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Drug delivery and nanodetection in lung cancer

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Pages 618-634 | Received 24 Sep 2014, Accepted 07 Oct 2014, Published online: 11 Nov 2014

Figures & data

Table I. Uses of nanoparticles in nanotechnology.

Figure 1. Illustrated isolation and recognition of CTCs with MNP-pan-ck and QD.

Figure 1. Illustrated isolation and recognition of CTCs with MNP-pan-ck and QD.

Figure 2. The versatile properties of AuNPs have been employed for biomedical applications in many areas (CitationGanti and Mulshine 2006).

Figure 2. The versatile properties of AuNPs have been employed for biomedical applications in many areas (CitationGanti and Mulshine 2006).

Figure 3. Schematic illustrations of synthesis of magnetic and fluorescent bifunctional nanocomposites and their use for cancer cell capture and detection (Ref 159).

Figure 3. Schematic illustrations of synthesis of magnetic and fluorescent bifunctional nanocomposites and their use for cancer cell capture and detection (Ref 159).

Figure 4. Schematic diagrams of poly-(ethylene glycol) (PEG) configuration regimes (mushroom, brush, and pancake) for polymer grafted to the surface of liposome bilayer (CitationLiu et al. 2011b).

Figure 4. Schematic diagrams of poly-(ethylene glycol) (PEG) configuration regimes (mushroom, brush, and pancake) for polymer grafted to the surface of liposome bilayer (CitationLiu et al. 2011b).

Figure 5. Demonstrated dendrimer generation.

Figure 5. Demonstrated dendrimer generation.

Figure 6. Targeting lactoferrin receptors in bronchial cell by methotrexate-loaded lactoferrin-conjugated dendrimer.

Figure 6. Targeting lactoferrin receptors in bronchial cell by methotrexate-loaded lactoferrin-conjugated dendrimer.

Figure 7. Proposed dual targeting mechanism by β-lap nanotherapeutics (Elvin et al. 2010).

Figure 7. Proposed dual targeting mechanism by β-lap nanotherapeutics (Elvin et al. 2010).

Figure 8. Carbon nanotube/gold hybrids for the delivery of doxorubicin (CitationMinati et al. 2012).

Figure 8. Carbon nanotube/gold hybrids for the delivery of doxorubicin (CitationMinati et al. 2012).

Figure 9. Production of gold nanoparticles.

Figure 9. Production of gold nanoparticles.

Figure 10. Hyperthermia using magnetite nanoparticles. Scheme of hyperthermia treatment. Magnetite nanoparticles are concentrated in tumor tissue by the DDS.

Figure 10. Hyperthermia using magnetite nanoparticles. Scheme of hyperthermia treatment. Magnetite nanoparticles are concentrated in tumor tissue by the DDS.

Figure 11. Schematics of Functionalized Solid Lipid Nanoparticles (Ref 221).

Figure 11. Schematics of Functionalized Solid Lipid Nanoparticles (Ref 221).

Figure 12. Decomposition of nanocomposite particles into nanoparticles.

Figure 12. Decomposition of nanocomposite particles into nanoparticles.

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