IP Library Granted Patent US 11,708,388
Granted Patent B2
US 11,708,388 · App. 16/628,838 · Granted Jul 25, 2023

Uses of a saponin and method for its isolation

Inventors: Alexander Weng (Berlin, DE); Matthias F. Melzig (Berlin, DE); Simko Sama (Berlin, DE)
Assignee: Freie Universität Berlin
C07H15/256A61K47/26C12N15/87
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Quick Facts
Patent No.
US 11,708,388
App. No.
16/628,838
Granted
Jul 25, 2023
Kind
B2
Abstract

The present invention relates to the novel use of saponins having acetyl residues on one of their sugar residues. These saponins are able to enhance the transfection efficiency to a surprisingly much higher extent than already known saponins and even than Lipofectamin.

Claims (31)

1. A method for an in vitro delivery of a nucleic acid, a lipid, a peptide and/or a protein to a cell, the method comprising the step of incubating the cell with the nucleic acid, the lipid, the peptide and/or the protein with a saponin according to formula (I):

wherein

R 1 is a xylose residue or an arabinose residue bonded with its C1 atom to the corresponding xylose residue of formula (I); and

R 2 is independent from other R 2 residues in the same molecule H or an acetyl residue, with the proviso that at least two acetyl residues are present in the saponin.

2. The method according to claim 1 , wherein the cell is a eukaryotic cell.

3. A transfection composition, comprising at least one transfection reagent chosen from the group consisting of liposomal-based transfection reagents and polymer-based transfection reagents as well as a saponin according to formula (I):

wherein

R 1 is a xylose residue or an arabinose residue bonded with its C1 atom to the corresponding xylose residue of formula (I); and

R 2 is independent from other R 2 residues in the same molecule H or an acetyl residue, with the proviso that at least two acetyl residues are present in the saponin.

4. The transfection composition according to claim 3 , wherein R 1 is a xylose residue and/or the saponin carries exactly two acetyl groups.

5. The transfection composition according to claim 4 , wherein the acetyl groups are bonded to the oxygen atoms in C3 and C4 position of the corresponding quinovose residue.

6. A method for an in vitro transfection, comprising the step of incubating a cell with a nucleic acid in the presence of a saponin according to formula (I):

wherein

R 1 is a xylose residue or an arabinose residue bonded with its C1 atom to the corresponding xylose residue of formula (I); and

R 2 is independent from other R 2 residues in the same molecule H or an acetyl residue, with the proviso that at least two acetyl residues are present in the saponin.

7. The method according to claim 6 , wherein the cell is a eukaryotic cell.

8. The method according to claim 6 , wherein the nucleic acid forms part of a nanoparticle.

9. The method according to claim 6 , wherein the saponin is used in a concentration lying in a range of 1 ng/mL to 25 ng/mL.

10. The method according to claim 6 , wherein the saponin is used in combination with at least one transfection reagent chosen from the group consisting of liposomal-based transfection reagents and polymer-based transfection reagents.

11. A method for isolating a saponin according to formula (I):

wherein

R 1 is a xylose residue or an arabinose residue bonded with its C1 atom to the corresponding xylose residue of formula (I); and

R 2 is independent from other R 2 residues in the same molecule H or an acetyl residue, with the proviso that at least two acetyl residues are present in the saponin

from Gypsophila elegans M. Bieb, comprising the following steps:

cutting roots of Gypsophila elegans M. Bieb,

freeze-drying and grinding the cut roots to obtain a root powder,

extracting the root powder with a high-concentrated organic solvent to obtain a root extract,

removing the high-concentrated organic solvent from the root extract to obtain a dry extract,

dissolving the dry extract in a low-concentrated organic solvent to obtain an extract solution,

subjecting the extract solution to at least one chromatographic separation step to obtain a purified saponin solution, and

removing any solvent from the purified saponin solution to obtain a purified saponin powder.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 4, 2020
From: WENG, ALEXANDER; SAMA, SIMKO; MELZIG, MATTHIAS F.
To: FREIE UNIVERSITÄT BERLIN
Reel/Frame 051706/0427 →
Priority Claims (2)
EP 17180730 · Jul 11, 2017 · regional
EP 18152304 · Jan 18, 2018 · regional
Continuity (1)
Related Publication 20200131219A1 · Apr 30, 2020