Person: Farokhzad, Omid
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Publication HER-2-Targeted Nanoparticle-Affibody Bioconjugates for Cancer Therapy
(Wiley-Blackwell, 2008) Alexis, Frank; Basto, Pamela; Levy-Nissenbaum, Etgar; Radovic-Moreno, Aleksandar F.; Zhang, Liangfang; Pridgen, Eric; Wang, Andrew Z.; Marein, Shawn L.; Westerhof, Katrina; Molnar, Linda K.; Farokhzad, OmidAffibodies are a class of polypeptide ligands that are potential candidates for cell- or tissue-specific targeting of drug-encapsulated controlled release polymeric nanoparticles (NPs). Here we report the development of drug delivery vehicles comprised of polymeric NPs that are surface modified with Affibody ligands that bind to the extracellular domain of the trans-membrane human epidermal growth factor receptor 2 (HER-2) for targeted delivery to cells which over express the HER-2 antigen. NPs lacking the anti-HER-2 Affibody did not show significant uptake by these cells. Using paclitaxel encapsulated NP-Affibody (1 wt% drug loading), we demonstrated increased cytotoxicity of these bioconjugates in SK-BR-3 and SKOV-3 cell lines. These targeted, drug encapsulated NPAffibody bioconjugates may be efficacious in treating HER-2 expressing carcinoma.
Publication The use of charge-coupled polymeric microparticles and micromagnets for modulating the bioavailability of orally delivered macromolecules
(Elsevier BV, 2008) Teply, Benjamin A.; Tong, Rong; Jeong, Seok Y.; Luther, Gaurav; Sherifi, Ines; Yim, Christopher H.; Khademhosseini, Ali; Farokhzad, Omid; Langer, Robert; Cheng, JianjunProtein drugs have low bioavailability after oral administration, which is due in part to fast transit of the drugs or drug delivery vehicles through the gastrointestinal tract. Increasing the time that the drugs spend in the intestine after dosing would allow for greater absorption and increased bioavailability. We developed a formulation strategy that can be used to prolong intestinal retention of drug delivery vehicles without substantial alterations to current polymeric encapsulation strategies. A model drug, insulin, was encapsulated in negatively-charged poly(lactic-co-glycolic acid) (PLGA) microparticles, and the microparticles were subsequently mixed with positively-charged micromagnets, whose size will prevent them from being absorbed. Stable complexes formed through electrostatic interaction. The complexes were effectively immobilized in vitro in a model of the mouse small intestine by application of an external magnetic field. Mice that were gavaged with radio-labeled complexes and fitted with a magnetic belt retained 32.5% of the 125I-insulin in the small intestine compared with 5.4% for the control group 6 hours after administration (p=0.005). Furthermore, mice similarly gavaged with complexes encapsulating insulin (120 Units/kg) exhibited long-term glucose reduction in the groups with magnetic belts. The corresponding bioavailability of insulin was 5.11% compared with 0.87% for the control group (p=0.007).
Publication Biofunctionalized targeted nanoparticles for therapeutic applications
(Informa Healthcare, 2008) Wang, Andrew Z; Gu, Frank; Zhang, Liangfang; Chan, Juliana M; Radovic-Moreno, Aleksander; Shaikh, Mariam R; Farokhzad, OmidBackground: The development of nanoparticles for the delivery of therapeutic agents has introduced new opportunities for improvement in medical treatment. Recent efforts have focused on developing targeted nanoparticles for therapeutic delivery by functionalizing nanoparticle surfaces with targeting molecules, such as antibodies, peptides, small molecules and oligonucleotides.
Objectives: This paper will review the state of targeted nanoparticles development.
Methods: We will discuss nanoparticle platforms for therapeutic delivery, targeting molecules and the biofunctionalized targeted nanoparticles currently in development.
Results/Conclusions: Biofunctionalized targeted nanoparticles have demonstrated exciting data in preclinical studies. With continued improvements, they may fulfill their potential as therapeutics carriers that can truly treat target tissue without affecting normal cells.
Publication Formulation/Preparation of Functionalized Nanoparticles for In Vivo Targeted Drug Delivery
(Springer Science + Business Media, 2009) Gu, Frank; Langer, Robert; Farokhzad, OmidTargeted cancer therapy allows the delivery of therapeutic agents to cancer cells without incurring undesirable side effects on the neighboring healthy tissues. Over the past decade, there has been an increasing interest in the development of advanced cancer therapeutics using targeted nanoparticles. Here we describe the preparation of drug-encapsulated nanoparticles formulated with biocompatible and biodegradable poly(D,L-lactic-co-glycolic acid)-block-poly(ethylene glycol) (PLGA-b-PEG) copolymer and surface functionalized with the A10 2-fluoropyrimidine ribonucleic acid aptamers that recognize the extracellular domain of prostate-specific membrane antigen (PSMA), a well-characterized antigen expressed on the surface of prostate cancer cells. We show that the self-assembled nanoparticles can selectively bind to PSMA-targeted prostate cancer cells in vitro and in vivo. This formulation method may contribute to the development of highly selective and effective cancer therapeutic and diagnostic devices.
Publication Drug delivery systems in urology—getting “smarter”
(Elsevier BV, 2006) Farokhzad, Omid; Dimitrakov, Jordan D.; Karp, Jeffrey; Khademhosseini, Ali; Freeman, Michael R.; Langer, RobertUrology holds the most enviable position in the medical firmament. Unique among specialties in bringing the surgeon in contact with humans throughout the spectrum of human life—from newborn to geriatric patients—urologists need to be adept at both medical and surgical therapies alike. In this context, drug delivery in urology has had a long, and sometimes far from illustrious, history. Traditionally, many genitourinary conditions have been treated with medications administered orally, which requires larger doses, with the concomitant side effects.
Publication CD43 gene expression is mediated by a nuclear factor which binds pyrimidine-rich single-stranded DNA
(Oxford University Press (OUP), 2000) Farokhzad, OmidCD43 is a leukocyte-specific surface molecule which plays an important role both in adhesion and signal transduction. We have identified a site spanning nucleotides +18 to +39 within the human CD43 gene promoter which in vitro is hypersensitive to cleavage by nuclease S1. Repeats of this region are sufficient to activate expression of a heterologous promoter in CD43-positive cell lines. Two nuclear factors, PyRo1 and PyRo2, interact with the hypersensitive site. PyRo1 is a single-stranded DNA-binding protein which binds the pyrimidine-rich sense strand. Mutation analysis demonstrates that the motif TCCCCT is critical for PyRo1 interaction. Replacement of this motif with the sequence CATATA abolishes PyRo1 binding and reduces expression of the CD43 promoter by 35% in Jurkat T lymphocytic cells and by 52% in the pre-erythroid/pre-megakaryocytic cell line K562. However, this same replacement failed to affect expression in U937 monocytic cells or in CEM T lymphocytic cells. PyRo1, therefore, exhibits cell-specific differences in its functional activity. Further analysis demonstrated that PyRo1 not only interacts with the CD43 gene promoter but also motifs present within the promoters of the CD11a, CD11b, CD11c and CD11d genes. These genes encode the α subunits of the β2 integrin family of leukocyte adhesion receptors. Deletion of the PyRo1 binding site within the CD11c gene reduced promoter activity in T lymphocytic cells by 47%. However, consistent with our analysis of the CD43 gene, the effect of this same deletion within U937 monocytic cells was less severe. That PyRo1 binds preferentially to single-stranded DNA and sequences within the CD43 and CD11 gene promoters suggests that expression of these genes is influenced by DNA secondary structure.
Publication Superparamagnetic Iron Oxide Nanoparticle-Aptamer Bioconjugates for Combined Prostate Cancer Imaging and Therapy
(Wiley-Blackwell, 2008) Wang, Andrew Z.; Bagalkot, Vaishali; Vasilliou, Christophoros C.; Gu, Frank; Alexis, Frank; Zhang, Liangfang; Shaikh, Mariam; Yuet, Kai; Cima, Michael J.; Langer, Robert; Kantoff, Philip; Bander, Neil H.; Jon, Sangyong; Farokhzad, OmidPublication Immunocompatibility properties of lipid–polymer hybrid nanoparticles with heterogeneous surface functional groups
(Elsevier BV, 2009) Salvador-Morales, Carolina; Zhang, Liangfang; Langer, Robert; Farokhzad, OmidHere we report the immunological characterization of lipid-polymer hybrid nanoparticles (NPs) and propose a method to control the levels of complement activation induced by these NPs. This method consists of the highly specific modification of the NP surface with methoxyl, carboxyl, and amine groups. Hybrid NPs with methoxyl surface groups induced the lowest complement activation, whereas the NPs with amine surface groups induced the highest activation. All possible combinations among carboxyl, amine, and methoxyl groups also activated the complement system to a certain extent. All types of NPs activated the complement system primarily via the alternative pathway rather than the lectin pathway The classical pathway was activated to a very small extent by the NPs with carboxyl and amine surface groups. Human serum and plasma protein binding studies showed that these NPs had different protein binding patterns. Studies of both complement activation and coagulation activation suggested that NPs with methoxyl surface groups might be an ideal candidate for drug delivery applications, since they are not likely to cause any immunological adverse reaction in the human body.
Publication Formulation of functionalized PLGA–PEG nanoparticles for in vivo targeted drug delivery
(Elsevier BV, 2007) Cheng, Jianjun; Teply, Benjamin; Sherifi, Ines; Sung, Josephine; Luther, Gaurav; Gu, Frank; Levy-Nissenbaum, Etgar; Rodovic-Moreno, Aleksandar; Langer, Robert; Farokhzad, OmidNanoparticle (NP) size has been shown to significantly effect 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, including: 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 PCa. The surface functionalization of NPs with the A10 PSMA aptamer significantly enhanced delivery of NPs to tumors vs. equivalent NPs lacking the A10 PSMA aptamer (a 3.77-fold increase at 24 hrs; NP-Apt 0.83% ± 0.21% vs. NP 0.22% ± 0.07% of injected dose per gram of tissue; mean ± s.d., 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.