Literature DB >> 25009578

A computational framework for identifying design guidelines to increase the penetration of targeted nanoparticles into tumors.

Sabine Hauert1, Spring Berman2, Radhika Nagpal3, Sangeeta N Bhatia4.   

Abstract

Targeted nanoparticles are increasingly being engineered for the treatment of cancer. By design, they can passively accumulate in tumors, selectively bind to targets in their environment, and deliver localized treatments. However, the penetration of targeted nanoparticles deep into tissue can be hindered by their slow diffusion and a high binding affinity. As a result, they often localize to areas around the vessels from which they extravasate, never reaching the deep-seeded tumor cells, thereby limiting their efficacy. To increase tissue penetration and cellular accumulation, we propose generalizable guidelines for nanoparticle design and validate them using two different computer models that capture the potency, motion, binding kinetics, and cellular internalization of targeted nanoparticles in a section of tumor tissue. One strategy that emerged from the models was delaying nanoparticle binding until after the nanoparticles have had time to diffuse deep into the tissue. Results show that nanoparticles that are designed according to these guidelines do not require fine-tuning of their kinetics or size and can be administered in lower doses than classical targeted nanoparticles for a desired tissue penetration in a large variety of tumor scenarios. In the future, similar models could serve as a testbed to explore engineered tissue-distributions that arise when large numbers of nanoparticles interact in a tumor environment.

Entities:  

Keywords:  Cancer; Modeling; Nanoparticle; Systems Nanotechnology; Targeting; Tissue Penetration

Year:  2013        PMID: 25009578      PMCID: PMC4084751          DOI: 10.1016/j.nantod.2013.11.001

Source DB:  PubMed          Journal:  Nano Today        ISSN: 1748-0132            Impact factor:   20.722


  55 in total

1.  The binding avidity of a nanoparticle-based multivalent targeted drug delivery platform.

Authors:  Seungpyo Hong; Pascale R Leroueil; István J Majoros; Bradford G Orr; James R Baker; Mark M Banaszak Holl
Journal:  Chem Biol       Date:  2007-01

2.  Impact of single-chain Fv antibody fragment affinity on nanoparticle targeting of epidermal growth factor receptor-expressing tumor cells.

Authors:  Yu Zhou; Daryl C Drummond; Hao Zou; Mark E Hayes; Gregory P Adams; Dmitri B Kirpotin; James D Marks
Journal:  J Mol Biol       Date:  2007-05-10       Impact factor: 5.469

Review 3.  Hybrid nanoparticles for detection and treatment of cancer.

Authors:  Michael J Sailor; Ji-Ho Park
Journal:  Adv Mater       Date:  2012-05-21       Impact factor: 30.849

4.  The effects of particle size and molecular targeting on the intratumoral and subcellular distribution of polymeric nanoparticles.

Authors:  Helen Lee; Humphrey Fonge; Bryan Hoang; Raymond M Reilly; Christine Allen
Journal:  Mol Pharm       Date:  2010-08-02       Impact factor: 4.939

Review 5.  Multifunctional nanoparticles: cost versus benefit of adding targeting and imaging capabilities.

Authors:  Zhiliang Cheng; Ajlan Al Zaki; James Z Hui; Vladimir R Muzykantov; Andrew Tsourkas
Journal:  Science       Date:  2012-11-16       Impact factor: 47.728

6.  Targeted drug delivery to tumors: myths, reality and possibility.

Authors:  You Han Bae; Kinam Park
Journal:  J Control Release       Date:  2011-06-06       Impact factor: 9.776

Review 7.  Nanotechnology applications in cancer.

Authors:  Shuming Nie; Yun Xing; Gloria J Kim; Jonathan W Simons
Journal:  Annu Rev Biomed Eng       Date:  2007       Impact factor: 9.590

8.  Mediating tumor targeting efficiency of nanoparticles through design.

Authors:  Steven D Perrault; Carl Walkey; Travis Jennings; Hans C Fischer; Warren C W Chan
Journal:  Nano Lett       Date:  2009-05       Impact factor: 11.189

Review 9.  The EPR effect for macromolecular drug delivery to solid tumors: Improvement of tumor uptake, lowering of systemic toxicity, and distinct tumor imaging in vivo.

Authors:  Hiroshi Maeda; Hideaki Nakamura; Jun Fang
Journal:  Adv Drug Deliv Rev       Date:  2012-10-23       Impact factor: 15.470

10.  Design maps for nanoparticles targeting the diseased microvasculature.

Authors:  Paolo Decuzzi; Mauro Ferrari
Journal:  Biomaterials       Date:  2007-10-22       Impact factor: 12.479

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  15 in total

1.  Advances in targeted nanotherapeutics: From bioconjugation to biomimicry.

Authors:  Danielle M Valcourt; Jenna Harris; Rachel S Riley; Megan Dang; Jianxin Wang; Emily S Day
Journal:  Nano Res       Date:  2018-05-17       Impact factor: 8.897

2.  Multichannel imaging to quantify four classes of pharmacokinetic distribution in tumors.

Authors:  Sumit Bhatnagar; Emily Deschenes; Jianshan Liao; Cornelius Cilliers; Greg M Thurber
Journal:  J Pharm Sci       Date:  2014-07-21       Impact factor: 3.534

Review 3.  Strategies for improving drug delivery: nanocarriers and microenvironmental priming.

Authors:  Ayesha Khalid; Stefano Persano; Haifa Shen; Yuliang Zhao; Elvin Blanco; Mauro Ferrari; Joy Wolfram
Journal:  Expert Opin Drug Deliv       Date:  2016-10-11       Impact factor: 6.648

4.  Mathematical framework for activity-based cancer biomarkers.

Authors:  Gabriel A Kwong; Jaideep S Dudani; Emmanuel Carrodeguas; Eric V Mazumdar; Seyedeh M Zekavat; Sangeeta N Bhatia
Journal:  Proc Natl Acad Sci U S A       Date:  2015-09-28       Impact factor: 11.205

5.  Nanoparticle Mediated Tumor Vascular Disruption: A Novel Strategy in Radiation Therapy.

Authors:  Sijumon Kunjachan; Alexandre Detappe; Rajiv Kumar; Thomas Ireland; Lisa Cameron; Douglas E Biancur; Vincent Motto-Ros; Lucie Sancey; Srinivas Sridhar; G Mike Makrigiorgos; Ross I Berbeco
Journal:  Nano Lett       Date:  2015-10-06       Impact factor: 11.189

6.  Measuring Nanoparticle Penetration Through Bio-Mimetic Gels.

Authors:  Scott C McCormick; Namid Stillman; Matthew Hockley; Adam W Perriman; Sabine Hauert
Journal:  Int J Nanomedicine       Date:  2021-03-30

7.  Drug delivery in a tumour cord model: a computational simulation.

Authors:  M E Hubbard; M Jove; P M Loadman; R M Phillips; C J Twelves; S W Smye
Journal:  R Soc Open Sci       Date:  2017-05-24       Impact factor: 2.963

8.  Mechanisms of cooperation in cancer nanomedicine: towards systems nanotechnology.

Authors:  Sabine Hauert; Sangeeta N Bhatia
Journal:  Trends Biotechnol       Date:  2014-07-30       Impact factor: 19.536

9.  Mechanistic and quantitative insight into cell surface targeted molecular imaging agent design.

Authors:  Liang Zhang; Sumit Bhatnagar; Emily Deschenes; Greg M Thurber
Journal:  Sci Rep       Date:  2016-05-05       Impact factor: 4.379

10.  Toward Engineering Biosystems With Emergent Collective Functions.

Authors:  Thomas E Gorochowski; Sabine Hauert; Jan-Ulrich Kreft; Lucia Marucci; Namid R Stillman; T-Y Dora Tang; Lucia Bandiera; Vittorio Bartoli; Daniel O R Dixon; Alex J H Fedorec; Harold Fellermann; Alexander G Fletcher; Tim Foster; Luca Giuggioli; Antoni Matyjaszkiewicz; Scott McCormick; Sandra Montes Olivas; Jonathan Naylor; Ana Rubio Denniss; Daniel Ward
Journal:  Front Bioeng Biotechnol       Date:  2020-06-26
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