Nanoparticle-enabled, image-guided treatment planning of target specific RNAi therapeutics in an orthotopic prostate cancer model.
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Gang Zheng | Qiaoya Lin | Zhihong Zhang | G. Zheng | Juan Chen | C. Jin | Zhihong Zhang | Juan Chen | Cheng S Jin | Lili Ding | Huang Huang | Huang Huang | Qiaoya Lin | L. Ding | Lili Ding
[1] Jinwoo Cheon,et al. All-in-one target-cell-specific magnetic nanoparticles for simultaneous molecular imaging and siRNA delivery. , 2009, Angewandte Chemie.
[2] K. G. Rajeev,et al. Rational design of cationic lipids for siRNA delivery , 2010, Nature Biotechnology.
[3] Y. Negishi,et al. pDNA-loaded Bubble liposomes as potential ultrasound imaging and gene delivery agents. , 2013, Biomaterials.
[4] Yuhua Wang,et al. A window onto siRNA delivery , 2013, Nature Biotechnology.
[5] T. Kissel,et al. Stability of siRNA polyplexes from poly(ethylenimine) and poly(ethylenimine)-g-poly(ethylene glycol) under in vivo conditions: effects on pharmacokinetics and biodistribution measured by Fluorescence Fluctuation Spectroscopy and Single Photon Emission Computed Tomography (SPECT) imaging. , 2009, Journal of controlled release : official journal of the Controlled Release Society.
[6] Anna Moore,et al. In vivo imaging of siRNA delivery and silencing in tumors , 2007, Nature Medicine.
[7] J. H. Dierendonck,et al. A new method to detect apoptosis in paraffin sections: in situ end-labeling of fragmented DNA. , 1993, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[8] Honglin Jin,et al. Efficient cytosolic delivery of siRNA using HDL-mimicking nanoparticles. , 2011, Small.
[9] M. Wood,et al. Delivery of siRNA to the mouse brain by systemic injection of targeted exosomes , 2011, Nature Biotechnology.
[10] M. Krieger,et al. Scavenger receptor class B type I is a multiligand HDL receptor that influences diverse physiologic systems. , 2001, The Journal of clinical investigation.
[11] Chad A Mirkin,et al. Biomimetic high density lipoprotein nanoparticles for nucleic acid delivery. , 2011, Nano letters.
[12] Qingming Luo,et al. HDL-mimicking peptide-lipid nanoparticles with improved tumor targeting. , 2010, Small.
[13] R. B. Campbell,et al. Role of tumor–host interactions in interstitial diffusion of macromolecules: Cranial vs. subcutaneous tumors , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[14] Xiaohu Gao,et al. Quantum dot-amphipol nanocomplex for intracellular delivery and real-time imaging of siRNA. , 2008, ACS nano.
[15] Robert Langer,et al. A combinatorial library of lipid-like materials for delivery of RNAi therapeutics , 2008, Nature Biotechnology.
[16] K. Farahani,et al. NCI Image-Guided Drug Delivery Summit. , 2011, Cancer research.
[17] A. Lacko,et al. Receptor mediated uptake of paclitaxel from a synthetic high density lipoprotein nanocarrier , 2009, Journal of drug targeting.
[18] Fabian Kiessling,et al. Nanotheranostics and image-guided drug delivery: current concepts and future directions. , 2010, Molecular pharmaceutics.
[19] Linda Mooberry,et al. Evaluation of synthetic/reconstituted high-density lipoproteins as delivery vehicles for paclitaxel , 2008, Anti-cancer drugs.
[20] Daniel G. Anderson,et al. Knocking down barriers: advances in siRNA delivery , 2009, Nature Reviews Drug Discovery.
[21] Hui Li,et al. Rerouting lipoprotein nanoparticles to selected alternate receptors for the targeted delivery of cancer diagnostic and therapeutic agents. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[22] Yucai Wang,et al. Single-step assembly of cationic lipid-polymer hybrid nanoparticles for systemic delivery of siRNA. , 2012, ACS nano.
[23] S. Cory,et al. The Bcl-2 protein family: arbiters of cell survival. , 1998, Science.
[24] M. Manoharan,et al. RNAi therapeutics: a potential new class of pharmaceutical drugs , 2006, Nature chemical biology.
[25] Gang Zheng,et al. QUANTIFYING NANOPARTICLE TRANSPORT IN VIVO USING HYPERSPECTRAL IMAGING WITH A DORSAL SKINFOLD WINDOW CHAMBER. , 2012, Journal of innovative optical health sciences.
[26] Weibo Cai,et al. Are quantum dots ready for in vivo imaging in human subjects? , 2007, Nanoscale research letters.
[27] Michael J Monteiro,et al. An influenza virus-inspired polymer system for the timed release of siRNA , 2013, Nature Communications.
[28] M. Krieger,et al. Reconstituted low density lipoprotein: a vehicle for the delivery of hydrophobic fluorescent probes to cells. , 1979, Journal of supramolecular structure.
[29] M. Prato,et al. Functional motor recovery from brain ischemic insult by carbon nanotube-mediated siRNA silencing , 2011, Proceedings of the National Academy of Sciences.
[30] O. Boerman,et al. INTRAVENOUSLY ADMINISTERED SHORT INTERFERING RNA ACCUMULATES IN THE KIDNEY AND SELECTIVELY SUPPRESSES GENE FUNCTION IN RENAL PROXIMAL TUBULES , 2006, Drug Metabolism and Disposition.
[31] Daniel G. Anderson,et al. Molecularly Self-Assembled Nucleic Acid Nanoparticles for Targeted In Vivo siRNA Delivery , 2012, Nature nanotechnology.
[32] Wolfgang A. Weber,et al. Impact of tumor-specific targeting on the biodistribution and efficacy of siRNA nanoparticles measured by multimodality in vivo imaging , 2007, Proceedings of the National Academy of Sciences.
[33] Laszlo Prokai,et al. Prospects and challenges of the development of lipoprotein-based formulations for anti-cancer drugs , 2007, Expert opinion on drug delivery.
[34] M. Stoffel,et al. Mechanisms and optimization of in vivo delivery of lipophilic siRNAs , 2007, Nature Biotechnology.
[35] M. Krieger. Charting the fate of the "good cholesterol": identification and characterization of the high-density lipoprotein receptor SR-BI. , 1999, Annual review of biochemistry.
[36] Stuart S Dunn,et al. Reductively responsive siRNA-conjugated hydrogel nanoparticles for gene silencing. , 2012, Journal of the American Chemical Society.
[37] Keith Bowman,et al. Potent and persistent in vivo anti-HBV activity of chemically modified siRNAs , 2005, Nature Biotechnology.
[38] H. Schmidt,et al. Inhibition of lung carcinoma cell growth by high density lipoprotein-associated α-tocopheryl-succinate , 2004, Cellular and Molecular Life Sciences CMLS.
[39] Patrick Couvreur,et al. Nanotheranostics for personalized medicine. , 2016, Advanced drug delivery reviews.
[40] Daniel G. Anderson,et al. Lipidoid-coated iron oxide nanoparticles for efficient DNA and siRNA delivery. , 2013, Nano letters.
[41] Yin Zhang,et al. In Vivo Imaging of RNA Interference , 2010, Journal of Nuclear Medicine.
[42] Shan Jiang,et al. Quantum-dot based nanoparticles for targeted silencing of HER2/neu gene via RNA interference. , 2007, Biomaterials.
[43] Y. Anraku,et al. Smart multilayered assembly for biocompatible siRNA delivery featuring dissolvable silica, endosome-disrupting polycation, and detachable PEG. , 2012, ACS nano.
[44] A. Al-Jarallah,et al. A role for the scavenger receptor, class B type I in high density lipoprotein dependent activation of cellular signaling pathways. , 2010, Biochimica et biophysica acta.
[45] V. Ceña,et al. Nonviral vectors for the delivery of small interfering RNAs to the CNS. , 2010, Nanomedicine.