Weighing nanoparticles in solution at the attogram scale
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Nathan Cermak | Sangeeta N Bhatia | Angela M Belcher | Scott R Manalis | Wenjiang Shen | Jungchul Lee | S. Manalis | A. Belcher | S. Bhatia | Jungchul Lee | N. Cermak | K. Payer | S. Olcum | S. Wasserman | W. Shen | Hiroshi Atsumi | Hiroshi Atsumi | Selim Olcum | Steven C Wasserman | Kathleen S Christine | Kris R Payer | K. S. Christine | K. Christine
[1] F. L. Walls,et al. Characterization of frequency stability in precision frequency sources , 1991, Proc. IEEE.
[2] M. Roukes,et al. A self-sustaining ultrahigh-frequency nanoelectromechanical oscillator. , 2008, Nature nanotechnology.
[3] Huub Schellekens,et al. Immunological mechanism underlying the immune response to recombinant human protein therapeutics. , 2010, Trends in pharmacological sciences.
[4] Scott S. Verbridge,et al. Fabrication of a nanomechanical mass sensor containing a nanofluidic channel. , 2010, Nano letters.
[5] Laurence Zitvogel,et al. Exosomes: composition, biogenesis and function , 2002, Nature Reviews Immunology.
[6] Matt Trau,et al. A comparative study of submicron particle sizing platforms: accuracy, precision and resolution analysis of polydisperse particle size distributions. , 2013, Journal of colloid and interface science.
[7] E. Rubiola,et al. Phase Noise and Frequency Stability in Oscillators , 2008 .
[8] Sangeeta N Bhatia,et al. Micromechanical control of cell–cell interactions , 2007, Proceedings of the National Academy of Sciences.
[9] D. Leeson. A simple model of feedback oscillator noise spectrum , 1966 .
[10] Graça Raposo,et al. Exosomes--vesicular carriers for intercellular communication. , 2009, Current opinion in cell biology.
[11] Johan Skog,et al. Glioblastoma microvesicles transport RNA and protein that promote tumor growth and provide diagnostic biomarkers , 2008, Nature Cell Biology.
[12] H. Lange. Comparative Test of Methods to Determine Particle Size and Particle Size Distribution in the Submicron Range , 1995 .
[13] Gema Moreno-Bueno,et al. Melanoma exosomes educate bone marrow progenitor cells toward a pro-metastatic phenotype through MET , 2012, Nature Medicine.
[14] M. Roukes,et al. Ultimate limits to inertial mass sensing based upon nanoelectromechanical systems , 2003, physics/0309075.
[15] José M. Morachis,et al. Physical and Chemical Strategies for Therapeutic Delivery by Using Polymeric Nanoparticles , 2012, Pharmacological Reviews.
[16] C. Théry,et al. Membrane vesicles as conveyors of immune responses , 2009, Nature Reviews Immunology.
[17] Hao Yan,et al. Toward reliable gold nanoparticle patterning on self-assembled DNA nanoscaffold. , 2008, Journal of the American Chemical Society.
[18] M. Trau,et al. Tunable nano/micropores for particle detection and discrimination: scanning ion occlusion spectroscopy. , 2010, Small.
[19] K. Jensen,et al. An atomic-resolution nanomechanical mass sensor. , 2008, Nature Nanotechnology.
[20] J. Chaste,et al. A nanomechanical mass sensor with yoctogram resolution. , 2012, Nature nanotechnology.
[21] K. Ekinci. Electromechanical transducers at the nanoscale: actuation and sensing of motion in nanoelectromechanical systems (NEMS). , 2005, Small.
[22] Erkki Ruoslahti,et al. A high-throughput label-free nanoparticle analyser. , 2011, Nature nanotechnology.
[23] J. Karp,et al. Nanocarriers as an Emerging Platform for Cancer Therapy , 2022 .
[24] John F. Carpenter,et al. Physical Stability of Proteins in Aqueous Solution: Mechanism and Driving Forces in Nonnative Protein Aggregation , 2003, Pharmaceutical Research.
[25] S. Manalis,et al. Weighing of biomolecules, single cells and single nanoparticles in fluid , 2007, Nature.
[26] A. Hajimiri,et al. The Design of Low Noise Oscillators , 1999 .
[27] O. Hansen,et al. Mass and position determination of attached particles on cantilever based mass sensors. , 2007, The Review of scientific instruments.
[28] Shawn M. Douglas,et al. A Logic-Gated Nanorobot for Targeted Transport of Molecular Payloads , 2012, Science.
[29] T G van Leeuwen,et al. Optical and non‐optical methods for detection and characterization of microparticles and exosomes , 2010, Journal of thrombosis and haemostasis : JTH.
[30] M. Epple,et al. Possibilities and limitations of different analytical methods for the size determination of a bimodal dispersion of metallic nanoparticles , 2011 .
[31] Willett,et al. Evading amplifier noise in nonlinear oscillators. , 1994, Physical review letters.
[32] M. Roukes,et al. Toward single-molecule nanomechanical mass spectrometry , 2005, Nature nanotechnology.
[33] M. Roukes,et al. Ultimate and practical limits of fluid-based mass detection with suspended microchannel resonators , 2010 .
[34] Ralph D. Hippenstiel,et al. Detection Theory: Applications and Digital Signal Processing , 2001 .
[35] M. Roukes,et al. Zeptogram-scale nanomechanical mass sensing. , 2005, Nano letters.
[36] S. Manalis,et al. Toward attogram mass measurements in solution with suspended nanochannel resonators. , 2010, Nano letters.
[37] M. Roukes,et al. Noise processes in nanomechanical resonators , 2002 .
[38] D. Rugar,et al. Frequency modulation detection using high‐Q cantilevers for enhanced force microscope sensitivity , 1991 .
[39] M. Roukes,et al. Single-protein nanomechanical mass spectrometry in real time , 2012, Nature nanotechnology.