, 2022
From: ENTEGRION, INC.
To: VELICO MEDICAL, INC.
Reel/Frame 061250/0440 →
Continuity (6)
Division 14988879 · Jan 6, 2016
Continuation 13743741 · Jan 17, 2013
Continuation 13556834 · Jul 24, 2012
Continuation 12884052 · Sep 16, 2010
Provisional Application 61243034 · Sep 16, 2009
Related Publication 20190298765A1 · Oct 3, 2019
Cited By (18)
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