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Cancer Nanotechnology

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Cover of 'Cancer Nanotechnology'

Table of Contents

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    Book Overview
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    Chapter 1 Cancer Nanotechnology: Opportunities for Prevention, Diagnosis, and Therapy
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    Chapter 2 Improved Targeting of Cancers with Nanotherapeutics
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    Chapter 3 Multifunctional Liposomes
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    Chapter 4 Multifunctional Concentric FRET-Quantum Dot Probes for Tracking and Imaging of Proteolytic Activity
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    Chapter 5 Preparation and Characterization of Magnetic Nano-in-Microparticles for Pulmonary Delivery
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    Chapter 6 Multifunctionalization of Gold Nanoshells
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    Chapter 7 Fabrication of Photothermal Stable Gold Nanosphere/Mesoporous Silica Hybrid Nanoparticle Responsive to Near-Infrared Light
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    Chapter 8 Engineering Well-Characterized PEG-Coated Nanoparticles for Elucidating Biological Barriers to Drug Delivery
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    Chapter 9 Piloting Your Nanovehicle to Overcome Biological Barriers
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    Chapter 10 Detecting Sonolysis of Polyethylene Glycol Upon Functionalizing Carbon Nanotubes
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    Chapter 11 Methods for Generation and Detection of Nonstationary Vapor Nanobubbles Around Plasmonic Nanoparticles
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    Chapter 12 Force Measurements for Cancer Cells
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    Chapter 13 Fractal Analysis of Cancer Cell Surface
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    Chapter 14 Quantitative Evaluation of the Enhanced Permeability and Retention (EPR) Effect
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    Chapter 15 Nanotechnology-Based Cancer Vaccine
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    Chapter 16 Designing Multicomponent Nanosystems for Rapid Detection of Circulating Tumor Cells
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    Chapter 17 Fluorescence and Bioluminescence Imaging of Orthotopic Brain Tumors in Mice
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    Chapter 18 An Ultrasensitive Biosensing Platform Employing Acetylcholinesterase and Gold Nanoparticles
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    Chapter 19 Gene Silencing Using Multifunctionalized Gold Nanoparticles for Cancer Therapy
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    Chapter 20 Generation of Dose–Response Curves and Improved IC50s for PARP Inhibitor Nanoformulations
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    Chapter 21 Artificial Antigen-Presenting Cells for Immunotherapies
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    Chapter 22 Exploiting Uptake of Nanoparticles by Phagocytes for Cancer Treatment
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    Chapter 23 Pulmonary Delivery of Magnetically Targeted Nano-in-Microparticles
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    Chapter 24 Neutron-Activatable Nanoparticles for Intraperitoneal Radiation Therapy
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    Chapter 25 Nanoparticle-Mediated X-Ray Radiation Enhancement for Cancer Therapy
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    Chapter 26 Radiosensitizing Silica Nanoparticles Encapsulating Docetaxel for Treatment of Prostate Cancer
Attention for Chapter 26: Radiosensitizing Silica Nanoparticles Encapsulating Docetaxel for Treatment of Prostate Cancer
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Chapter title
Radiosensitizing Silica Nanoparticles Encapsulating Docetaxel for Treatment of Prostate Cancer
Chapter number 26
Book title
Cancer Nanotechnology
Published in
Methods in molecular biology, February 2017
DOI 10.1007/978-1-4939-6646-2_26
Pubmed ID
Book ISBNs
978-1-4939-6644-8, 978-1-4939-6646-2
Authors

Jodi Belz, Noelle Castilla-Ojo, Srinivas Sridhar, Rajiv Kumar

Editors

Reema Zeineldin

Abstract

The applications of nanoparticles in oncology include enhanced drug delivery, efficient tumor targeting, treatment monitoring, and diagnostics. The "theranostic properties" associated with nanoparticles have shown enhanced delivery of chemotherapeutic drugs with superior imaging capabilities and minimal toxicities. In conventional chemotherapy, only a fraction of the administered drug reaches the tumor site or cancer cells. For successful translation of these formulations, it is imperative to evaluate the design and properties of these nanoparticles. Here, we describe the design of ultra-small silica nanoparticles to encapsulate a radiosensitizing drug for combined chemoradiation therapy. The small size of nanoparticles allows for better dispersion and uptake of the drug within the highly vascularized tumor tissue. Silica nanoparticles are synthesized using an oil-in-water microemulsion method. The microemulsion method provides a robust synthetic route in which the inner hydrophobic core is used to encapsulate chemotherapy drug, docetaxel while the outer hydrophilic region provides dispersibility of the synthesized nanoparticles in an aqueous environment. Docetaxel is commonly used for treatment of resistant or metastatic prostate cancer, and is known to have radiosensitizing properties. Here, we describe a systematic approach for synthesizing these theranostic nanoparticles for application in prostate cancer.

Mendeley readers

Mendeley readers

The data shown below were compiled from readership statistics for 20 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
Unknown 20 100%

Demographic breakdown

Readers by professional status Count As %
Student > Ph. D. Student 5 25%
Student > Master 3 15%
Student > Bachelor 3 15%
Researcher 3 15%
Other 1 5%
Other 1 5%
Unknown 4 20%
Readers by discipline Count As %
Biochemistry, Genetics and Molecular Biology 3 15%
Pharmacology, Toxicology and Pharmaceutical Science 2 10%
Medicine and Dentistry 2 10%
Computer Science 1 5%
Chemical Engineering 1 5%
Other 2 10%
Unknown 9 45%