AuNPs and 2D functional nanomaterial-assisted SPR development for the cancer detection: a critical review
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C. Chen | Kaifei Wang | Chen Chen | Lei Luo
[1] V. Srivastava,et al. Advances in Surface Plasmon Resonance-Based Biosensor Technologies for Cancer Cell Detection , 2022, International Journal of Optics.
[2] Jie Zhou,et al. Passively and actively enhanced surface plasmon resonance sensing strategies towards single molecular detection , 2022, Nano Research.
[3] Hongxia Chen,et al. A simple and direct SPR platform combining three-in-one multifunctional peptides for ultra-sensitive detection of PD-L1 exosomes , 2021 .
[4] Deepak Kukkar,et al. Advances in surface plasmon resonance-based biosensor technologies for cancer biomarker detection. , 2021, Biosensors & bioelectronics.
[5] S. Nangare,et al. Black Phosphorus Nanostructure Based Highly Sensitive and Selective Surface Plasmon Resonance Sensor for Biological and Chemical Sensing: A Review , 2021, Critical reviews in analytical chemistry.
[6] S. Mutalik,et al. Surface architectured black phosphorous nanoconstructs based smart and versatile platform for cancer theranostics , 2021 .
[7] A. Jemal,et al. Global Cancer Statistics 2020: GLOBOCAN Estimates of Incidence and Mortality Worldwide for 36 Cancers in 185 Countries , 2021, CA: a cancer journal for clinicians.
[8] X. Hou,et al. A Novel Hybrid Plasmonic Resonator With High Quality Factor and Large Free Spectral Range , 2021, IEEE Sensors Journal.
[9] A. Jemal,et al. Cancer Statistics, 2021 , 2021, CA: a cancer journal for clinicians.
[10] J. L. Hueso,et al. Recent Advances in the Design and Photocatalytic Enhanced Performance of Gold Plasmonic Nanostructures Decorated with Non-Titania Based Semiconductor Hetero-Nanoarchitectures , 2020, Catalysts.
[11] Nan-Fu Chiu,et al. Exploring Graphene and MoS2 Chips Based Surface Plasmon Resonance Biosensors for Diagnostic Applications , 2020, Frontiers in Chemistry.
[12] Kun Zhang,et al. Non-invasive early detection of cancer four years before conventional diagnosis using a blood test , 2020, Nature Communications.
[13] Erratum: Global cancer statistics 2018: GLOBOCAN estimates of incidence and mortality worldwide for 36 cancers in 185 countries. , 2020, CA: a cancer journal for clinicians.
[14] P. Chu,et al. Sensitive and selective ctDNA detection based on functionalized black phosphorus nanosheets. , 2020, Biosensors & bioelectronics.
[15] Nan-Fu Chiu,et al. High-Sensitivity Detection of the Lung Cancer Biomarker CYFRA21-1 in Serum Samples Using a Carboxyl-MoS2 Functional Film for SPR-Based Immunosensors , 2020, Frontiers in Bioengineering and Biotechnology.
[16] A. Jemal,et al. Colorectal cancer statistics, 2020 , 2020, CA: a cancer journal for clinicians.
[17] Hongxia Chen,et al. Triple-enhanced surface plasmon resonance spectroscopy based on cell membrane and folic acid functionalized gold nanoparticles for dual-selective circulating tumor cell sensing , 2020, Sensors and Actuators B: Chemical.
[18] Chen Chen,et al. Optical biosensors: an exhaustive and comprehensive review. , 2020, The Analyst.
[19] Chao Di,et al. U1 snRNP regulates cancer cell migration and invasion in vitro , 2020, Nature Communications.
[20] Leiming Wu,et al. Theoretical Investigation of Multilayer Ti3C2Tx MXene as the Plasmonic Material for Surface Plasmon Resonance Sensors in Near Infrared Region , 2019, IEEE Sensors Journal.
[21] Banshi D Gupta,et al. Carbon-Based Nanomaterials for Plasmonic Sensors: A Review , 2019, Sensors.
[22] R. Lothe,et al. Biomarker-guided therapy for colorectal cancer: strength in complexity , 2019, Nature Reviews Clinical Oncology.
[23] Nan-Fu Chiu,et al. High-affinity carboxyl-graphene oxide-based SPR aptasensor for the detection of hCG protein in clinical serum samples , 2019, International journal of nanomedicine.
[24] Paulo P. Freitas,et al. Functionalization of single-layer graphene for immunoassays , 2019, Applied Surface Science.
[25] Kemin Wang,et al. Direct quantification of cancerous exosomes via surface plasmon resonance with dual gold nanoparticle-assisted signal amplification. , 2019, Biosensors & bioelectronics.
[26] U. Tiwari,et al. Two-dimensional transition metal dichalcogenides assisted biofunctionalized optical fiber SPR biosensor for efficient and rapid detection of bovine serum albumin , 2019, Scientific Reports.
[27] Lianhui Wang,et al. Efficient biofunctionalization of MoS2 nanosheets with peptides as intracellular fluorescent biosensor for sensitive detection of caspase-3 activity. , 2019, Journal of colloid and interface science.
[28] M. Guardia,et al. Recent advances on application of peptide nucleic acids as a bioreceptor in biosensors development , 2019, TrAC Trends in Analytical Chemistry.
[29] Chen Chen,et al. Design of a multi-analyte resonant photonic platform for label-free biosensing , 2019, Nanotechnology.
[30] W. Zhou,et al. Targeted Fe-doped silica nanoparticles as a novel ultrasound–magnetic resonance dual-mode imaging contrast agent for HER2-positive breast cancer , 2019, International journal of nanomedicine.
[31] Woong Choi,et al. Sensitivity and Stability Enhancement of Surface Plasmon Resonance Biosensors based on a Large-Area Ag/MoS2 Substrate , 2019, Sensors.
[32] Sayeed A. Mohammad,et al. C–C Coupling Reactions Catalyzed by Gold Nanoparticles: Evidence for Substrate-Mediated Leaching of Surface Atoms Using Localized Surface Plasmon Resonance Spectroscopy , 2019, The Journal of Physical Chemistry C.
[33] S. Lockwood,et al. Ovarian Cancer: An Integrated Review. , 2019, Seminars in oncology nursing.
[34] Prashanth Rawla,et al. Epidemiology of Prostate Cancer , 2019, World journal of oncology.
[35] J. Neaton,et al. Non-chemisorbed gold–sulfur binding prevails in self-assembled monolayers , 2019, Nature Chemistry.
[36] S. Xie,et al. SERS-based cascade amplification bioassay protocol of miRNA-21 by using sandwich structure with biotin-streptavidin system. , 2019, The Analyst.
[37] Mati-ur-Rehman,et al. Early detection of lung cancer biomarkers through biosensor technology: A review , 2019, Journal of pharmaceutical and biomedical analysis.
[38] pYoshiaki Omurap. Non-invasive, early detection of cancers using 3 different methods and safe, effective, individualized treatment of various cancers & their metastases using optimal dose of Vitamin D3 combined with selective drug uptake enhancement method, thymus gland representation area stimulation , 2019 .
[39] Yuanhui Sun,et al. Ultrasensitive detection of miRNA with an antimonene-based surface plasmon resonance sensor , 2019, Nature Communications.
[40] B. Kennedy,et al. Strain Tensor Imaging in Compression Optical Coherence Elastography , 2019, IEEE Journal of Selected Topics in Quantum Electronics.
[41] M. Hedström,et al. Antibody immobilization strategy for the development of a capacitive immunosensor detecting zearalenone. , 2019, Talanta.
[42] Yuting Zhao,et al. Few-layer Ti3C2Tx MXene: A promising surface plasmon resonance biosensing material to enhance the sensitivity , 2018, Sensors and Actuators B: Chemical.
[43] Minghua Wang,et al. Bifunctional aptasensor based on novel two-dimensional nanocomposite of MoS2 quantum dots and g-C3N4 nanosheets decorated with chitosan-stabilized Au nanoparticles for selectively detecting prostate specific antigen. , 2018, Analytica chimica acta.
[44] Dingding Yang,et al. Surface plasmon resonance biosensor for the accurate and sensitive quantification of O-GlcNAc based on cleavage by β-D-N-acetylglucosaminidase. , 2018, Analytica chimica acta.
[45] Kemin Wang,et al. Low-Fouling Surface Plasmon Resonance Sensor for Highly Sensitive Detection of MicroRNA in a Complex Matrix Based on the DNA Tetrahedron. , 2018, Analytical chemistry.
[46] T. Lin,et al. Affinity capture surface carboxyl-functionalized MoS2 sheets to enhance the sensitivity of surface plasmon resonance immunosensors. , 2018, Talanta.
[47] Jing Lin,et al. Two-dimensional transition metal carbides and nitrides (MXenes) for biomedical applications. , 2018, Chemical Society reviews.
[48] P. M. Krishna,et al. Label-free optical biosensors for food and biological sensor applications , 2018, Sensors and Actuators B: Chemical.
[49] Nan-Fu Chiu,et al. Highly sensitive carboxyl-graphene oxide-based surface plasmon resonance immunosensor for the detection of lung cancer for cytokeratin 19 biomarker in human plasma , 2018, Sensors and Actuators B: Chemical.
[50] J. Si,et al. Design of an integrated optics for transglutaminase conformational change , 2018, Nanotechnology Reviews.
[51] Arghya Narayan Banerjee,et al. Graphene and its derivatives as biomedical materials: future prospects and challenges , 2018, Interface Focus.
[52] Nongyue He,et al. Recent progresses in DNA nanostructure-based biosensors for detection of tumor markers. , 2018, Biosensors & bioelectronics.
[53] N. Mohandas. Function and dysfunction. , 2018, Blood.
[54] M. Muhammed,et al. Advances in nanotechnology for cancer biomarkers , 2018 .
[55] Han Lin,et al. Two-Dimensional Tantalum Carbide (MXenes) Composite Nanosheets for Multiple Imaging-Guided Photothermal Tumor Ablation. , 2017, ACS nano.
[56] Kemin Wang,et al. High sensitivity surface plasmon resonance biosensor for detection of microRNA based on gold nanoparticles-decorated molybdenum sulfide. , 2017, Analytica chimica acta.
[57] Kemin Wang,et al. High sensitivity surface plasmon resonance biosensor for detection of microRNA and small molecule based on graphene oxide-gold nanoparticles composites. , 2017, Talanta.
[58] Dianyuan Fan,et al. Broadband Nonlinear Optical Response in Few‐Layer Antimonene and Antimonene Quantum Dots: A Promising Optical Kerr Media with Enhanced Stability , 2017 .
[59] Yan Deng,et al. Mass spectrometry-assisted gel-based proteomics in cancer biomarker discovery: approaches and application , 2017, Theranostics.
[60] T. Lin,et al. Ultra-high sensitivity of the non-immunological affinity of graphene oxide-peptide-based surface plasmon resonance biosensors to detect human chorionic gonadotropin. , 2017, Biosensors & bioelectronics.
[61] Francesco Baldini,et al. Towards a Uniform Metrological Assessment of Grating-Based Optical Fiber Sensors: From Refractometers to Biosensors , 2017, Biosensors.
[62] M. Pumera,et al. 2D Monoelemental Arsenene, Antimonene, and Bismuthene: Beyond Black Phosphorus , 2017, Advanced materials.
[63] Zhijun Liu,et al. The Combination of the Tumor Markers Suggests the Histological Diagnosis of Lung Cancer , 2017, BioMed research international.
[64] A. Das,et al. Recent advances in biosensor development for the detection of cancer biomarkers. , 2017, Biosensors & bioelectronics.
[65] Jian Peng,et al. Sensitive Detection of Carcinoembryonic Antigen Using Stability-Limited Few-Layer Black Phosphorus as an Electron Donor and a Reservoir. , 2017, Small.
[66] R. Boukherroub,et al. Label-free femtomolar cancer biomarker detection in human serum using graphene-coated surface plasmon resonance chips. , 2017, Biosensors & bioelectronics.
[67] Nan-Fu Chiu,et al. Carboxyl-functionalized graphene oxide composites as SPR biosensors with enhanced sensitivity for immunoaffinity detection. , 2017, Biosensors & bioelectronics.
[68] Y. Gogotsi,et al. Defects in Monolayer Titanium Carbide (Ti 3 C 2 T x ) MXene , 2017 .
[69] L. Tang,et al. Comparison of four methods for the biofunctionalization of gold nanorods by the introduction of sulfhydryl groups to antibodies , 2017, Beilstein journal of nanotechnology.
[70] Kemin Wang,et al. Surface plasmon resonance biosensor for sensitive detection of microRNA and cancer cell using multiple signal amplification strategy. , 2017, Biosensors & bioelectronics.
[71] Salvador Barraza-Lopez,et al. Electronic and optical properties of strained graphene and other strained 2D materials: a review , 2016, Reports on progress in physics. Physical Society.
[72] C. Velasco‐Santos,et al. Graphene‐Based Materials Functionalization with Natural Polymeric Biomolecules , 2016 .
[73] R. Karlsson,et al. Evaluation of calibration-free concentration analysis provided by Biacore™ systems. , 2016, Analytical biochemistry.
[74] Kai Xiao,et al. Atomic Defects in Monolayer Titanium Carbide (Ti3C2Tx) MXene. , 2016, ACS nano.
[75] J. Švitel,et al. Optical biosensors , 2016, Essays in biochemistry.
[76] Andreas B. Dahlin,et al. Biosensing using plasmonic nanohole arrays with small, homogenous and tunable aperture diameters. , 2016, The Analyst.
[77] Xiaoli Liao,et al. Systematic Investigation of EDC/sNHS-Mediated Bioconjugation Reactions for Carboxylated Peptide Substrates. , 2016, Bioconjugate chemistry.
[78] Kemin Wang,et al. Graphene oxide-gold nanoparticles hybrids-based surface plasmon resonance for sensitive detection of microRNA. , 2016, Biosensors & bioelectronics.
[79] Carla Oliveira,et al. Evidence-Based Clinical Use of Nanoscale Extracellular Vesicles in Nanomedicine. , 2016, ACS nano.
[80] Deepali Sharma,et al. Insight into the biosensing of graphene oxide: Present and future prospects , 2016 .
[81] Zhen Zhao,et al. Enhancement of surface plasmon resonance signals using a MIP/GNPs/rGO nano-hybrid film for the rapid detection of ractopamine. , 2016, Biosensors & bioelectronics.
[82] S. Sen,et al. MicroRNA as Biomarkers and Diagnostics , 2016, Journal of cellular physiology.
[83] Zhiqiang Su,et al. Synthesis and sensor applications of MoS2-based nanocomposites. , 2015, Nanoscale.
[84] Yury V Stebunov,et al. Highly Sensitive and Selective Sensor Chips with Graphene-Oxide Linking Layer. , 2015, ACS applied materials & interfaces.
[85] A. E. Cetin,et al. Plasmonic Nanohole Arrays on Hybrid Substrate For Highly Sensitive Label-Free Biosensing , 2015 .
[86] Madan Dubey,et al. Beyond Graphene: Progress in Novel Two-Dimensional Materials and van der Waals Solids , 2015 .
[87] Aicheng Chen,et al. Au nanoparticle/graphene nanocomposite as a platform for the sensitive detection of NADH in human urine. , 2015, Biosensors & bioelectronics.
[88] Y. Zhong,et al. Scalable production of graphene via wet chemistry: progress and challenges , 2015 .
[89] Rajan Jha,et al. On the electric field enhancement and performance of SPR gas sensor based on graphene for visible and near infrared , 2015 .
[90] B. Hammock,et al. Development of a nanobody-alkaline phosphatase fusion protein and its application in a highly sensitive direct competitive fluorescence enzyme immunoassay for detection of ochratoxin A in cereal. , 2015, Analytical chemistry.
[91] Zhiqiang Cheng,et al. Plain silver surface plasmon resonance for microarray application. , 2015, Analytical chemistry.
[92] R. Lindquist,et al. An enhanced LSPR fiber-optic nanoprobe for ultrasensitive detection of protein biomarkers. , 2014, Biosensors & bioelectronics.
[93] Xiaowei Han,et al. Simultaneous electrochemical detection of multiple tumor markers using functionalized graphene nanocomposites as non-enzymatic labels , 2014 .
[94] Frank F Bier,et al. Integrated planar optical waveguide interferometer biosensors: a comparative review. , 2014, Biosensors & bioelectronics.
[95] Nan-Fu Chiu,et al. Sensitivity and kinetic analysis of graphene oxide-based surface plasmon resonance biosensors , 2014 .
[96] D. Ansell,et al. Graphene-protected copper and silver plasmonics , 2014, Scientific Reports.
[97] Sushanta K. Mitra,et al. Optimization and characterization of biomolecule immobilization on silicon substrates using (3-aminopropyl)triethoxysilane (APTES) and glutaraldehyde linker , 2014 .
[98] Zhenhua Ni,et al. Plasmons in graphene: Recent progress and applications , 2013, 1309.3654.
[99] Yanwen Jiang,et al. Decreased levels of serum cytokeratin 19 fragment CYFRA 21-1 predict objective response to chemotherapy in patients with non-small cell lung cancer , 2013, Experimental and therapeutic medicine.
[100] Sarah C. P. Williams. Circulating tumor cells , 2013, Proceedings of the National Academy of Sciences.
[101] David T Levy,et al. Chapter 15: Impact of Tobacco Control on Lung Cancer Mortality in the United States Over the Period 1975–2000—Summary and Limitations , 2012, Risk analysis : an official publication of the Society for Risk Analysis.
[102] Sarit S. Agasti,et al. Gold nanoparticles in chemical and biological sensing. , 2012, Chemical reviews.
[103] Mostafa A. El-Sayed,et al. The golden age: gold nanoparticles for biomedicine. , 2012, Chemical Society reviews.
[104] Hamid Cheshmi. Glioblastoma microvesicles transport RNA and proteins that promote tumour growth and provide diagnostic biomarkers , 2011 .
[105] Liangping Xia,et al. Sensitivity Enhancement for Surface Plasmon Resonance Imaging Biosensor by Utilizing Gold–Silver Bimetallic Film Configuration , 2011 .
[106] Dan Du,et al. Functionalized graphene oxide as a nanocarrier in a multienzyme labeling amplification strategy for ultrasensitive electrochemical immunoassay of phosphorylated p53 (S392). , 2011, Analytical chemistry.
[107] James F Rusling,et al. Measurement of biomarker proteins for point-of-care early detection and monitoring of cancer. , 2010, The Analyst.
[108] Chad A. Mirkin,et al. Gold nanoparticles for biology and medicine. , 2010, Angewandte Chemie.
[109] Jonghwa Lee,et al. Enhanced surface plasmon resonance by Au nanoparticles immobilized on a dielectric SiO2 layer on a gold surface. , 2009, Analytica chimica acta.
[110] Li-Ching Chang,et al. Gene expressions of HMGI-C and HMGI(Y) are associated with stage and metastasis in colorectal cancer , 2009, International Journal of Colorectal Disease.
[111] Judy Lieberman,et al. Micromanipulating cancer: microRNA-based therapeutics? , 2009, RNA biology.
[112] Johan Skog,et al. Glioblastoma microvesicles transport RNA and protein that promote tumor growth and provide diagnostic biomarkers , 2008, Nature Cell Biology.
[113] J. Marty,et al. Biomolecule immobilization in biosensor development: tailored strategies based on affinity interactions. , 2008, Protein and peptide letters.
[114] L. Liz‐Marzán,et al. Colloidal silver nanoplates. State of the art and future challenges , 2008 .
[115] F. Slack,et al. Oncomirs — microRNAs with a role in cancer , 2006, Nature Reviews Cancer.
[116] G. Whitesides,et al. Self-assembled monolayers of thiolates on metals as a form of nanotechnology. , 2005, Chemical reviews.
[117] Lin He,et al. The Distance-Dependence of Colloidal Au-Amplified Surface Plasmon Resonance , 2004 .
[118] D. Astruc,et al. Gold nanoparticles: assembly, supramolecular chemistry, quantum-size-related properties, and applications toward biology, catalysis, and nanotechnology. , 2004, Chemical reviews.
[119] D. Bartel. MicroRNAs Genomics, Biogenesis, Mechanism, and Function , 2004, Cell.
[120] G. Mills,et al. The emerging role of lysophosphatidic acid in cancer , 2003, Nature Reviews Cancer.
[121] Marie-Paule Pileni,et al. Detection of DNA hybridization by gold nanoparticle enhanced transmission surface plasmon resonance spectroscopy , 2003 .
[122] P. Englebienne,et al. High-throughput screening using the surface plasmon resonance effect of colloidal gold nanoparticles , 2001 .
[123] Lin He,et al. Colloidal Au-Enhanced Surface Plasmon Resonance for Ultrasensitive Detection of DNA Hybridization , 2000 .
[124] C. Ohyama,et al. Significance of simultaneous determination of serum human chorionic gonadotropin (hCG) and hCG‐β in testicular tumor patients , 2000, International journal of urology : official journal of the Japanese Urological Association.
[125] David R. Walt,et al. The chemistry of enzyme and protein immobilization with glutaraldehyde , 1994 .
[126] Jenny Donovan,et al. Screening for prostate cancer , 1993, JAMA.
[127] J. Polak,et al. Autoradiographic localization of endothelin‐1 binding sites in human colonic cancer tissue , 1992, The Journal of pathology.
[128] Bert Vogelstein,et al. p53 function and dysfunction , 1992, Cell.
[129] Sadao Kimura,et al. A novel potent vasoconstrictor peptide produced by vascular endothelial cells , 1988, Nature.
[130] J. Gómez‐Herrero,et al. Recent Progress on Antimonene: A New Bidimensional Material , 2018, Advanced materials.
[131] Jihoon Park,et al. Role of Substrate Metal in Gold Nanoparticle Enhanced Surface Plasmon Resonance Imaging , 2001 .
[132] N. Dubrawsky. Cancer statistics , 1989, CA: a cancer journal for clinicians.