IP Library › Granted Patent US 10,094,031
Granted Patent B2
US 10,094,031 · App. 14/770,768 · Granted Oct 9, 2018

Method for manufacturing reduced glutathione

Inventors: Kenta Fukumoto (Tokyo, JP); Miyuki Fukuda (Tokyo, JP); Mitsutaka Kino (Tokyo, JP)
Assignee: Kyowa Hakko Bio Co., Ltd.
C25B3/04C07K5/0215C25B9/08
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,094,031
App. No.
14/770,768
Granted
Oct 9, 2018
Kind
B2
Abstract

A method of producing reduced glutathione by electrolytic reduction of oxidized glutathione using a cathode cell and an anode cell separated from each other by a separating membrane, including using a cathode having a metal cathode surface, and, as a cathode solution, an aqueous oxidized glutathione solution having a pH adjusted to higher than 3.0 and 5.0 or below by adding a base, which is added with the same metal as the metal of the cathode surface, a metal salt thereof, or a metal oxide thereof.

Claims (82)

1. A method of producing reduced glutathione comprising electrolytically reducing oxidized glutathione in a cathode solution to produce reduced glutathione in a system comprising

(a) a cathode cell comprising a cathode having a metal cathode surface, wherein the metal on the cathode surface is a metal showing high hydrogen overvoltage,

(b) an anode cell comprising an anode,

(c) a membrane separating the cathode cell and the anode cell, and

(d) the cathode solution that is an aqueous oxidized glutathione solution comprising, dissolved therein, a metal-containing compound, a metal salt, or a metal oxide,

wherein the metal of the metal-containing compound, the metal salt, or the metal oxide is the same metal as the metal of the cathode surface, and

wherein the aqueous oxidized glutathione solution has a pH adjusted to be higher than 3.0 and up to 5.0 by adding a base thereto.

2. The production method according to claim 1 , wherein the base is hydroxide, carbonate or hydrogen carbonate of sodium or potassium.

3. The production method according to claim 2 , wherein the cathode solution comprises oxidized glutathione at a concentration of not less than 20 g/L.

4. The production method according to claim 3 , wherein the cathode solution comprises the metal-containing compound, metal salt, or metal oxide at a concentration of 0.5-50 mmol/L.

5. The production method according to claim 4 , wherein the electrolytic reduction is performed at an electric current density of 0.1-30 A/dm 2 .

6. The production method according to claim 4 , wherein the metal showing high hydrogen overvoltage is zinc, lead, copper, nickel, or silver.

7. The production method according to claim 1 , wherein the cathode solution comprises oxidized glutathione at a concentration of not less than 20 g/L.

8. The production method according to claim 1 , wherein the cathode solution comprises the metal-containing compound, metal salt, or metal oxide at a concentration of 0.5-50 mmol/L.

9. The production method according to claim 1 , wherein the electrolytic reduction is performed at an electric current density of 0.1-30 A/dm 2 .

10. The production method according to claim 1 , wherein the metal showing high hydrogen overvoltage is zinc, lead, copper, nickel, or silver.

11. A method of producing a reduced glutathione crystal, comprising

electrolytically reducing oxidized glutathione in a cathode solution to produce reduced glutathione in a system comprising

(a) a cathode cell comprising a cathode having a metal cathode surface, wherein the metal on the cathode surface is a metal showing high hydrogen overvoltage,

(b) an anode cell comprising an anode,

(c) a membrane separating the cathode cell and the anode cell, and

(d) the cathode solution that is an aqueous oxidized glutathione solution comprising, dissolved therein, a metal-containing compound, a metal salt, or a metal oxide,

wherein the metal of the metal-containing compound, the metal salt, or the metal oxide is the same metal as the metal of the cathode surface, and

wherein the aqueous oxidized glutathione solution has a pH adjusted to be higher than 3.0 and up to 5.0 by adding a base thereto,

then subjecting the cathode solution comprising reduced glutathione to 1) adjustment of pH, or 2) removal of cation by passing the cathode solution through an ion exchange column, and

then crystallizing the reduced glutathione from the cathode solution to provide a reduced glutathione crystal.

12. A method of producing a reduced glutathione crystal, comprising

electrolytically reducing oxidized glutathione in a cathode solution to produce reduced glutathione in a system comprising

(a) a cathode cell comprising a cathode having a metal cathode surface, wherein the metal on the cathode surface is a metal showing high hydrogen overvoltage,

(b) an anode cell comprising an anode,

(c) a membrane separating the cathode cell and the anode cell, and

(d) the cathode solution that is an aqueous oxidized glutathione solution comprising, dissolved therein, a metal-containing compound, a metal salt, or a metal oxide,

wherein the metal of the metal-containing compound, the metal salt, or the metal oxide is the same metal as the metal of the cathode surface, and

wherein the aqueous oxidized glutathione solution has a pH adjusted to be higher than 3.0 and up to 5.0 by adding a base thereto selected from sodium or potassium hydroxide, sodium or potassium carbonate, and sodium or potassium hydrogen carbonate,

then subjecting the cathode solution comprising reduced glutathione to 1) adjustment of pH, or 2) removal of cation by passing the cathode solution through an ion exchange column, and

then crystallizing the reduced glutathione from the cathode solution to provide a reduced glutathione crystal.

13. A method of producing a reduced glutathione crystal, comprising

electrolytically reducing oxidized glutathione in a cathode solution to produce reduced glutathione in a system comprising

(a) a cathode cell comprising a cathode having a metal cathode surface, wherein the metal on the cathode surface is a metal showing high hydrogen overvoltage,

(b) an anode cell comprising an anode,

(c) a membrane separating the cathode cell and the anode cell, and

(d) the cathode solution that is an aqueous oxidized glutathione solution comprising, dissolved therein, a metal-containing compound, a metal salt, or a metal oxide,

wherein the cathode solution comprises oxidized glutathione at a concentration of not less than 20 g/L,

wherein the metal of the metal-containing compound, the metal salt, or the metal oxide is the same metal as the metal of the cathode surface, and

wherein the aqueous oxidized glutathione solution has a pH adjusted to be higher than 3.0 and up to 5.0 by adding a base thereto,

then subjecting the cathode solution comprising reduced glutathione to 1) adjustment of pH, or 2) removal of cation by passing the cathode solution through an ion exchange column, and

then crystallizing the reduced glutathione from the cathode solution to provide a reduced glutathione crystal.

14. A method of producing a reduced glutathione crystal, comprising

electrolytically reducing oxidized glutathione in a cathode solution to produce reduced glutathione in a system comprising

(a) a cathode cell comprising a cathode having a metal cathode surface, wherein the metal on the cathode surface is a metal showing high hydrogen overvoltage,

(b) an anode cell comprising an anode,

(c) a membrane separating the cathode cell and the anode cell, and

(d) the cathode solution that is an aqueous oxidized glutathione solution comprising, dissolved therein, at a concentration of 0.5-50 mmol/L, one of a metal-containing compound, a metal salt, or a metal oxide,

wherein the metal of the metal-containing compound, the metal salt, or the metal oxide is the same metal as the metal of the cathode surface, and

wherein the aqueous oxidized glutathione solution has a pH adjusted to be higher than 3.0 and up to 5.0 by adding a base thereto,

then subjecting the cathode solution comprising reduced glutathione to 1) adjustment of pH, or 2) removal of cation by passing the cathode solution through an ion exchange column, and

then crystallizing the reduced glutathione from the cathode solution to provide a reduced glutathione crystal.

15. A method of producing a reduced glutathione crystal, comprising

electrolytically reducing oxidized glutathione in a cathode solution to produce reduced glutathione in a system comprising

(a) a cathode cell comprising a cathode having a metal cathode surface, wherein the metal on the cathode surface is a metal showing high hydrogen overvoltage,

(b) an anode cell comprising an anode,

(c) a membrane separating the cathode cell and the anode cell, and

(d) the cathode solution that is an aqueous oxidized glutathione solution comprising, dissolved therein, a metal-containing compound, a metal salt, or a metal oxide,

wherein the metal of the metal-containing compound, the metal salt, or the metal oxide is the same metal as the metal of the cathode surface,

wherein the aqueous oxidized glutathione solution has a pH adjusted to be higher than 3.0 and up to 5.0 by adding a base thereto, and

wherein the electrolytic reduction is performed at an electric current density of 0.1-30 A/dm 2 ,

then subjecting the cathode solution comprising reduced glutathione to 1) adjustment of pH, or 2) removal of cation by passing the cathode solution through an ion exchange column, and

then crystallizing the reduced glutathione from the cathode solution to provide a reduced glutathione crystal.

16. A method of producing a reduced glutathione crystal, comprising

electrolytically reducing oxidized glutathione in a cathode solution to produce reduced glutathione in a system comprising

(a) a cathode cell comprising a cathode having a metal cathode surface, wherein the metal on the cathode surface is a metal showing high hydrogen overvoltage,

(b) an anode cell comprising an anode,

(c) a membrane separating the cathode cell and the anode cell, and

(d) the cathode solution that is an aqueous oxidized glutathione solution comprising, dissolved therein, a metal-containing compound, a metal salt, or a metal oxide,

wherein the cathode solution comprises oxidized glutathione at a concentration of not less than 20 g/L,

wherein the cathode solution comprises the metal-containing compound, metal salt, or metal oxide at a concentration of 0.5-50 mmol/L,

wherein the metal of the metal-containing compound, the metal salt, or the metal oxide is the same metal as the metal of the cathode surface,

wherein the aqueous oxidized glutathione solution has a pH adjusted to be higher than 3.0 and up to 5.0 by adding a base thereto,

wherein the base is hydroxide, carbonate or hydrogen carbonate of sodium or potassium,

wherein the electrolytic reduction is performed at an electric current density of 0.1-30 A/dm 2 ,

then subjecting the cathode solution comprising reduced glutathione to 1) adjustment of pH, or 2) removal of cation by passing the cathode solution through an ion exchange column, and

then crystallizing the reduced glutathione from the cathode solution to provide a reduced glutathione crystal.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 26, 2016
From: FUKUMOTO, KENTA; FUKUDA, MIYUKI; KINO, MITSUTAKA
To: KYOWA HAKKO BIO CO., LTD.
Reel/Frame 037842/0392 →
Priority Claims (1)
JP 2013-038890 · Feb 28, 2013 · national
Continuity (1)
Related Publication 20160002797A1 · Jan 7, 2016
Cited By (1)
US 12,465,584