Literature DB >> 31442061

Effect of Dose and Selection of Two Different Ligands on the Deposition and Antitumor Efficacy of Targeted Nanoparticles in Brain Tumors.

Oguz Turan1, Peter Bielecki1, Kathleen Tong1, Gil Covarrubias1, Taylor Moon1, Abdelrahman Rahmy1, Shane Cooley1, Youngjun Park1, Pubudu M Peiris1,2, Ketan B Ghaghada3, Efstathios Karathanasis1,2.   

Abstract

Deposition of nanoparticles to tumors often can be enhanced by targeting receptors overexpressed in a tumor. However, a tumor may exhibit a finite number of a biomarker that is accessible and targetable by nanoparticles, limiting the available landing spots. To explore this, we selected two different biomarkers that effectively home nanoparticles in brain tumors. Specifically, we used either an αvβ3 integrin-targeting peptide or a fibronectin-targeting peptide as a ligand on nanoparticles termed RGD-NP and CREKA-NP, respectively. In mouse models of glioblastoma multiforme, we systemically injected the nanoparticles loaded with a cytotoxic drug at different doses ranging from 2 to 8 mg/kg drug. The upper dose threshold of RGD-NP is ∼2 mg/kg. CREKA-NP reached its upper dose threshold at 5 mg/kg. For both targeted nanoparticle variants, higher dose did not ensure higher intratumoral drug levels, but it contributed to elevated off-target deposition and potentially greater toxicity. A cocktail combining RGD-NP and CREKA-NP was then administered at a dose corresponding to the upper dose threshold for each formulation resulting in a 3-fold higher intratumoral deposition than the individual formulations. The combination of the two different targeting schemes at the appropriate dose for each nanoparticle variant facilitated remarkable increase in intratumoral drug levels that was not achievable by a sole targeting nanoparticle alone.

Entities:  

Keywords:  brain tumors; fibronectin and integrin targeting; mesoporous silica nanoparticles; radiofrequency-triggered drug release; targeted nanoparticles

Mesh:

Substances:

Year:  2019        PMID: 31442061      PMCID: PMC6779508          DOI: 10.1021/acs.molpharmaceut.9b00693

Source DB:  PubMed          Journal:  Mol Pharm        ISSN: 1543-8384            Impact factor:   5.364


  62 in total

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Authors:  P M Peiris; F He; G Covarrubias; S Raghunathan; O Turan; M Lorkowski; B Gnanasambandam; C Wu; W P Schiemann; E Karathanasis
Journal:  Nanoscale       Date:  2018-04-19       Impact factor: 7.790

4.  Influence of vesicle size, lipid composition, and drug-to-lipid ratio on the biological activity of liposomal doxorubicin in mice.

Authors:  L D Mayer; L C Tai; D S Ko; D Masin; R S Ginsberg; P R Cullis; M B Bally
Journal:  Cancer Res       Date:  1989-11-01       Impact factor: 12.701

5.  Amphipathic polyethyleneglycols effectively prolong the circulation time of liposomes.

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6.  Controlled targeting of liposomal doxorubicin via the folate receptor in vitro.

Authors:  Justin M Saul; Ananth Annapragada; Jayaganesh V Natarajan; Ravi V Bellamkonda
Journal:  J Control Release       Date:  2003-09-19       Impact factor: 9.776

7.  Vascular targeted nanoparticles for imaging and treatment of brain tumors.

Authors:  G Ramachandra Reddy; Mahaveer S Bhojani; Patrick McConville; Jonathan Moody; Bradford A Moffat; Daniel E Hall; Gwangseong Kim; Yong-Eun L Koo; Michael J Woolliscroft; James V Sugai; Timothy D Johnson; Martin A Philbert; Raoul Kopelman; Alnawaz Rehemtulla; Brian D Ross
Journal:  Clin Cancer Res       Date:  2006-11-15       Impact factor: 12.531

8.  Imaging nanoprobe for prediction of outcome of nanoparticle chemotherapy by using mammography.

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Journal:  Radiology       Date:  2009-02       Impact factor: 11.105

9.  Targeting of tumor endothelium by RGD-grafted PLGA-nanoparticles loaded with paclitaxel.

Authors:  Fabienne Danhier; Benoît Vroman; Nathalie Lecouturier; Nathalie Crokart; Vincent Pourcelle; Hélène Freichels; Christine Jérôme; Jacqueline Marchand-Brynaert; Olivier Feron; Véronique Préat
Journal:  J Control Release       Date:  2009-08-20       Impact factor: 9.776

10.  Integrin targeted delivery of chemotherapeutics.

Authors:  Kai Chen; Xiaoyuan Chen
Journal:  Theranostics       Date:  2011-02-17       Impact factor: 11.556

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  5 in total

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Authors:  Gil Covarrubias; Taylor J Moon; Georgia Loutrianakis; Haley M Sims; Mayura P Umapathy; Morgan E Lorkowski; Peter A Bielecki; Michelle L Wiese; Prabhani U Atukorale; Efstathios Karathanasis
Journal:  J Mater Chem B       Date:  2022-01-05       Impact factor: 6.331

2.  The effect of PEGylation on the efficacy and uptake of an immunostimulatory nanoparticle in the tumor immune microenvironment.

Authors:  Wyatt M Becicka; Peter A Bielecki; Morgan E Lorkowski; Taylor J Moon; Yahan Zhang; Prabhani U Atukorale; Gil Covarrubias; Efstathios Karathanasis
Journal:  Nanoscale Adv       Date:  2021-07-23

3.  Immunostimulatory silica nanoparticle boosts innate immunity in brain tumors.

Authors:  Peter A Bielecki; Morgan E Lorkowski; Wyatt M Becicka; Prabhani U Atukorale; Taylor J Moon; Yahan Zhang; Michelle Wiese; Gil Covarrubias; Shruthi Ravichandran; Efstathios Karathanasis
Journal:  Nanoscale Horiz       Date:  2021-01-05       Impact factor: 10.989

4.  Engineering Tumor-Targeting Nanoparticles as Vehicles for Precision Nanomedicine.

Authors:  Amber Gonda; Nanxia Zhao; Jay V Shah; Hannah R Calvelli; Harini Kantamneni; Nicola L Francis; Vidya Ganapathy
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Review 5.  Stimuli-Responsive Iron Oxide Nanotheranostics: A Versatile and Powerful Approach for Cancer Therapy.

Authors:  Morgan E Lorkowski; Prabhani U Atukorale; Ketan B Ghaghada; Efstathios Karathanasis
Journal:  Adv Healthc Mater       Date:  2020-11-23       Impact factor: 9.933

  5 in total

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