IP Library › Granted Patent US 12,350,384
Granted Patent B2
US 12,350,384 · App. 17/835,694 · Granted Jul 8, 2025

Nanoparticles for treating prostate cancer

Inventors: Sheba M. J. MohanKumar (Athens, GA); Puliyur S. MohanKumar (Athens, GA); Yen-Jun Chuang (Athens, GA)
Assignee: UNIVERSITY OF GEORGIA RESEARCH FOUNDATION, INC.
A61K9/5123A61K47/34A61K47/56A61P35/00B82Y5/00
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Quick Facts
Patent No.
US 12,350,384
App. No.
17/835,694
Granted
Jul 8, 2025
Kind
B2
Abstract

Nanoparticles and formulations for treating prostate cancer in a subject are disclosed. The nanoparticles contain a cage, such as a zeolitic imidazolate framework (“ZIF”), a surface modifying agent, a targeting ligand, and an active agent. The surface modifying ligand is attached to the outer surface of the cage and the targeting ligand is exposed to the surrounding environment. The active agent is encapsulated in the cage. The targeting ligand binds to a reproductive hormone or a receptor of a reproductive hormone. The active agents can be a ribosome inactivating protein, an apoptosis inducer, a hormone, a receptor ligand, or a nucleic acid, or a chemotherapy drug or a combination thereof, that kill and/or reduce or prevent growth or proliferation of gonadotroph cells and/or tumor cells, regulate FSH and/or LH secretion, and/or interfere with androgen production. Uses for formulations incorporating the nanoparticles for treating cancer in a subject are also disclosed.

Claims (34)

1. A plurality of nanoparticles for treating or ameliorating one or more symptoms associated with a GnRH- or gonadotropin-related disease or disorder, wherein the nanoparticles comprise

a cage,

a surface modifying agent,

a targeting ligand, and

an active agent,

wherein the cage is a zeolitic imidazolate framework (“ZIF”),

wherein the surface modifying agent comprises a polymer backbone,

wherein the targeting ligand is a gonadotropin-releasing hormone (“GnRH”) agonist, a GnRH antagonist, a follicle stimulating hormone (“FSH”) receptor agonist, a FSH receptor antagonists, a luteinizing hormone (“LH”) receptor agonist, or a LH receptor antagonist, or a combination thereof,

wherein the surface modifying ligand is attached to the outer surface of the cage and wherein the targeting ligand is exposed to the surrounding environment, and

wherein the active agent is encapsulated in the cage.

2. The plurality of nanoparticles of claim 1 , wherein the ZIF comprises a metal ion selected from the group consisting of Zn + , Zn 2+ , Pd 2+ , Pd 4+ , Pt 2+ , Pt 4+ , Ni + , Ni 2+ , Ni 3+ , Mn 2+ , Mn 3+ , Mn 4+ , Mn 6+ , Mn 7+ , Co 2+ , Co 3+ , Cu 2+ , Cd 2+ , Fe 2+ , Fe 3+ , and Ti 4+ .

3. The plurality of nanoparticles of claim 1 , wherein the ZIF comprises imidazolate functionalized with amine, hydroxyl, thiol, aldehyde, or carboxyl, or a combination thereof.

4. The plurality of nanoparticles of claim 1 , wherein the ZIF is ZIF-2, ZIF-3, ZIF-4, ZIF-8, ZIF-10, ZIF-11, ZIF-12, ZIF-14, ZIF-20, ZIF-21, ZIF-60, ZIF-61, ZIF-62, ZIF-64, ZIF-65, ZIF-66, ZIF-67, ZIF-68, ZIF-69, ZIF-70, ZIF-71, ZIF-72, ZIF-73, ZIF-74, ZIF-75, ZIF-76, ZIF-77, ZIF-78, ZIF-81, ZIF-82, ZIF-90, ZIF-91, ZIF-92, ZIF-95, or ZIF-100.

5. The plurality of nanoparticles of claim 1 , wherein at least 20 wt % (weight of the surface modifying agent conjugated to the targeting ligand/total weight of the surface modifying agent attached to the cage), at least 25 wt %, at least 30 wt %, at least 35 wt %, at least 40 wt %, at least 45 wt %, at least 50 wt %, at least 55 wt %, at least 60 wt %, at least 65 wt %, at least 70 wt %, at least 75 wt %, at least 80 wt %, at least 85 wt %, at least 90 wt %, at least 95 wt %, in a range from 20 wt % to 100 wt %, from 30 wt % to 100 wt %, or from 40 wt % to 100 wt % of the surface modifying agent is conjugated to the targeting ligand.

6. The plurality of nanoparticles of claim 1 , wherein the end of the surface modifying agent that is attached to the cage comprises a chemical moiety containing one or more negative charges.

7. The plurality of nanoparticles of claim 6 , wherein the chemical moiety is folate, L-methylfolate, or glutamate, or a combination thereof.

8. The plurality of nanoparticles of claim 1 , wherein the polymer backbone is selected from the group consisting of polyalkylene glycol, polylactic acid, polyglycolic acid, poly (lactic-co-glycolic acid), polyanhydrides, poly (ortho) esters, polyurethanes, poly (butyric acid), poly (valeric acid), poly (lactide-coaprolactone), and polyethylenimine, and a copolymer thereof.

9. The plurality of nanoparticles of claim 1 , wherein the polymer backbone has a molecular weight in a range from about 1 kDa to about 10 kDa, from about 2 kDa to about 10 kDa, from about 3 kDa to about 10 kDa, from about 4 kDa to about 10 kDa, from about 1 kDa to about 9 kDa, from about 2 kDa to about 9 kDa, from about 3 kDa to about 9 kDa, from about 4 kDa to about 9 kDa, from about 1 kDa to about 8 kDa, from about 2 kDa to about 8 kDa, from about 3 kDa to about 8 kDa, from about 4 kDa to about 8 kDa, from about 1 kDa to about 7 kDa, from about 2 kDa to about 7 kDa, from about 3 kDa to about 7 kDa, from about 4 kDa to about 7 kDa, from about 1 kDa to about 6 kDa, from about 2 kDa to about 6 kDa, from about 3 kDa to about 6 kDa, or from about 4 kDa to about 6 kDa.

10. The plurality of nanoparticles of claim 1 , having an average diameter in a range from about 10 nm to about 100 nm, from about 10 nm to about 90 nm, from about 10 nm to about 80 nm, from about 20 nm to about 100 nm, from about 20 nm to about 90 nm, from about 20 nm to about 80 nm, from about 30 nm to about 100 nm, from about 30 nm to about 90 nm, or from about 30 nm to about 80 nm.

11. The plurality of nanoparticles of claim 1 , wherein the surface density of the surface modifying agent (“SMA”) on the surface of the nanoparticle is at least 1 SMA/nm 2 , at least 5 SMA/nm 2 , at least 7 SMA/nm 2 , at least 10 SMA/nm 2 , at least 15 SMA/nm 2 , at least 20 SMA/nm 2 , at least 25 SMA/nm 2 , at least 30 SMA/nm 2 , at least 35 SMA/nm 2 , at least 40 SMA/nm 2 , at least 45 SMA/nm 2 , or at least 50 SMA/nm 2 .

12. The plurality of nanoparticles of claim 1 , wherein the active agent is a ribosome inactivating protein, an apoptosis inducer, a hormone, a receptor ligand, a nucleic acid, or a chemotheraphy drug, or a combination thereof.

13. A method for treating or ameliorating one or more symptoms associated with a GnRH- or gonadotropin-related disease or disorder in a subject in need thereof comprising

(i) administering to the subject a pharmaceutical formulation,

wherein the pharmaceutical formulation comprises the plurality of nanoparticles of claim 1 and a pharmaceutically acceptable carrier and/or excipient, and

wherein step (i) occurs one or more times.

14. The plurality of nanoparticles of claim 1 , wherein the polymer backbone of the surface modifying agent is polyethylene glycol.

15. The plurality of nanoparticles of claim 1 , wherein the active agent is a ribosome inactivating protein.

16. The plurality of nanoparticles of claim 1 , wherein the active agent is saporin, gelonin, or a pokeweed antiviral protein, or a combination thereof.

17. The method of claim 13 , wherein the GnRH- or gonadotropin-related disease or disorder is a GnRH- or gonadotropin-related cancer, a GnRH- or gonadotropin-related benign tumor, or endometriosis.

18. The method of claim 13 , wherein following step (i) or the final administration step if step (i) is repeated, an effective amount of the nanoparticles to:

(a) reduce the level of a biomarker associated with the GnRH- or gonadotropin-related disease or disorder in a biological sample of the subject compared to the level of the biomarker in the biological sample of the subject before treatment; and/or

(b) reduce the mean diameter of a tumor associated with the GnRH- or gonadotropin-related disease or disorder in the subject compared to the mean diameter of the tumor in the subject before treatment,

is administered to the subject.

19. The plurality of nanoparticles of claim 1 , wherein the active agent is camptothecin, ricin, abrin, or shiga, or a combination thereof.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 1, 2022
From: MOHANKUMAR, PULIYUR S.; CHUANG, YEN-JUN; MOHANKUMAR, SHEBA M. J.
To: UNIVERSITY OF GEORGIA RESEARCH FOUNDATION, INC.
Reel/Frame 060419/0965 →
Continuity (2)
Provisional Application 63208401 · Jun 8, 2021
Related Publication 20220387335A1 · Dec 8, 2022
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