[1] DOANE T L,BURDA C. The unique role of nanoparticles in nanomedicine:imaging,drug delivery and therapy[J]. Chemical Society Reviews,2012,41(7):2885-2911.
[2] CHAUHAN V P,POPOVI? Z,CHEN O,et al. Fluorescent nanorods and nanospheres for real-time in vivo probing of nanoparticle shape-dependent tumor penetration[J]. Angewandte Chemie International Edition,2011,50:11417-11420.
[3] SHI J J,VOTRUBA A R,FAROKHZAD O C,et al. Nanotechnology in drug delivery and tissue engineering:from discovery to applications[J]. Nano Letters,2010,10(9):3223-3230.
[4] GE S,LIU W,LIU H,et al. Colorimetric detectionofthe flux of hydrogen peroxidereleased from living cells based on the highperoxidase-like catalytic performance of porous PtPd nanorods[J]. Biosensors and Bioelectronics,2015,71:456-462.
[5] POURJAVADI A,TEHRANI Z M,SHIRVANI T,et al. Dendritic multi-walled carbon nanotube with thermoresponsive shells:a good carrier for anticancer drugs[J]. Journal of Industrial and Engineering Chemistry,2016,35:332-340.
[6] LI Y,YANG Y,AN F,et al. Carrier-free,functionalized pure drug nanorods as a novel cancer-targeted drug delivery platform[J]. Nanotechnology,2013,24(1):015103.
[7] ZHOU M J,ZHANG X J,YANG Y L,et al. Carrier-free functionalized multidrug nanorods for synergistic cancer therapy[J]. Biomaterials,2013,34(35):8960-8967.
[8] CHO E C,ZHANG Q,XIA Y N. The effect of sedimentation and diffusion on cellular uptake of gold nanoparticles[J]. Nature Nanotechnology,2011,6(6):385-391.
[9] CHAUHAN V P,POPOVI? Z,CHEN O,et al. Fluorescent nanorods and nanospheres for real-time in vivo probing of nanoparticle shape-dependent tumor penetration[J]. Angewandte Chemie International Edition,2011,50(48):11417-11420.
[10] DENG Y Y,LI E D,CHENG X J,et al. Facile preparation of hybrid core-shell nanorods for photothermal and radiation combined therapy[J]. Nanoscale,2016,8:3895-3899.
[11] THAM H P,CHEN H Z,TAN Y H,et al. Photosensitizer anchored gold nanorods for targeted combinational photothermal and photodynamic therapy[J]. Chemical Communications,2016,52:8854-8857.
[12] GAO N,CHEN Y,LI L,et al. Shape-dependent two-photon photoluminescence of single gold nanoparticles[J]. The Journal of Physical Chemistry C,2014,118:13904-13911.
[13] YOU J,ZHANG G D,LI C,Exceptionally high payload of doxorubicin in hollow gold nanospheres for near-Infrared light-triggered drug release[J]. ACS Nano,2010,4:1033-1041.
[14] BAO J,CHEN W,LIU T T,et al. Bifunctional Au-Fe3O4 nanoparticles for protein separation[J]. ACS Nano,2007,1:293-298.
[15] YANG P,XU Q Z,JIN S Y,et al. Synthesis of Fe3O4@phenol formaldehyde resin core-shell nanospheres loaded with Au nanoparticles as magnetic FRET nanoprobes for detection of thiols in living cells[J]. Chemistry A:European Journal,2012,18:1154-1160.
[16] RITTIKULSITTICHAI S,KOLHATKAR A G,SARANGI S,et al. Multi-responsive hybrid particles:thermo-,pH-,photo-,and magneto-responsive magnetic hydrogel cores with gold nanorod optical triggers[J]. Nanoscale,2016,8:11851-11861.
[17] CUI D X,HUANG P,ZHANG C L,et al. Dendrimer-modified gold nanorods as efficient controlled gene delivery system under near-infrared light irradiation[J]. Journal of Controlled Release,2011,152(1):e137-e139.
[18] 王倩,刘丽炜,朱泠西,等. 低分子量聚乙烯亚胺/金纳米棒纳米载体的制备及毒性研究[J]. 发光学报,2015,36(11):1271-1277. WANG Q,LIU L W,ZHU L X,et al. Synthesization and toxicity of low-molecular-weight PEI/gold nanords nanosystem[J]. Chinese Journal of Luminescence,2015,36(11):1271-1277.
[19] JIN H,LIU X F,GUI R J,et al. Facile synthesis of gold nanorods/hydrogels core/shell nanospheres for pH and near-infrared-light induced release of 5-fluorouracil andchemo-photothermal therapy[J]. Colloids and Surfaces B:Biointerfaces,2015,128:498-505.
[20] WANG T T,ZHANG X L,PAN Y,et al. Fabrication of doxorubicin functionalized gold nanorod probes for combined cancer imaging and drug delivery[J]. Dalton Transactions,2011,40(38):9789-9794.
[21] CHEN M,QIU P C,HE X X,et al. The adenine DNA self-assembly of pH-and nearinfrared-responsive gold nanorod vehicles for the chemothermal treatment of cancer cells[J]. Journal of Materials Chemistry B,2014,2(21):3204-3213.
[22] PACARDO D B,NEUPANE B,RIKARD S M,et al. A dual wavelength-activatable gold nanorod complex for synergistic cancer treatment[J]. Nanoscale,2015,7(28):12096-12103.
[23] XIAO Y L,JASKULA-SZTUL R,JAVADI A,et al. Co-delivery of doxorubicin and siRNA using octreotide-conjugated gold nanorods for targeted neuroendocrine cancer therapy[J]. Nanoscale,2012,4(22):7185-7193.
[24] CHEN S,HUANG H,ZHANG L,et al. Alternate release of different target species based on the same gold nanorods and monitored by cell imaging[J]. Colloids and Surfaces B:Biointerfaces,2016,145:671-678.
[25] VENKATESAN R,PICHAIMANI A,HARI K,et al. Doxorubicin conjugated gold nanorods:a sustained drug delivery carrier for improved anticancer therapy[J]. Journal of Materials Chemistry B,2013,1(7):1010-1018.
[26] DU C L,WANG A H,FEI J B,et al. Polypyrrole-stabilized gold nanorods with enhanced photothermal effect towards two-photon photothermal therapy[J]. Journal of Materials Chemistry B,2015,3(22):4539-4545.
[27] HU B,WANG N,HAN L,et al. Core-shell-shell nanorods for controlled release of silver that can serve as a nanoheater for photothermal treatment on bacteria[J]. Acta Biomaterialia,2015,11:511-519.
[28] FENG J,WANG Z F,SHEN B,et al. Effects of template removal on both morphology of mesoporous silica-coated gold nanorod and its biomedical application[J]. RSC Advances,2014,4(54):28683-28690.
[29] ZHU X M,FANG C H,JIA H L,et al. Cellular uptake behaviour,photothermal therapy performance,and cytotoxicity of gold nanorods with various coatings[J]. Nanoscale,2014,6(19):11462-11472.
[30] ZHANG Z J,WANG L M,WANG J,et al. Mesoporous silica-coated gold nanorods as a light-mediated multifunctional theranostic platform for cancer treatment[J]. Advanced Materials,2012,24(11):1418-1423.
[31] TANG H Y,SHEN S,GUO J,et al. Gold nanorods@mSiO2 with a smart polymer shell responsive to heat/near-infrared light for chemo-photothermal therapy[J]. Journal of Materials Chemistry,2012,22(31):16095-16103.
[32] LI H,TAN L L,JIA P,et al. Near-infrared light-responsive supramolecular nanovalve based on mesoporous silica-coated gold nanorods[J]. Chemical Science,2014,5(7):2804-2808.
[33] LI M H,YAN H,TEH C,et al. NIR-triggered drug release from switchable rotaxane-functionalized silica-covered Au nanorods[J]. Chemical Communications,2014,50(68):9745-9748.
[34] WANG X W,GAO W,FAN H H,et al. Simultaneous tracking of drug molecules and carriers using aptamer-functionalized fluorescent superstable gold nanorod-carbon nanocapsules during thermo-chemotherapy[J]. Nanoscale,2016,8(15):7942-7948.
[35] XIONG W,MAZID R,YAP L W,et al. Plasmonic caged gold nanorods for near-infrared light controlled drug delivery[J]. Nanoscale,2014,6(23):14388-14393.
[36] CHEN H Y,DI Y F,CHEN D,et al. Combined chemo-and photo-thermal therapy delivered by multifunctional theranostic gold nanorod-loaded microcapsules[J]. Nanoscale,2015,7(19):8884-8897.
[37] GRAHAM F L.,VAN DER EB A J. A new technique for the assay of infectivity of human adenovirus 5 DNA[J]. Virology,1973,52(2):456-467.
[38] SUN R X,YANG L L,ZHANG Y X,et al. Novel synthesis of AB-type carbonated hydroxyapatite hierarchical microstructures with sustained drug delivery properties[J]. CrystEngComm,2016,18:8030-8037.
[39] CHEN X,YANG B,QI C,et al. DNA-templated microwave-hydrothermal synthesis of nanostructured hydroxyapatite for storing and sustained release of an antibacterial protein[J]. Dalton Transactions,2016,45:1648-01656.
[40] ALBRECHT C,SCHERBART A M,VAN BERLO D,et al. Evaluation of cytotoxic effects and oxidative stress with hydroxyapatite dispersions of different physicochemical properties in rat NR8383 cells and primary macrophages[J]. Toxicology in Vitro,2009,23:520-530.
[41] JI Y Q,WANG A L,WU G,et al. Synthesis of different sized and porous hydroxyapatite nanorods without organic modifiers and their 5-fluorouracil release performance[J]. Materials Science and Engineering C,2015,57:14-23.
[42] WU G J,ZHOU L Z,WANG K W,et al. Hydroxylapatite nanorods:an efficient and promising carrier for gene transfection[J]. Journal of Colloid and Interface Science,2010,345(2):427-432.
[43] CHEN L,ZHU H L,YANG S,et al. Nanostructured calcium phosphate carriers for deliver of poor water-soluble drug silybin[J]. Materials Letters,2015,143:252-255.
[44] SINGH R K,KIM T H,PATEL K D,et al. Development of biocompatible apatite nanorodbased drug-delivery system with in situ fluorescence imaging capacity[J]. Journal of Materials Chemistry B,2014,2(14):2039-2050.
[45] SINGH R K,KIM T H,PATEL K D,et al. Novel hybrid nanorod carriers of fluorescent hydroxyapatite shelled with mesoporous silica effective for drug delivery and cell imaging[J]. Journal of the American Ceramic Society,2014,97(10):3071-3076.
[46] BHARATH G,PRABHU D,MANGALARAJ D,et al. Facile in situ growth of Fe3O4 nanoparticles on hydroxyapatite nanorods for pH dependent adsorption and controlled release of proteins[J]. RSC Advances,2014,4(92):50510-50520.
[47] FILIPPOUSI M,SIAFAKA P I,AMANATIADOU E P,et al. Modified chitosan coated mesoporous strontium hydroxyapatite nanorods as drug carriers[J]. Journal of Materials Chemistry B,2015,3(29):5991-6000.
[48] SENTHILKUMAR R,KARAMAN D ?,PAUL P,et al. Targeted delivery of a novel anticancer compound anisomelic acid using chitosan-coated porous silica nanorods for enhancing the apoptotic effect[J]. Biomaterials Science,2015,3(1):103-111.
[49] SHI D J,ZHANG L,SHEN J L,et al. Fabrication of rod-like nanocapsules based on polylactide and 3,4-dihydroxyphenylalanine for a drug delivery system[J]. RSC Advances,2015,5(125):103414-103420.
[50] CHEN M L,SHEN L M,CHEN S,et al. In situ growth of β-FeOOH nanorods on graphene oxide with ultra-high relaxivity for in vivo magnetic resonance imaging and cancer therapy[J]. Journal of Materials Chemistry B,2013,1(20):2582-2589.
[51] GIRI S,TREWYN B G,STELLMAKER M P,et al. Stimuli-responsive controlled-release delivery system based on mesoporous silica nanorods capped with magnetic nanoparticles[J]. Angewandte Chemie,2005,117:5166-5172.
[52] PADHYE P,ALAM A,GHORAI S,et al. Doxorubicin-conjugated β-NaYF4:Gd3+/Tb3+ multifunctional,phosphor nanorods:a multimodal,luminescent,magnetic probe for simultaneous optical and magnetic resonance imaging and an excellent pH-triggered anti-cancer drug delivery nanovehicle[J]. Nanoscale,2015,7(46):19501-19518.
[53] WANG X S,LI W S,SITU J Q,et al. Multi-functional mesoporous β-Ga2O3:Cr3+ nanorod with long lasting near infrared luminescence for in vivo imaging and drug delivery[J]. RSC Advances,2015,5:12886-12889.
[54] SUN Y J,DONG W B,WANG H Y,et al. Template synthesis of PMAA@chitosan hollow nanorods for docetaxel delivery[J]. Polymer Chemistry,2013,4(8):2489-2495.
[55] FAN M M,ZHANG W Z,CHENG C,et al. Evaluation of rod-shaped nanoparticles as carriers for gene delivery[J]. Particle & Particle Systems Characterization,2014,31(9):994-1000.
[56] LI D,TANG Z M,GAO Y Q,et al. A bio-inspired rod-shaped nanoplatform for strongly infecting tumor cells and enhancing the delivery efficiency of anticancer drugs[J]. Advanced Functional Materials,2016,26(1):66-79.
[57] TIAN Y,GAO S J,WU M,et al. Tobacco mosaic virus based 1D nanorod-drug carrier via the integrin-mediated endocytosis pathway[J]. ACS Applied Materials & Interfaces,2016,8(17):10800-10807.
[58] PEER A,DHAKAL R,BISWAS R,et al. Nanoscale patterning of biopolymers for functional biosurfaces and controlled drug release[J]. Nanoscale,2016,8:18654-18664.
[59] ARIGA K,LVOV Y M,KAWAKAMI K,et al. Layer-by-layer self-assembled shells for drug delivery[J]. Advanced Drug Delivery Reviews,2011,63:762-771.
[60] LIN Y,YAO W,CHENG Y,et al. Multifold enhanced T2 relaxation of ZnFe2O4 nanoparticles by jamming them inside chitosan nanospheres[J]. Journal of Materials Chemistry,2012,22:5684-5693.
[61] AILLON K L,XIE Y,EL-GENDY N,et al. Effects of nanomaterial physicochemical properties on in vivo toxicity[J]. Advanced Drug Delivery Reviews,2009,61:457-466.
[62] POWERS K W,PALAZUELOS M,MOUDGIL B M,et al. Characterization of the size,shape,and state of dispersion of nanoparticles for toxicological studies[J]. Nanotoxicology,2007,1:42-51.
[63] ZHANG C Y,ZHANG F,WANG W,et al. Chitosan coated gold nanorod chelating gadolinium for MRI-visible photothermal therapy of cancer[J]. RSC Advances,2016,6:111337-111344.
[64] CAI B Y,HUANG Z B,WU Z,et al. Fabrication of RGD-conjugated Gd(OH)3:Eu nanorods with enhancement of magnetic resonance,luminescence imaging and in vivo tumor targeting[J]. Dalton Transactions,2016,45:14063-14070.
[65] WU Z,HUANG Z,YIN G,et al. Fabrication of Gd/Eu-codoped SmPO4 nanorods for dual-modal magnetic resonance and bio-optical imaging[J]. Journal of Colloid and Interface Science,2016,466:1-11. |