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PMID: 17055572 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S.

Formulation of functionalized PLGA-PEG nanoparticles for in vivo targeted drug delivery.

Biomaterials ·Vol. 28 ·No. 5 ·2007-02-00 ·Pages 869-76

Cheng J, Teply BA, Sherifi I, Sung J, Luther G, Gu FX, Levy-Nissenbaum E, Radovic-Moreno AF, Langer R, Farokhzad OC

Abstract

Nanoparticle (NP) size has been shown to significantly affect the biodistribution of targeted and non-targeted NPs in an organ specific manner. Herein we have developed NPs from carboxy-terminated poly(d,L-lactide-co-glycolide)-block-poly(ethylene glycol) (PLGA-b-PEG-COOH) polymer and studied the effects of altering the following formulation parameters on the size of NPs: (1) polymer concentration, (2) drug loading, (3) water miscibility of solvent, and (4) the ratio of water to solvent. We found that NP mean volumetric size correlates linearly with polymer concentration for NPs between 70 and 250 nm in diameter (linear coefficient=0.99 for NPs formulated with solvents studied). NPs with desirable size, drug loading, and polydispersity were conjugated to the A10 RNA aptamer (Apt) that binds to the prostate specific membrane antigen (PSMA), and NP and NP-Apt biodistribution was evaluated in a LNCaP (PSMA+) xenograft mouse model of prostate cancer. The surface functionalization of NPs with the A10 PSMA Apt significantly enhanced delivery of NPs to tumors vs. equivalent NPs lacking the A10 PSMA Apt (a 3.77-fold increase at 24h; NP-Apt 0.83%+/-0.21% vs. NP 0.22%+/-0.07% of injected dose per gram of tissue; mean+/-SD, n=4, p=0.002). The ability to control NP size together with targeted delivery may result in favorable biodistribution and development of clinically relevant targeted therapies.

MeSH Terms
Animals Antineoplastic Agents/administration & dosage Drug Delivery Systems Humans Lactic Acid/chemistry Male Mice Models, Chemical Nanoparticles/chemistry Nanotechnology/methods Neoplasm Transplantation Polyethylene Glycols/chemistry Polyglycolic Acid/chemistry Polylactic Acid-Polyglycolic Acid Copolymer Polymers/chemistry Prostatic Neoplasms/drug therapy Tissue Distribution
Chemicals
Antineoplastic Agents Polymers Polylactic Acid-Polyglycolic Acid Copolymer Polyglycolic Acid Lactic Acid Polyethylene Glycols
Authors & Affiliations
10 authors, click to expand affiliations / ORCID
Cheng Jianjun
Department of Chemical Engineering, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, MA 02139, USA.
Teply Benjamin A
Sherifi Ines
Sung Josephine
Luther Gaurav
Gu Frank X
Levy-Nissenbaum Etgar
Radovic-Moreno Aleksandar F
Langer Robert
Farokhzad Omid C
References (22)
22 references, click to expand
  1. Freeze-drying and lyopreservation of diblock and triblock poly(lactic acid)-poly(ethylene oxide) (PLA-PEO) copolymer nanoparticles.
    Pharm Dev Technol. 2000;5(4):473-83 PMID: 11109247
  2. Polylactide-poly(ethylene glycol) micellar-like particles as potential drug carriers: production, colloidal properties and biological performance.
    J Drug Target. 2001;9(5):361-78 PMID: 11770706
  3. Identification and characterization of nuclease-stabilized RNA molecules that bind human prostate cancer cells via the prostate-specific membrane antigen.
    Cancer Res. 2002 Jul 15;62(14):4029-33 PMID: 12124337
  4. Nanoparticles in cancer therapy and diagnosis.
    Adv Drug Deliv Rev. 2002 Sep 13;54(5):631-51 PMID: 12204596
  5. Paclitaxel-loaded PLGA nanoparticles: preparation, physicochemical characterization and in vitro anti-tumoral activity.
    J Control Release. 2002 Oct 4;83(2):273-286 PMID: 12363453
  6. Preparation and characterization of sterile sub-200 nm meso-tetra(4-hydroxylphenyl)porphyrin-loaded nanoparticles for photodynamic therapy.
    Eur J Pharm Biopharm. 2003 Jan;55(1):115-24 PMID: 12551712
  7. Small-scale systems for in vivo drug delivery.
    Nat Biotechnol. 2003 Oct;21(10):1184-91 PMID: 14520404
  8. Methoxy poly(ethylene glycol)-poly(lactide) (MPEG-PLA) nanoparticles for controlled delivery of anticancer drugs.
    Biomaterials. 2004 Jun;25(14):2843-9 PMID: 14962562
  9. Drug delivery systems: entering the mainstream.
    Science. 2004 Mar 19;303(5665):1818-22 PMID: 15031496
  10. Nanoparticle and targeted systems for cancer therapy.
    Adv Drug Deliv Rev. 2004 Sep 22;56(11):1649-59 PMID: 15350294
  11. Physicochemical parameters associated with nanoparticle formation in the salting-out, emulsification-diffusion, and nanoprecipitation methods.
    Pharm Res. 2004 Aug;21(8):1428-39 PMID: 15359578
  12. Non-phagocytic uptake of intravenously injected microspheres in rat spleen: influence of particle size and hydrophilic coating.
    Biochem Biophys Res Commun. 1991 Jun 14;177(2):861-6 PMID: 2049107
  13. The polyoxyethylene/polyoxypropylene block co-polymer poloxamer-407 selectively redirects intravenously injected microspheres to sinusoidal endothelial cells of rabbit bone marrow.
    FEBS Lett. 1992 Jun 22;305(1):62-6 PMID: 1633861
  14. Effect of liposome size on the circulation time and intraorgan distribution of amphipathic poly(ethylene glycol)-containing liposomes.
    Biochim Biophys Acta. 1994 Feb 23;1190(1):99-107 PMID: 8110825
  15. Innovations in avoiding particle clearance from blood by Kupffer cells: cause for reflection.
    Crit Rev Ther Drug Carrier Syst. 1994;11(1):31-59 PMID: 7704918
  16. Regulation of smooth muscle cell proliferation using paclitaxel-loaded poly(ethylene oxide)-poly(lactide/glycolide) nanospheres.
    J Biomed Mater Res. 1998 Nov;42(2):331-8 PMID: 9773830
  17. Nanoparticle-aptamer bioconjugates: a new approach for targeting prostate cancer cells.
    Cancer Res. 2004 Nov 1;64(21):7668-72 PMID: 15520166
  18. Development of a nanoprecipitation method intended for the entrapment of hydrophilic drugs into nanoparticles.
    Eur J Pharm Sci. 2005 Jan;24(1):67-75 PMID: 15626579
  19. Poly(d,l-lactide-co-glycolide)/montmorillonite nanoparticles for oral delivery of anticancer drugs.
    Biomaterials. 2005 Oct;26(30):6068-76 PMID: 15894372
  20. The changing face of prostate cancer.
    J Clin Oncol. 2005 Nov 10;23(32):8146-51 PMID: 16278465
  21. Pegylated poly(lactide) and poly(lactide-co-glycolide) nanoparticles: preparation, properties and possible applications in drug delivery.
    Curr Drug Deliv. 2004 Oct;1(4):321-33 PMID: 16305394
  22. Targeted nanoparticle-aptamer bioconjugates for cancer chemotherapy in vivo.
    Proc Natl Acad Sci U S A. 2006 Apr 18;103(16):6315-20 PMID: 16606824
Article Info
Journal
Biomaterials
Abbr.
Biomaterials
ISSN
0142-9612
Published
2007-02-00
Epub
2006-00-20
Pages
869-76
Language
English
Region
Netherlands
NLM ID
8100316
PMCID
PMC2925222
Subset
IM
Grants
NCI NIH HHS · U54 CA119349-02 · United States
NCI NIH HHS · CA 119349 · United States
NIBIB NIH HHS · K08 EB003647-01A1 · United States
NIBIB NIH HHS · K08 EB003647 · United States
NIBIB NIH HHS · K08 EB003647-02 · United States
NIBIB NIH HHS · EB 003647 · United States
NCI NIH HHS · U54 CA119349 · United States
NCI NIH HHS · U54 CA119349-01 · United States
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