Gold Nanoparticle Based Platforms for Circulating Cancer Marker Detection
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Xiaohua Huang | Ryan O'Connor | Elyahb Allie Kwizera | Xiaohua Huang | Ryan O’Connor | E. A. Kwizera
[1] Marc D Porter,et al. Detection of the potential pancreatic cancer marker MUC4 in serum using surface-enhanced Raman scattering. , 2011, Analytical chemistry.
[2] B. Carter,et al. Extracellular vesicles as a platform for ‘liquid biopsy’ in glioblastoma patients , 2014, Expert review of molecular diagnostics.
[3] Alfredo de la Escosura-Muñiz,et al. Detection of circulating cancer cells using electrocatalytic gold nanoparticles. , 2012, Small.
[4] G. Parmiani,et al. Tumor-released microvesicles as vehicles of immunosuppression. , 2007, Cancer research.
[5] Massimo Spada,et al. High Levels of Exosomes Expressing CD63 and Caveolin-1 in Plasma of Melanoma Patients , 2009, PloS one.
[6] Alessandro Ambrosi,et al. The Prognostic Value of Circulating Tumor Cells in Patients with Melanoma: A Systematic Review and Meta-analysis , 2006, Clinical Cancer Research.
[7] Richard J Simpson,et al. Comparison of ultracentrifugation, density gradient separation, and immunoaffinity capture methods for isolating human colon cancer cell line LIM1863-derived exosomes. , 2012, Methods.
[8] M El Sayed,et al. SHAPE AND SIZE DEPENDENCE OF RADIATIVE, NON-RADIATIVE AND PHOTOTHERMAL PROPERTIES OF GOLD NANOCRYSTALS , 2000 .
[9] J. Lötvall,et al. Exosome-mediated transfer of mRNAs and microRNAs is a novel mechanism of genetic exchange between cells , 2007, Nature Cell Biology.
[10] Chad A. Mirkin,et al. One-Pot Colorimetric Differentiation of Polynucleotides with Single Base Imperfections Using Gold Nanoparticle Probes , 1998 .
[11] Mustafa Sarimollaoglu,et al. Real‐time monitoring of circulating tumor cell release during tumor manipulation using in vivo photoacoustic and fluorescent flow cytometry , 2014, Head & neck.
[12] S. Lee,et al. Detection of circulating tumor cells via an X-ray imaging technique. , 2013, Journal of synchrotron radiation.
[13] Sean P. Palecek,et al. Protein analytical assays for diagnosing, monitoring, and choosing treatment for cancer patients. , 2012, Journal of healthcare engineering.
[14] Peng-Fei Zhang,et al. Proteomics-based identification of secreted protein dihydrodiol dehydrogenase as a novel serum markers of non-small cell lung cancer. , 2006, Lung cancer.
[15] Alfredo de la Escosura-Muñiz,et al. Electrochemical quantification of gold nanoparticles based on their catalytic properties toward hydrogen formation: Application in magnetoimmunoassays , 2010 .
[16] B. Shapiro,et al. Free DNA in the serum of cancer patients and the effect of therapy. , 1977, Cancer research.
[17] Encai Hao,et al. Synthesis and Optical Properties of Anisotropic Metal Nanoparticles , 2004, Journal of Fluorescence.
[18] Rong Chen,et al. Label-free surface-enhanced Raman spectroscopy for detection of colorectal cancer and precursor lesions using blood plasma. , 2015, Biomedical optics express.
[19] Korak Kumar Ray,et al. 96-Well Plasmonic Sensing with Nanohole Arrays , 2016 .
[20] Weihong Tan,et al. Multivalent DNA nanospheres for enhanced capture of cancer cells in microfluidic devices. , 2013, ACS nano.
[21] Sang Jun Sim,et al. Rational aspect ratio and suitable antibody coverage of gold nanorod for ultra-sensitive detection of a cancer biomarker. , 2012, Lab on a chip.
[22] R. Dasari,et al. Single Molecule Detection Using Surface-Enhanced Raman Scattering (SERS) , 1997 .
[23] G. Marrazza,et al. New label free CA125 detection based on gold nanostructured screen-printed electrode , 2013 .
[24] Ekaterina I. Galanzha,et al. Nanotechnology‐based molecular photoacoustic and photothermal flow cytometry platform for in‐vivo detection and killing of circulating cancer stem cells , 2009, Journal of biophotonics.
[25] J L West,et al. A whole blood immunoassay using gold nanoshells. , 2003, Analytical chemistry.
[26] Wei Shi,et al. Detection of circulating tumor cells using targeted surface-enhanced Raman scattering nanoparticles and magnetic enrichment , 2014, Journal of biomedical optics.
[27] Kyung-Jin Jang,et al. Detection of proteins using a colorimetric bio-barcode assay , 2007, Nature Protocols.
[28] J. Storhoff,et al. Selective colorimetric detection of polynucleotides based on the distance-dependent optical properties of gold nanoparticles. , 1997, Science.
[29] Caroline Dive,et al. Evaluation and prognostic significance of circulating tumor cells in patients with non-small-cell lung cancer. , 2011, Journal of clinical oncology : official journal of the American Society of Clinical Oncology.
[30] Richard J. Lee,et al. Circulating tumour cells—monitoring treatment response in prostate cancer , 2014, Nature Reviews Clinical Oncology.
[31] Mustafa Sarimollaoglu,et al. Synergy of photoacoustic and fluorescence flow cytometry of circulating cells with negative and positive contrasts , 2013, Journal of biophotonics.
[32] Songqin Liu,et al. A high-throughput homogeneous immunoassay based on Förster resonance energy transfer between quantum dots and gold nanoparticles. , 2013, Analytica chimica acta.
[33] M. Yáñez-Mó,et al. Development of a rapid lateral flow immunoassay test for detection of exosomes previously enriched from cell culture medium and body fluids , 2016, Journal of extracellular vesicles.
[34] B. Lim,et al. Enrichment, detection and clinical significance of circulating tumor cells. , 2013, Lab on a chip.
[35] V. Zharov,et al. Circulating tumor cell identification by functionalized silver-gold nanorods with multicolor, super-enhanced SERS and photothermal resonances , 2014, Scientific Reports.
[36] J. Rak,et al. Microvesicles as mediators of intercellular communication in cancer—the emerging science of cellular ‘debris’ , 2011, Seminars in Immunopathology.
[37] D. Hoon,et al. Diagnostic and prognostic value of circulating tumor-related DNA in cancer patients , 2013, Expert review of molecular diagnostics.
[38] R. Setterquist,et al. Exosomes: current knowledge of their composition, biological functions, and diagnostic and therapeutic potentials. , 2012, Biochimica et biophysica acta.
[39] Matthew O'Donnell,et al. Trapping and photoacoustic detection of CTCs at the single cell per milliliter level with magneto-optical coupled nanoparticles. , 2013, Small.
[40] Dingbin Liu,et al. Glucose Oxidase-Catalyzed Growth of Gold Nanoparticles Enables Quantitative Detection of Attomolar Cancer Biomarkers , 2014, Analytical chemistry.
[41] Chad A Mirkin,et al. Bio-bar-code-based DNA detection with PCR-like sensitivity. , 2004, Journal of the American Chemical Society.
[42] R. Dasari,et al. Surface-enhanced Raman scattering and biophysics , 2001 .
[43] V. Valero,et al. Comparison of assay methods for detection of circulating tumor cells in metastatic breast cancer: AdnaGen AdnaTest BreastCancer Select/Detect™ versus Veridex CellSearch™ system , 2012, International journal of cancer.
[44] Hongwei Wang,et al. Gold nanoparticle layer: a promising platform for ultra-sensitive cancer detection. , 2011, Langmuir : the ACS journal of surfaces and colloids.
[45] F. Saladino,et al. The amount and proteolytic content of vesicles shed by human cancer cell lines correlates with their in vitro invasiveness. , 1998, Anticancer research.
[46] M. Fleischhacker,et al. Circulating nucleic acids (CNAs) and cancer--a survey. , 2007, Biochimica et biophysica acta.
[47] H. Ju,et al. Ratiometric electrochemiluminescence detection of circulating tumor cells and cell-surface glycans , 2016 .
[48] Prashant K. Jain,et al. On the Universal Scaling Behavior of the Distance Decay of Plasmon Coupling in Metal Nanoparticle Pairs: A Plasmon Ruler Equation , 2007 .
[49] S. Dawson,et al. Circulating tumor cells and circulating tumor DNA for precision medicine: dream or reality? , 2014, Annals of oncology : official journal of the European Society for Medical Oncology.
[50] D. Bigner,et al. Proteomic and immunologic analyses of brain tumor exosomes , 2009, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[51] Jing Wang,et al. Near-Infrared Light-Responsive Hydrogel for Specific Recognition and Photothermal Site-Release of Circulating Tumor Cells. , 2016, ACS nano.
[52] C. Mirkin,et al. Nanoparticle-Based Bio-Bar Codes for the Ultrasensitive Detection of Proteins , 2003, Science.
[53] F. O. Fackelmayer,et al. DNA fragments in the blood plasma of cancer patients: quantitations and evidence for their origin from apoptotic and necrotic cells. , 2001, Cancer research.
[54] Molly M Stevens,et al. Plasmonic ELISA for the ultrasensitive detection of disease biomarkers with the naked eye. , 2012, Nature nanotechnology.
[55] Jacopo Meldolesi,et al. Shedding microvesicles: artefacts no more. , 2009, Trends in cell biology.
[56] M. Otsuka,et al. Circulating RNAs as new biomarkers for detecting pancreatic cancer. , 2015, World journal of gastroenterology.
[57] R. G. Freeman,et al. SERS as a Foundation for Nanoscale, Optically Detected Biological Labels , 2007 .
[58] P. Zhang,et al. Novel nitrocellulose membrane substrate for efficient analysis of circulating tumor cells coupled with surface-enhanced Raman scattering imaging. , 2014, ACS applied materials & interfaces.
[59] Jean-Michel Friedt,et al. Prostate-specific antigen immunosensing based on mixed self-assembled monolayers, camel antibodies and colloidal gold enhanced sandwich assays. , 2005, Biosensors & bioelectronics.
[60] Chad A Mirkin,et al. Nanostructures in biodiagnostics. , 2005, Chemical reviews.
[61] J. Nesland,et al. Immunocytochemical detection of isolated epithelial cells in bone marrow: non‐specific staining and contribution by plasma cells directly reactive to alkaline phosphatase , 1998, The Journal of pathology.
[62] Geertruida A. Posthuma-Trumpie,et al. Lateral flow (immuno)assay: its strengths, weaknesses, opportunities and threats. A literature survey , 2009, Analytical and bioanalytical chemistry.
[63] Y. Gho,et al. Circulating Extracellular Vesicles in Cancer Diagnosis and Monitoring , 2013, Molecular Diagnosis & Therapy.
[64] H. Geuze,et al. Exosome: from internal vesicle of the multivesicular body to intercellular signaling device. , 2000, Journal of cell science.
[65] P. Massion,et al. Investigation of complement activation product c4d as a diagnostic and prognostic biomarker for lung cancer. , 2013, Journal of the National Cancer Institute.
[66] Rong-Fong Shen,et al. Identification and proteomic profiling of exosomes in human urine. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[67] Paloma Martin,et al. Extracellular Tumor-Related mRNA in Plasma of Lymphoma Patients and Survival Implications , 2009, PloS one.
[68] Luis M Liz-Marzán,et al. Plasmonic nanosensors with inverse sensitivity by means of enzyme-guided crystal growth. , 2018, Nature materials.
[69] Rong Chen,et al. Colorectal cancer detection by gold nanoparticle based surface-enhanced Raman spectroscopy of blood serum and statistical analysis. , 2011, Optics express.
[70] Na Li,et al. Anisotropic gold nanoparticles: synthesis, properties, applications, and toxicity. , 2014, Angewandte Chemie.
[71] A. Nitzan,et al. Spectroscopic properties of molecules interacting with small dielectric particles , 1981 .
[72] Sang Jun Sim,et al. Nanoplasmonic biosensor: detection and amplification of dual bio-signatures of circulating tumor DNA. , 2015, Biosensors & bioelectronics.
[73] Younan Xia,et al. Shape-Controlled Synthesis and Surface Plasmonic Properties of Metallic Nanostructures , 2005 .
[74] Xiaoru Wang,et al. Amplified detection of protein cancer biomarkers using DNAzyme functionalized nanoprobes. , 2009, Chemical communications.
[75] M. He,et al. Gold nanoparticles labeling with hybridization chain reaction amplification strategy for the sensitive detection of HepG2 cells by inductively coupled plasma mass spectrometry. , 2016, Biosensors & bioelectronics.
[76] He Zhang,et al. Microfluidic bead-based multienzyme-nanoparticle amplification for detection of circulating tumor cells in the blood using quantum dots labels. , 2013, Analytica chimica acta.
[77] David M. Rissin,et al. Single-Molecule enzyme-linked immunosorbent assay detects serum proteins at subfemtomolar concentrations , 2010, Nature Biotechnology.
[78] Ekaterina I. Galanzha,et al. Circulating Tumor Cell Detection and Capture by Photoacoustic Flow Cytometry in Vivo and ex Vivo , 2013, Cancers.
[79] V. Heinemann,et al. Serum HER2 in combination with CA 15-3 as a parameter for prognosis in patients with early breast cancer. , 2015, Clinica chimica acta; international journal of clinical chemistry.
[80] G. Doyle,et al. Significance of Circulating Tumor Cells Detected by the CellSearch System in Patients with Metastatic Breast Colorectal and Prostate Cancer , 2009, Journal of oncology.
[81] Yong-Hark Jang,et al. Ultra-sensitive surface plasmon resonance based immunosensor for prostate-specific antigen using gold nanoparticle–antibody complex , 2008 .
[82] R. V. Van Duyne,et al. Localized surface plasmon resonance spectroscopy and sensing. , 2007, Annual review of physical chemistry.
[83] T. Gronewold,et al. A nanostructured SAW chip-based biosensor detecting cancer cells , 2012 .
[84] Mikael Käll,et al. Plasmon-enhanced colorimetric ELISA with single molecule sensitivity. , 2011, Nano letters.
[85] K. Pienta,et al. Circulating Tumor Cells Predict Survival Benefit from Treatment in Metastatic Castration-Resistant Prostate Cancer , 2008, Clinical Cancer Research.
[86] Frank Diehl,et al. Detection and quantification of mutations in the plasma of patients with colorectal tumors. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[87] Xiaoyuan Chen,et al. Gold Nanoparticles for In Vitro Diagnostics. , 2015, Chemical reviews.
[88] H. Chiang,et al. Monitoring Cluster Ions Derived from Aptamer-Modified Gold Nanofilms under Laser Desorption/Ionization for the Detection of Circulating Tumor Cells. , 2015, ACS applied materials & interfaces.
[89] M. Calleja,et al. Detection of cancer biomarkers in serum using a hybrid mechanical and optoplasmonic nanosensor. , 2014, Nature nanotechnology.
[90] Chad A Mirkin,et al. NanoFlares for the detection, isolation, and culture of live tumor cells from human blood , 2014, Proceedings of the National Academy of Sciences.
[91] T. Mayer,et al. Nanoresonator chip-based RNA sensor strategy for detection of circulating tumor cells: response using PCA3 as a prostate cancer marker. , 2012, Nanomedicine : nanotechnology, biology, and medicine.
[92] Jonathan W. Uhr,et al. Tumor Cells Circulate in the Peripheral Blood of All Major Carcinomas but not in Healthy Subjects or Patients With Nonmalignant Diseases , 2004, Clinical Cancer Research.
[93] Sanjay R. Mishra,et al. Capture and detection of cancer cells in whole blood with magnetic-optical nanoovals. , 2014, Nanomedicine.
[94] M. Yigit,et al. Reprogrammable multiplexed detection of circulating oncomiRs using hybridization chain reaction. , 2016, Chemical communications.
[95] E. Coronado,et al. The Optical Properties of Metal Nanoparticles: The Influence of Size, Shape, and Dielectric Environment , 2003 .
[96] Xingyu Jiang,et al. Copper-mediated amplification allows readout of immunoassays by the naked eye. , 2011, Angewandte Chemie.
[97] Magdalena Swierczewska,et al. The design and application of fluorophore-gold nanoparticle activatable probes. , 2011, Physical chemistry chemical physics : PCCP.
[98] Paolo Bergese,et al. Colorimetric nanoplasmonic assay to determine purity and titrate extracellular vesicles. , 2015, Analytical chemistry.
[99] C. Mirkin,et al. Homogeneous, Nanoparticle-Based Quantitative Colorimetric Detection of Oligonucleotides , 2000 .
[100] G. Raposo,et al. Extracellular vesicles shuffling intercellular messages: for good or for bad. , 2015, Current opinion in cell biology.
[101] O. Slabý,et al. Circulating miRNAs as new blood-based biomarkers for solid cancers. , 2013, Future oncology.
[102] M. Tatsuta,et al. Carcinoembryonic antigen in gastric juice as an aid in diagnosis of early gastric cancer , 1980, Cancer.
[103] M. He,et al. Simultaneous detection of MCF-7 and HepG2 cells in blood by ICP-MS with gold nanoparticles and quantum dots as elemental tags. , 2017, Biosensors & bioelectronics.
[104] Younan Xia,et al. Gold Nanomaterials at Work in Biomedicine. , 2015, Chemical reviews.
[105] S. Leung,et al. Analysis of cell-free Epstein-Barr virus associated RNA in the plasma of patients with nasopharyngeal carcinoma. , 1999, Clinical chemistry.
[106] Yuzhong Zhang,et al. Simultaneous electrochemical detection of multiple biomarkers using gold nanoparticles decorated multiwall carbon nanotubes as signal enhancers. , 2015, Analytical biochemistry.
[107] Zufang Huang,et al. Nasopharyngeal cancer detection based on blood plasma surface-enhanced Raman spectroscopy and multivariate analysis. , 2010, Biosensors & bioelectronics.
[108] S. Aliño,et al. Cell-Free Circulating Plasma hTERT mRNA Is a Useful Marker for Prostate Cancer Diagnosis and Is Associated with Poor Prognosis Tumor Characteristics , 2012, PloS one.
[109] M. Natan,et al. Surface-enhanced Raman scattering tags for rapid and homogeneous detection of circulating tumor cells in the presence of human whole blood. , 2008, Journal of the American Chemical Society.
[110] J. García,et al. Free circulating mRNA in plasma from breast cancer patients and clinical outcome. , 2008, Cancer letters.
[111] Yongmei Yin,et al. Colorimetric Immunoassay for Detection of Tumor Markers , 2010, International journal of molecular sciences.
[112] Hongjie Dai,et al. Plasmonic substrates for multiplexed protein microarrays with femtomolar sensitivity and broad dynamic range. , 2011, Nature communications.
[113] P. V. van Dam,et al. Circulating tumour cell detection: a direct comparison between the CellSearch System, the AdnaTest and CK-19/mammaglobin RT–PCR in patients with metastatic breast cancer , 2009, British Journal of Cancer.
[114] Giuliano Mazzini,et al. Isolation of rare circulating tumor cells in cancer patients: technical aspects and clinical implications , 2011, Expert review of molecular diagnostics.
[115] Gang Liu,et al. High-sensitivity nanosensors for biomarker detection. , 2012, Chemical Society reviews.
[116] Junjie Yao,et al. Photoacoustic tomography: fundamentals, advances and prospects. , 2011, Contrast media & molecular imaging.
[117] M. Incoronato,et al. Usefulness of Traditional Serum Biomarkers for Management of Breast Cancer Patients , 2013, BioMed research international.
[118] James W. Clancy,et al. Tumor-derived microvesicles: shedding light on novel microenvironment modulators and prospective cancer biomarkers. , 2012, Genes & development.
[119] Joseph R Lakowicz,et al. Radiative decay engineering 5: metal-enhanced fluorescence and plasmon emission. , 2005, Analytical biochemistry.
[120] Yuri L Lyubchenko,et al. Nano-immunoassay with improved performance for detection of cancer biomarkers. , 2015, Nanomedicine : nanotechnology, biology, and medicine.
[121] S. Barnhill,et al. CA 125: The past and the Future , 1998, The International journal of biological markers.
[122] Jaebum Choo,et al. Simultaneous immunoassay for the detection of two lung cancer markers using functionalized SERS nanoprobes. , 2011, Chemical communications.
[123] Mostafa Azimzadeh,et al. An electrochemical nanobiosensor for plasma miRNA-155, based on graphene oxide and gold nanorod, for early detection of breast cancer. , 2016, Biosensors & bioelectronics.
[124] Benjamin S. Goldschmidt,et al. Gold nanoparticle-mediated detection of circulating cancer cells. , 2012, Clinics in laboratory medicine.
[125] Guonan Chen,et al. Ultrasensitive detection of Cu2|[plus]| with the naked eye and application in immunoassays , 2012 .
[126] C. Rao,et al. Optimization of ferrofluids and protocols for the enrichment of breast tumor cells in blood , 2001 .
[127] P. Baptista,et al. Gold Nanoparticles for DNA/RNA-Based Diagnostics , 2015, Handbook of Nanoparticles.
[128] S. Srivastava,et al. Core–shell gold–silver nanoparticles based impedimetric immunosensor for cancer antigen CA125 , 2015 .
[129] Mustafa Sarimollaoglu,et al. Photoacoustic and photothermal detection of circulating tumor cells, bacteria and nanoparticles in cerebrospinal fluid in vivo and ex vivo , 2013, Journal of biophotonics.
[130] Remy Cromer,et al. SERS nanoparticles: a new optical detection modality for cancer diagnosis. , 2007, Nanomedicine.
[131] Ximei Qian,et al. Detection of circulating tumor cells in human peripheral blood using surface-enhanced Raman scattering nanoparticles. , 2011, Cancer research.
[132] Fanggui Ye,et al. Highly sensitive immunoassay of carcinoembryonic antigen by capillary electrophoresis with gold nanoparticles amplified chemiluminescence detection. , 2013, Journal of chromatography. A.
[133] M. El-Sayed,et al. Gold and silver nanoparticles in sensing and imaging: sensitivity of plasmon response to size, shape, and metal composition. , 2006, The journal of physical chemistry. B.
[134] Hong Chen,et al. Aptamer-modified micro/nanostructured surfaces: efficient capture of Ramos cells in serum environment. , 2013, ACS applied materials & interfaces.
[135] J. Choo,et al. Highly sensitive immunoassay of lung cancer marker carcinoembryonic antigen using surface-enhanced Raman scattering of hollow gold nanospheres. , 2009, Analytical chemistry.
[136] Tosifusa Toda,et al. Proteomic analysis of two types of exosomes in human whole saliva. , 2011, Biological & pharmaceutical bulletin.
[137] Benjamin S. Goldschmidt,et al. Gold nanoparticle mediated detection of prostate cancer cells using photoacoustic flowmetry with optical reflectance. , 2010, Journal of biomedical nanotechnology.
[138] Greg L Perkins,et al. Serum tumor markers. , 2003, American family physician.
[139] C. Murphy,et al. Quantitation of metal content in the silver-assisted growth of gold nanorods. , 2006, The journal of physical chemistry. B.
[140] Yildiz Uludag,et al. Cancer biomarker detection in serum samples using surface plasmon resonance and quartz crystal microbalance sensors with nanoparticle signal amplification. , 2012, Analytical chemistry.
[141] Valery V Tuchin,et al. In vivo photoacoustic flow cytometry for monitoring of circulating single cancer cells and contrast agents. , 2006, Optics letters.
[142] Edward S. Kim,et al. Gefitinib versus docetaxel in previously treated non-small-cell lung cancer (INTEREST): a randomised phase III trial , 2008, The Lancet.
[143] Mojtaba Shamsipur,et al. Title: A novel antibody–antigen based impedimetric immunosensor for low level detection of HER2 in serum samples of breast cancer patients via modification of a gold , 2015 .
[144] A. Danesh,et al. Techniques for the analysis of extracellular vesicles using flow cytometry. , 2015, Journal of visualized experiments : JoVE.
[145] Hui Chen,et al. A one-step homogeneous immunoassay for cancer biomarker detection using gold nanoparticle probes coupled with dynamic light scattering. , 2008, Journal of the American Chemical Society.
[146] A. Trifonov,et al. Biosensor based on a silicon nanowire field-effect transistor functionalized by gold nanoparticles for the highly sensitive determination of prostate specific antigen. , 2017, Biosensors & bioelectronics.
[147] Frantisek Svec,et al. Molecularly imprinted plasmonic nanosensor for selective SERS detection of protein biomarkers. , 2016, Biosensors & bioelectronics.
[148] H. Groen,et al. Circulating tumor cells in small-cell lung cancer: a predictive and prognostic factor. , 2012, Annals of oncology : official journal of the European Society for Medical Oncology.
[149] Jimin Liang,et al. Cell-free circulating tumor DNA in cancer , 2016, Chinese journal of cancer.
[150] L. Kwak,et al. Detection of tumor messenger RNA in the serum of patients with malignant melanoma. , 1999, Clinical cancer research : an official journal of the American Association for Cancer Research.
[151] Vladimir P Zharov,et al. In vivo, noninvasive, label-free detection and eradication of circulating metastatic melanoma cells using two-color photoacoustic flow cytometry with a diode laser. , 2009, Cancer research.
[152] Klaus Pantel,et al. [The circulating tumor cells: liquid biopsy of cancer]. , 2014, Klinicheskaia laboratornaia diagnostika.
[153] A. Wu,et al. Improved SERS Nanoparticles for Direct Detection of Circulating Tumor Cells in the Blood. , 2015, ACS applied materials & interfaces.
[154] Rong Chen,et al. Gastric cancer detection based on blood plasma surface-enhanced Raman spectroscopy excited by polarized laser light. , 2011, Biosensors & bioelectronics.
[155] Chad A. Mirkin,et al. Programmed Materials Synthesis with DNA. , 1999, Chemical reviews.
[156] Chad A Mirkin,et al. Maximizing DNA loading on a range of gold nanoparticle sizes. , 2006, Analytical chemistry.
[157] S. Goodman,et al. Circulating mutant DNA to assess tumor dynamics , 2008, Nature Medicine.
[158] Rong Chen,et al. Label-free blood plasma test based on surface-enhanced Raman scattering for tumor stages detection in nasopharyngeal cancer , 2014, Scientific Reports.
[159] Chad A Mirkin,et al. Multiplexed detection of protein cancer markers with biobarcoded nanoparticle probes. , 2006, Journal of the American Chemical Society.
[160] A. Möller,et al. Optimized exosome isolation protocol for cell culture supernatant and human plasma , 2015, Journal of extracellular vesicles.
[161] T. Fehm,et al. Changing levels of circulating tumor cells in monitoring chemotherapy response in patients with metastatic breast cancer. , 2011, Anticancer research.
[162] Martin Pumera,et al. Electrochemical nanobiosensors , 2007 .
[163] A. Wark,et al. Attomolar detection of protein biomarkers using biofunctionalized gold nanorods with surface plasmon resonance. , 2010, The Analyst.
[164] Longhua Guo,et al. Direct visualization of sub-femtomolar circulating microRNAs in serum based on the duplex-specific nuclease-amplified oriented assembly of gold nanoparticle dimers. , 2016, Chemical communications.
[165] M. Porter,et al. Femtomolar detection of prostate-specific antigen: an immunoassay based on surface-enhanced Raman scattering and immunogold labels. , 2003, Analytical chemistry.
[166] Johan Skog,et al. Glioblastoma microvesicles transport RNA and protein that promote tumor growth and provide diagnostic biomarkers , 2008, Nature Cell Biology.
[167] W. Zacharias,et al. Exosome isolation for proteomic analyses and RNA profiling. , 2011, Methods in molecular biology.
[168] J. Hafner,et al. Localized surface plasmon resonance sensors. , 2011, Chemical reviews.
[169] Jeho Park,et al. Surface Plasmon Resonance: A Versatile Technique for Biosensor Applications , 2015, Sensors.
[170] Mir F Mousavi,et al. Electrochemical aptamer/antibody based sandwich immunosensor for the detection of EGFR, a cancer biomarker, using gold nanoparticles as a signaling probe. , 2015, Biosensors & bioelectronics.
[171] S. Mathivanan,et al. Exosomes: extracellular organelles important in intercellular communication. , 2010, Journal of proteomics.
[172] J. Justin Gooding,et al. Single Nanoparticle Plasmonic Sensors , 2015, Sensors.
[173] Sanjiv S. Gambhir,et al. Multiplexed imaging of surface enhanced Raman scattering nanotags in living mice using noninvasive Raman spectroscopy , 2009, Proceedings of the National Academy of Sciences.
[174] Lucas A Lane,et al. SERS Nanoparticles in Medicine: From Label-Free Detection to Spectroscopic Tagging. , 2015, Chemical reviews.
[175] Steven R. Emory,et al. Probing Single Molecules and Single Nanoparticles by Surface-Enhanced Raman Scattering , 1997, Science.
[176] I. McKelvie,et al. Colorimetric detection based on localised surface plasmon resonance of gold nanoparticles: Merits, inherent shortcomings and future prospects. , 2016, Talanta.
[177] V. Bobek,et al. Essentials of circulating tumor cells for clinical research and practice. , 2013, Critical reviews in oncology/hematology.
[178] Wanwan Li,et al. Gold nanoparticles for photoacoustic imaging. , 2015, Nanomedicine.
[179] A. Guha,et al. Intercellular transfer of the oncogenic receptor EGFRvIII by microvesicles derived from tumour cells , 2008, Nature Cell Biology.
[180] George A Calin,et al. Cancer exosomes perform cell-independent microRNA biogenesis and promote tumorigenesis. , 2014, Cancer cell.
[181] J. Homola. Surface plasmon resonance sensors for detection of chemical and biological species. , 2008, Chemical reviews.
[182] Robert B Livingston,et al. Circulating tumor cells and response to chemotherapy in metastatic breast cancer: SWOG S0500. , 2014, Journal of clinical oncology : official journal of the American Society of Clinical Oncology.
[183] Jianlong Zhao,et al. Novel colorimetric enzyme immunoassay for the detection of carcinoembryonic antigen. , 2010, Talanta.
[184] Sang Jun Sim,et al. A new method for non-labeling attomolar detection of diseases based on an individual gold nanorod immunosensor. , 2011, Lab on a chip.
[185] Kit S. Lam,et al. A Serum Glycomics Approach to Breast Cancer Biomarkers*S , 2007, Molecular & Cellular Proteomics.
[186] J. Xiang,et al. A simple and sensitive impedimetric aptasensor for the detection of tumor markers based on gold nanoparticles signal amplification. , 2015, Talanta.
[187] Erik C. Dreaden,et al. The Golden Age: Gold Nanoparticles for Biomedicine , 2012 .
[188] Matt Trau,et al. Simple, Sensitive and Accurate Multiplex Detection of Clinically Important Melanoma DNA Mutations in Circulating Tumour DNA with SERS Nanotags , 2016, Theranostics.
[189] Vladimir P. Zharov,et al. Ultrasharp nonlinear photothermal and photoacoustic resonances and holes beyond the spectral limit , 2011, Nature photonics.
[190] T. Ørntoft,et al. Evaluation of two commercial global miRNA expression profiling platforms for detection of less abundant miRNAs , 2011, BMC Genomics.
[191] N. Wu,et al. Three-dimensional hierarchical plasmonic nano-architecture enhanced surface-enhanced Raman scattering immunosensor for cancer biomarker detection in blood plasma. , 2013, ACS nano.
[192] J. Vörös,et al. Electrochemical Biosensors - Sensor Principles and Architectures , 2008, Sensors.
[193] Sarit S. Agasti,et al. Gold nanoparticles in chemical and biological sensing. , 2012, Chemical reviews.
[194] Graça Raposo,et al. Exosomal-like vesicles are present in human blood plasma. , 2005, International immunology.
[195] Jing Wang,et al. Colorimetric multiplexed immunoassay for sequential detection of tumor markers. , 2009, Biosensors & bioelectronics.
[196] Robert A. Weinberg,et al. Tumor Metastasis: Molecular Insights and Evolving Paradigms , 2011, Cell.
[197] K. Grattan,et al. Comparison of Surface Plasmon Resonance and Localized Surface Plasmon Resonance-based optical fibre sensors , 2011 .
[198] Y. P. Bao,et al. Detection of protein analytes via nanoparticle-based bio bar code technology. , 2006, Analytical chemistry.
[199] R. Rosell,et al. Real-time liquid biopsies become a reality in cancer treatment. , 2015, Annals of translational medicine.
[200] Diederick E Grobbee,et al. Searching for early breast cancer biomarkers by serum protein profiling of pre-diagnostic serum; a nested case-control study , 2011, BMC Cancer.
[201] Peter Ulz,et al. Circulating tumor DNA as a liquid biopsy for cancer. , 2015, Clinical chemistry.
[202] D. Reinhoudt,et al. Fluorescence quenching of dye molecules near gold nanoparticles: radiative and nonradiative effects. , 2002, Physical review letters.
[203] Jacob Kennedy,et al. Detection of elevated plasma levels of epidermal growth factor receptor before breast cancer diagnosis among hormone therapy users. , 2010, Cancer research.
[204] Mukesh Verma,et al. Extracellular vesicles: potential applications in cancer diagnosis, prognosis, and epidemiology , 2015, BMC Clinical Pathology.
[205] M. Imamura,et al. Identification of carcinoembryonic antigen mRNA in circulating peripheral blood of pancreatic carcinoma and gastric carcinoma patients. , 1996, Life sciences.
[206] Johan Skog,et al. Liquid biopsy for cancer screening, patient stratification and monitoring , 2018 .
[207] Graça Raposo,et al. Extracellular vesicles: Exosomes, microvesicles, and friends , 2013, The Journal of cell biology.
[208] Peter Nordlander,et al. A single molecule immunoassay by localized surface plasmon resonance , 2010, Nanotechnology.
[209] R. Eils,et al. Systemic spread is an early step in breast cancer. , 2008, Cancer cell.
[210] R. Cappai,et al. Packaging of prions into exosomes is associated with a novel pathway of PrP processing , 2007, The Journal of pathology.
[211] J. Vadgama,et al. The Clinical Utilization of Circulating Cell Free DNA (CCFDNA) in Blood of Cancer Patients , 2013, International journal of molecular sciences.
[212] L. Diaz,et al. Liquid biopsies: genotyping circulating tumor DNA. , 2014, Journal of clinical oncology : official journal of the American Society of Clinical Oncology.
[213] Arben Merkoçi,et al. Simple monitoring of cancer cells using nanoparticles. , 2012, Nano letters.
[214] John A Viator,et al. Automated wavelet denoising of photoacoustic signals for circulating melanoma cell detection and burn image reconstruction , 2008, Physics in medicine and biology.
[215] Robert L Moritz,et al. Exosomes: proteomic insights and diagnostic potential , 2009, Expert review of proteomics.
[216] Thomas Kelly,et al. In vivo magnetic enrichment and multiplex photoacoustic detection of circulating tumour cells. , 2009, Nature nanotechnology.
[217] Kinam Kim,et al. Full surface embedding of gold clusters on silicon nanowires for efficient capture and photothermal therapy of circulating tumor cells. , 2012, Nano letters.
[218] Bert Vogelstein,et al. DETECTION OF CIRCULATING TUMOR DNA IN EARLY AND LATE STAGE HUMAN MALIGNANCIES , 2014 .
[219] M. Yáñez-Mó,et al. Point-of-care detection of extracellular vesicles: Sensitivity optimization and multiple-target detection. , 2017, Biosensors & bioelectronics.
[220] S. Pomeroy,et al. Tumour microvesicles contain retrotransposon elements and amplified oncogene sequences. , 2011, Nature communications.
[221] Chad A Mirkin,et al. Microarray-based multiplexed scanometric immunoassay for protein cancer markers using gold nanoparticle probes. , 2009, Analytical chemistry.
[222] V. Pirro,et al. Tumor Cell Detection by Mass Spectrometry Using Signal Ion Emission Reactive Release Amplification. , 2016, Analytical chemistry.
[223] Naomi J Halas,et al. Theranostic nanoshells: from probe design to imaging and treatment of cancer. , 2011, Accounts of chemical research.