Dual AuNPs detecting probe enhanced the NanoSPR effect for the high-throughput detection of the cancer microRNA21 biomarker.
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Yanteng Zhao | Wenjun Hu | Ping Chen | Ping Wu | Hao Xu | G. Liu | Xulong Hu | Juxiang Liu | Yinxia Hu
[1] Yu Zhang,et al. Engineered exosome-mediated delivery of circDIDO1 inhibits gastric cancer progression via regulation of MiR-1307-3p/SOCS2 Axis , 2022, Journal of Translational Medicine.
[2] Jinghua Yu,et al. Photoelectrochemical Detection of Exosomal miRNAs by Combining Target-Programmed Controllable Signal Quenching Engineering. , 2022, Analytical chemistry.
[3] Mingying Yang,et al. Human Mesenchymal Stem Cell Derived Exosomes Enhance Cell‐Free Bone Regeneration by Altering Their miRNAs Profiles , 2020, Advanced science.
[4] Guojun Zhang,et al. Nanostructuring-Synergetic Base-Stacking Effect: An Enhanced Versatile Sandwich Sensor Enables Ultrasensitive Detection of MicroRNAs in Blood. , 2020, ACS sensors.
[5] K. Saliminejad,et al. An overview of microRNAs: Biology, functions, therapeutics, and analysis methods , 2018, Journal of cellular physiology.
[6] Y. Huh,et al. Discrimination of single nucleotide mismatches using a scalable, flexible, and transparent three-dimensional nanostructure-based plasmonic miRNA sensor with high sensitivity. , 2018, Biosensors & bioelectronics.
[7] Jianzhang Zhao,et al. Boronic Acid Functionalized Au Nanoparticles for Selective MicroRNA Signal Amplification in Fiber-Optic Surface Plasmon Resonance Sensing System. , 2018, ACS sensors.
[8] P. Singh,et al. Development and evaluation of a gold nanoparticle-based immunochromatographic strip test for the detection of canine parvovirus , 2018, Archives of Virology.
[9] Hatice Altug,et al. Nanoparticle-Enhanced Plasmonic Biosensor for Digital Biomarker Detection in a Microarray. , 2018, ACS nano.
[10] I. Goryacheva,et al. Luminescent quantum dots for miRNA detection. , 2018, Talanta.
[11] Wei Pan,et al. A Highly Sensitive Strategy for Fluorescence Imaging of MicroRNA in Living Cells and in Vivo Based on Graphene Oxide-Enhanced Signal Molecules Quenching of Molecular Beacon. , 2018, ACS applied materials & interfaces.
[12] A. Erdem,et al. microRNA biosensors: Opportunities and challenges among conventional and commercially available techniques. , 2018, Biosensors & bioelectronics.
[13] Dan Zhong,et al. Dual-channel sensing strategy based on gold nanoparticles cooperating with carbon dots and hairpin structure for assaying RNA and DNA. , 2017, Talanta.
[14] R. El-Diwany,et al. Cellular microRNA networks regulate host dependency of hepatitis C virus infection , 2017, Nature Communications.
[15] 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.
[16] Wei Huang,et al. Individual Au-Nanocube Based Plasmonic Nanoprobe for Cancer Relevant MicroRNA Biomarker Detection. , 2017, ACS sensors.
[17] C. Kahn,et al. Adipose-Derived Circulating miRNAs Regulate Gene Expression in Other Tissues , 2017, Nature.
[18] C. Tsao,et al. Emerging role of microRNA-21 in cancer (Review) , 2016 .
[19] C. Harris,et al. Biomarker development in the precision medicine era: lung cancer as a case study , 2016, Nature Reviews Cancer.
[20] J. Roa,et al. Stat3 regulates ErbB-2 expression and co-opts ErbB-2 nuclear function to induce miR-21 expression, PDCD4 downregulation and breast cancer metastasis , 2016, Oncogene.
[21] Kemin Wang,et al. Graphene oxide-gold nanoparticles hybrids-based surface plasmon resonance for sensitive detection of microRNA. , 2016, Biosensors & bioelectronics.
[22] Zuhong Lu,et al. Amplification-based method for microRNA detection. , 2015, Biosensors & bioelectronics.
[23] S. Deo,et al. MicroRNA Detection: Current Technology and Research Strategies. , 2015, Annual review of analytical chemistry.
[24] Massimo Bellomi,et al. miR-Test: a blood test for lung cancer early detection. , 2015, Journal of the National Cancer Institute.
[25] Tianlun Jiang,et al. Dynamic Monitoring of MicroRNA-DNA Hybridization Using DNAase-Triggered Signal Amplification. , 2015, Analytical chemistry.
[26] Sabine Szunerits,et al. Highly sensitive detection of DNA hybridization on commercialized graphene-coated surface plasmon resonance interfaces. , 2014, Analytical chemistry.
[27] Yanyan Yu,et al. Ultrasensitive electrochemical detection of microRNA based on an arched probe mediated isothermal exponential amplification. , 2014, Analytical chemistry.
[28] A. Palumbo,et al. Next-generation sequencing and real-time quantitative PCR for minimal residual disease detection in B-cell disorders , 2014, Leukemia.
[29] Z. Geng,et al. A route to low-cost nanoplasmonic biosensor integrated with optofluidic-portable platform , 2014 .
[30] S. Maerkl,et al. LSPR chip for parallel, rapid, and sensitive detection of cancer markers in serum. , 2014, Nano letters.
[31] Liping Xie,et al. An aptamer based wall-less LSPR array chip for label-free and high throughput detection of biomolecules. , 2014, Biosensors & bioelectronics.
[32] M. Rodicio,et al. Detection methods for microRNAs in clinic practice. , 2013, Clinical biochemistry.
[33] Jian-Jun Li,et al. Optimizing the plasmonic sensing of RNA folding based on local refractive index change of gold nanorod , 2013 .
[34] Richard P Van Duyne,et al. A localized surface plasmon resonance imaging instrument for multiplexed biosensing. , 2013, Analytical chemistry.
[35] C. Schrader,et al. PCR inhibitors – occurrence, properties and removal , 2012, Journal of applied microbiology.
[36] Charles J. Choi,et al. Plasmonic nanogap-enhanced Raman scattering using a resonant nanodome array , 2012, 2012 Conference on Lasers and Electro-Optics (CLEO).
[37] Mark R. Servos,et al. Instantaneous and quantitative functionalization of gold nanoparticles with thiolated DNA using a pH-assisted and surfactant-free route. , 2012, Journal of the American Chemical Society.
[38] M. Tewari,et al. MicroRNA profiling: approaches and considerations , 2012, Nature Reviews Genetics.
[39] Ying Liu,et al. Detection of membrane-binding proteins by surface plasmon resonance with an all-aqueous amplification scheme. , 2012, Analytical chemistry.
[40] Shuo-Hui Cao,et al. Electric field assisted surface plasmon-coupled directional emission: an active strategy on enhancing sensitivity for DNA sensing and efficient discrimination of single base mutation. , 2011, Journal of the American Chemical Society.
[41] Mikael Käll,et al. Refractometric sensing using propagating versus localized surface plasmons: a direct comparison. , 2009, Nano letters.
[42] O. Muskens,et al. Strong enhancement of the radiative decay rate of emitters by single plasmonic nanoantennas. , 2007, Nano letters.
[43] K. Livak,et al. Real-time quantification of microRNAs by stem–loop RT–PCR , 2005, Nucleic acids research.
[44] H. Horvitz,et al. MicroRNA expression profiles classify human cancers , 2005, Nature.
[45] R. V. Van Duyne,et al. A comparative analysis of localized and propagating surface plasmon resonance sensors: the binding of concanavalin a to a monosaccharide functionalized self-assembled monolayer. , 2004, Journal of the American Chemical Society.
[46] Lin He,et al. MicroRNAs: small RNAs with a big role in gene regulation , 2004, Nature Reviews Genetics.
[47] T. Tuschl,et al. Identification of Novel Genes Coding for Small Expressed RNAs , 2001, Science.
[48] Jianping Fu,et al. Supplementary Information for Multiplex Serum Cytokine Immunoassay Using Nanoplasmonic Biosensor Microarrays , 2015 .
[49] L. Tian,et al. Up-Regulation of miR-21 Expression Predicate Advanced Clinicopathological Features and Poor Prognosis in Patients with Non-Small Cell Lung Cancer , 2015, Pathology & Oncology Research.
[50] Sota Asaga,et al. Direct serum assay for microRNA-21 concentrations in early and advanced breast cancer. , 2011, Clinical chemistry.
[51] Nóra Varga,et al. Sensitive and specific detection of microRNAs by northern blot analysis using LNA-modified oligonucleotide probes. , 2004, Nucleic acids research.