US 5324633A
· Fodor et al.
· 1994
[cited by applicant]
US 5445934A
· Fodor et al.
· 1995
[cited by applicant]
US 5849878A
· Cantor et al.
· 1998
[cited by applicant]
US 5919626A
· Shi et al.
· 1999
[cited by applicant]
US 6255469B1
· Seeman et al.
· 2001
[cited by applicant]
US 6391625B1
· Park et al.
· 2002
[cited by applicant]
US 6589726B1
· Butler et al.
· 2003
[cited by applicant]
US 6610482B1
· Fodor et al.
· 2003
[cited by applicant]
US 6720595B2
· Clevenger et al.
· 2004
[cited by applicant]
US 6737236B1
· Pieken et al.
· 2004
[cited by applicant]
US 6806361B1
· Kajisa et al.
· 2004
[cited by applicant]
US 6824866B1
· Glazer et al.
· 2004
[cited by applicant]
US 6998241B2
· Boga
· 2006
[cited by applicant]
US 7148058B2
· Charych et al.
· 2006
[cited by applicant]
US 7158224B2
· Montagu
· 2007
[cited by applicant]
US 7183054B2
· Myers et al.
· 2007
[cited by applicant]
US 7252954B2
· Wang et al.
· 2007
[cited by applicant]
US 7259258B2
· Kozlov et al.
· 2007
[cited by applicant]
US 7351528B2
· Landegren
· 2008
[cited by applicant]
US 7375234B2
· Sharpless et al.
· 2008
[cited by applicant]
US 7427678B2
· Pieken et al.
· 2008
[cited by applicant]
US 7598363B2
· Seeman et al.
· 2009
[cited by applicant]
US 7635562B2
· Harris et al.
· 2009
[cited by applicant]
US 7763736B2
· Sharpless et al.
· 2010
[cited by applicant]
US 7794799B1
· Kim et al.
· 2010
[cited by applicant]
US 7842793B2
· Rothemund
· 2010
[cited by applicant]
US 7855054B2
· Schneider et al.
· 2010
[cited by applicant]
US 7932060B2
· Nadeau et al.
· 2011
[cited by applicant]
US 7955837B2
· Pawlak et al.
· 2011
[cited by applicant]
US 7964356B2
· Zichi et al.
· 2011
[cited by applicant]
US 8013134B2
· Fredriksson
· 2011
[cited by applicant]
US 8133719B2
· Drmanac et al.
· 2012
[cited by applicant]
US 8222047B2
· Duffy et al.
· 2012
[cited by applicant]
US 8236574B2
· Duffy et al.
· 2012
[cited by applicant]
US 8268554B2
· Schallmeiner
· 2012
[cited by applicant]
US 8404830B2
· Zichi et al.
· 2013
[cited by applicant]
US 8415171B2
· Rissin et al.
· 2013
[cited by applicant]
US 8445194B2
· Drmanac et al.
· 2013
[cited by applicant]
US 8501923B2
· Rothemund
· 2013
[cited by applicant]
US 8685894B2
· Chaput et al.
· 2014
[cited by applicant]
US 8877516B2
· Lin et al.
· 2014
[cited by applicant]
US 8945811B2
· True
· 2015
[cited by applicant]
US 8945830B2
· Heil et al.
· 2015
[cited by applicant]
US 8975026B2
· Zichi et al.
· 2015
[cited by applicant]
US 8975388B2
· Zichi et al.
· 2015
[cited by applicant]
US 9163056B2
· Rohloff et al.
· 2015
[cited by applicant]
US 9275871B2
· Sandhu
· 2016
[cited by applicant]
US 9330932B1
· Sills et al.
· 2016
[cited by applicant]
US 9340416B2
· Maune et al.
· 2016
[cited by applicant]
US 9395359B2
· Walt et al.
· 2016
[cited by applicant]
US 9404919B2
· Schneider et al.
· 2016
[cited by applicant]
US 9466504B1
· Sills et al.
· 2016
[cited by applicant]
US 9528984B2
· Mitra
· 2016
[cited by applicant]
US 9551663B2
· Rissin et al.
· 2017
[cited by applicant]
US 9556360B2
· McGall et al.
· 2017
[cited by applicant]
US 9625469B2
· Marcotte et al.
· 2017
[cited by applicant]
US 9678068B2
· Duffy et al.
· 2017
[cited by applicant]
US 9717685B2
· Shih et al.
· 2017
[cited by applicant]
US 9777315B2
· Fredriksson et al.
· 2017
[cited by applicant]
US 9796749B2
· Yin et al.
· 2017
[cited by applicant]
US 9880175B2
· Mitra
· 2018
[cited by applicant]
US 9881786B2
· Sills et al.
· 2018
[cited by applicant]
US 9926566B2
· Ochsner et al.
· 2018
[cited by applicant]
US 9938314B2
· Rohloff et al.
· 2018
[cited by applicant]
US 9975916B2
· Yin et al.
· 2018
[cited by applicant]
US 11203612B2
· Gremyachinskiy et al.
· 2021
[cited by applicant]
US 20030054408A1
· Ravi et al.
· 2003
[cited by applicant]
US 20040023413A1
· Opalsky
· 2004
[cited by applicant]
US 20040209383A1
· Yin et al.
· 2004
[cited by applicant]
US 20050054118A1
· Lebrun
· 2005
[cited by applicant]
US 20050095577A1
· Yang et al.
· 2005
[cited by applicant]
US 20050287523A1
· Letant et al.
· 2005
[cited by applicant]
US 20060035220A1
· Tashiro et al.
· 2006
[cited by applicant]
US 20060160234A1
· Lopez-Avila et al.
· 2006
[cited by applicant]
US 20070218503A1
· Mitra
· 2007
[cited by applicant]
US 20090018028A1
· Lindsay et al.
· 2009
[cited by applicant]
US 20090214591A1
· Manucharyan et al.
· 2009
[cited by applicant]
US 20100081134A1
· Mirkin et al.
· 2010
[cited by applicant]
US 20150004193A1
· Chang et al.
· 2015
[cited by applicant]
US 20150185199A1
· Joo et al.
· 2015
[cited by applicant]
US 20150330974A1
· Staker et al.
· 2015
[cited by applicant]
US 20160060687A1
· Zhu et al.
· 2016
[cited by applicant]
US 20160102344A1
· Niemeyer et al.
· 2016
[cited by applicant]
US 20170044245A1
· Meng et al.
· 2017
[cited by applicant]
US 20170327888A1
· Ong et al.
· 2017
[cited by applicant]
US 20180148514A1
· Williams
· 2018
[cited by applicant]
US 20190195869A1
· Fan et al.
· 2019
[cited by applicant]
US 20200082914A1
· Patel et al.
· 2020
[cited by applicant]
US 20200206145A1
· Shi et al.
· 2020
[cited by applicant]
US 20200286584A9
· Patel et al.
· 2020
[cited by applicant]
US 20200348307A1
· Beierle et al.
· 2020
[cited by applicant]
US 20210239705A1
· Mallick
· 2021
[cited by applicant]
US 20210355483A1
· Chee et al.
· 2021
[cited by applicant]
US 20220227890A1
· Kapp et al.
· 2022
[cited by applicant]
US 20220339181A1
· Funke et al.
· 2022
[cited by applicant]
US 20220412998A1
· Lobanov et al.
· 2022
[cited by applicant]
CN 100500865C
· 2009
[cited by applicant]
EP 1105529B2
· 2013
[cited by applicant]
EP 2872898B1
· 2016
[cited by applicant]
EP 3699141A1
· 2020
[cited by applicant]
EP 3498865B1
· 2020
[cited by applicant]
WO WO0146675A2
· 2001
[cited by applicant]
WO WO02086081A2
· 2002
[cited by applicant]
WO WO2005065814A1
· 2005
[cited by applicant]
WO WO2006135527A2
· 2006
[cited by applicant]
WO WO2007117444A2
· 2007
[cited by applicant]
WO WO2008016644A1
· 2008
[cited by applicant]
WO WO2007120208A3
· 2008
[cited by applicant]
WO WO2014078855A1
· 2014
[cited by applicant]
WO WO2015097077A2
· 2015
[cited by applicant]
WO WO2016174525A1
· 2016
[cited by applicant]
WO WO2017127762A1
· 2017
[cited by applicant]
WO WO201102759A1
· 2018
[cited by applicant]
WO WO2019036055A2
· 2019
[cited by applicant]
WO WO2019059961A1
· 2019
[cited by applicant]
WO WO2019133892A1
· 2019
[cited by applicant]
WO WO2019195633A1
· 2019
[cited by applicant]
WO WO2019211631A1
· 2019
[cited by applicant]
WO WO2019236749A2
· 2019
[cited by applicant]
WO WO2020106889A1
· 2020
[cited by applicant]
WO WO2020223368A1
· 2020
[cited by applicant]
WO WO2020254684A1
· 2020
[cited by applicant]
WO WO2021074087A1
· 2021
[cited by applicant]
WO WO2021087402A1
· 2021
[cited by applicant]
WO WO2022060728A1
· 2022
[cited by applicant]
WO WO2022182635A1
· 2022
[cited by applicant]
WO WO2022212479A2
· 2022
[cited by applicant]
Chirsof M. Niemeyer, The developments of semisynthetic DNA-protein conjugates, Trends in Biotechnology, vol. 20, pp. 395-401. (Year: 2002).
[cited by examiner]
Burgahn et al., Solid-phase synthesis and purification of protein-DNA origami nanostructures, Chemistry: A European Journal, vol. 25, pp. 3483-3488. (Year: 2019).
[cited by examiner]
3-Aminopropyl)triethoxysilane. Wikipedia.org. Apr. 5, 2019 (Apr. 5, 2019), entire document esp p. 1 (https://en.wikipedia.org/w/index.php?title=(3-Aminopropyl)triethoxysilaneoldid=891131780).
[cited by applicant]
Anonymous. List of protein hydrodynamic diameters. Dynamic Biosensors. May 17, 2017, XP055857934, Available at https://www.dynamic-biosensors.com/project/list-of-protein-hydrodynamic-diameters/. Retrieved on Nov. 4, 202…
[cited by applicant]
Arnold et al. “The majority of immunogenic epitopes generate CD44-T cells that are dependent on MHC class II-bound peptide-flanking residues,” J Immunol, Jul. 15, 2002 (Jul. 15, 2002), vol. 169, No. 2, pp. 739-749.
[cited by applicant]
Asseline, U. et al. “Development and Applications of Fluorescent Oligonucleotides” Curr. Org. Chem. (2006) 10:491-518.
[cited by applicant]
Ayoglu, et al., Autoantibody Profiling in Multiple Sclerosis Using Arrays of Human Protein Fragments, Molecular & Cellular Proteomics, (12)9 Sep. 1, 2013 (Sep. 1, 2013), pp. 2657-2672, XP055294116, US , ISSN: 1535-9476,…
[cited by applicant]
Blatch, et al. The tetratricopeptide repeat: a structural motif mediating protein-protein interactions. Bioessays Nov. 1999;21 (11):932-939.
[cited by applicant]
Buenrostro, et al. Quantitative analysis of RNA-protein interactions on a massively parallel array for mapping biophysical and evolutionary landscapes. Nat Biotechnol. Jun. 2014; 32(6):562-568.
[cited by applicant]
Bunka et al. “Production and characterization of RNA aptamers specific for amyloid fibril epitopes,” J Biol Chem, Sep. 18, 2007 (Sep. 18, 2007), vol. 282, No. 47, pp. 34500-34509.
[cited by applicant]
Buus, et al. High-resolution mapping of linear antibody epitopes using ultrahigh-density peptide microarrays. Molecular & Cellular Proteomics 11.12 (2012): 1790-1800.
[cited by applicant]
Choi, Youngeun et al. “A new reporter design based on DNA origami nanostructures for quantification of short oligonucleotides using microbeads”, Scientific Reports, vol. 9, No. 1, Mar. 18, 2019.
[cited by applicant]
Choung, et al. Determination of B-Cell Epitopes in Patients with Celiac Disease: Peptide Microarrays. PloS one vol. 11(1) e0147777. Jan. 29, 2016, doi:10.1371/journal.pone.0147777.
[cited by applicant]
Clever, G.H. et al. “DNA-Metal Base Pairs” Angew. Chem. Int. Ed. (2007) 46:6226-6236.
[cited by applicant]
Cox, W.G. et al. “Fluorescent DNA Hybridization Probe Preparation Using Amine Modification and Reactive Dye Coupling” Biotechniques (2004) 36:114-122.
[cited by applicant]
Cutler, et al., “Spherical Nucleic Acids”,
[cited by applicant]
Derr, et al., “Tug of War in Motor Pri=otein Ensembles Revealed with a Programmable DNA Origami Scaffold”,
[cited by applicant]
Domenyuk, et al. Plasma Exosome Profiling of Cancer Patients by a Next Generation Systems Biology Approach. Sci Rep. 2017; 7: 42741.
[cited by applicant]
Drmanac et al., “Human Genome Sequencing Using Unchained Base Reads on Self-Assembling DNA Nanoarrays”,
[cited by applicant]
Evanko, D. et al. “Hybridization Chain Reaction” Nat. Methods (2004) 1:186-187.
[cited by applicant]
Fodor er al., Light-Directed Spatially Addressable Parallel Chemical Synthesis, Science, vol. 251, 767-773, 1991.
[cited by applicant]
Ford et al. “Degenerate recognition of T cell epitopes: impact of T cell receptor reserve and stability of peptide:MHC complexes,” Mol Immunol, Feb. 1, 2004 (Feb. 2, 2004), vol. 40, No. 14-15, pp. 1019-1025.
[cited by applicant]
Galimidi, R.P. et al. “Intra-Spike Crosslinking Overcomes Antibody Evasion by HIV-1” Cell (2015) 160:433-446.
[cited by applicant]
Gardner, A.F. et al. “Therminator DNA Polymerase: Modified Nucleotides and Unnatural Substrates” Front. Mol. Biosci. (2019) 6:28.
[cited by applicant]
Garmendia, C. et al. “The Bacteriophage Phi29 DNA Polymerase, a Proofreading Enzyme” J. Bio. Chem. (1992) 267:2594-2599.
[cited by applicant]
Gopinath, et al., “Optimized Assembly and Covalent Coupling of Single-Molecule JNA Origami Nanoarrays”,
[cited by applicant]
Gyssels, E. et al. “Interstrand Cross-Linking of Nucleic Acids: From History to Recent and Future Applications” Modified Nucleic Acids in Biology and Medicine (2016) pp. 339-369.
[cited by applicant]
He, et al. Fluorescence aptameric sensor for strand displacement amplification detection of cocaine. Analytical chemistry 82.4 (2010): 1358-1364.
[cited by applicant]
Hookway et al., “Aggregate formation and suspension culture of human pluripotent stem cells and differentiated progeny”, Methods, vol. 101, pp. 11-20, 2016.
[cited by applicant]
Hung, Albert M. et al. Large-area spatially ordered arrays of gold nanoparticles directed by lithographically confined DNA origami. Nat Nanotechnol. Feb. 2010;5(2):121-6. doi: 10.1038/nnano.2009.450. Epub Dec. 20, 2009.
[cited by applicant]
Hunniger, et al. Just in time-selection: A rapid semiautomated SELEX of DNA aptamers using magnetic separation and BEAMing. Anal Chem. Nov. 4, 2014;86(21):10940-7.
[cited by applicant]
Itzkovitz, S. et al. “Validating Transcripts with Probes and Imaging Technology” Nat. Methods (2011) 8:512-519.
[cited by applicant]
Jaekel, A. et al., “Manipulating Enzymes Properties with DNA Nanostructures” Molecules 24(20):3694 (2019).
[cited by applicant]
Janssen, et al. Nucleic acids for ultra-sensitive protein detection. Sensors (Basel). Jan. 21, 2013;13(1):1353-84.
[cited by applicant]
Jensen, J.O. et al. “Nanoengineered Bioplatforms Based on DNA Origami [Point of View]” Proceedings of the IEEE 102:1046-1049 (2014).
[cited by applicant]
Kang, H. The prevention and handling of the missing data. Korean journal of anesthesiology vol. 64,5 (2013): 402-6. doi:10.4097/kjae.2013.64.5.402.
[cited by applicant]
Kolb, H.C. et al., “Click Chemistry: Diverse Chemical Function from a Few Good Reactions” Angewandte Chemie International Edition. 40 (11): 2004-2021 (2001).
[cited by applicant]
Krufczik, M. et al. “Combining Low Temperature Fluorescence DNA-Hybridization, Immunostaining, and Super-Resolution Localization Microscopy for Nano-Structure Analysis of ALU Elements and Their Influence on Chromatin St…
[cited by applicant]
Laurenson, et al. Development of peptide aptamer microarrays for detection of HPV16oncoproteins in cell extracts, Analytical Biochemistry, Academic Press, Amsterdam,NL, vol. 410, No. 2, Oct. 30, 2010 (Oct. 30, 2010), pp…
[cited by applicant]
LI Weiping et al., “Multiplex electrochemical origami immunodevice based on cuboid silver-paper electrode and metal ions tagged nanoporous silver chitosan”, (2014) Biosensors & Bioelectronics, vol. 56, pp. 167-173.
[cited by applicant]
Lian et al., “Ultrasensitive detection of biomolecules with fluorescent dye-doped nanoparticles”, Analytical Biochemistry, vol. 334, 2004, pp. 135-144.
[cited by applicant]
Lin et al. Development of a novel peptide microarray for large-scale epitope mapping of food allergens, Journal of Allergy and Clinical Immunology, Elsevier, Amsterdam, NL,vol. 124, No. 2, Aug. 1, 2009 (Aug. 1, 2009), p…
[cited by applicant]
Lundberg, E.P. et al. “A New Fixation Strategy for Addressable Nano-Network Building Blocks” Chem. Comm. (2010) 46:3714-3716.
[cited by applicant]
Lutz, et al. Efficient construction of therapeutics, bioconjugates, biomaterials and bioactive surfaces using azide-alkyne “click” chemistry. Adv Drug Deliv Rev. Jun. 10, 2008;60(9):958-70.
[cited by applicant]
McKay, et al. Click Chemistry in Complex Mixtures: Bioorthogonal Bioconjugation. Chem Biol. Sep. 18, 2014;21(9): 1075-1101.
[cited by applicant]
Meldal, et al. Cu-catalyzed azide-alkyne cycloaddition. Chem Rev. Aug. 2008;108(8):2952-3015. doi: 10.1021/cr0783479.
[cited by applicant]
Musumeci, et al. Fluorescence sensing using DNA aptamers in cancer research and clinical diagnostics. Cancers 9.12 (2017): 174.
[cited by applicant]
Nakamura, S. et al. “Creation of DNA Array Structure Equipped with Heat Resistance by Ultrafast Photocrosslinking” J. Chem. Technol. Biotechnol. (2013) 89:1086-1090.
[cited by applicant]
Nonobe et al. A tabu search approach to the constraint satisfaction problem as a general problem solver. Eur. J. Oper. Res. 106 (1998): 599-623.
[cited by applicant]
O'Flaherty, D.K. et al. “Site-Specific Covalent Capture of Human O6-alkylguanine-DNA-alkyltransferase Using Single-Stranded Intrastrand Cross-Linked DNA” Org. Biomol. Chem. (2016) 15:189-196.
[cited by applicant]
Patronov et al. “Peptide binding prediction for the human class II MHC allele HLA-DP2: a molecular docking approach,” BMC Struct Biol, Jul. 14, 2011 (Jul. 14, 2011), vol. 11, No. 32, pp. 1-10.
[cited by applicant]
Price, et al., On silica peptide microarrays for high-resolution mapping of antibody epitopes and diverse protein-protein interactions, Nature Medicine, vol. 18, No. 9, Aug. 19, 2012, pp. 1434-1440, XP055793803, New Yor…
[cited by applicant]
Rajendran, A. et al. “Photo-Cross-Linking-Assisted Thermal Stability of DNA Origami Structures and Its Application for Higher-Temperature Self-Assembly” JACS (2011) 133:14488-14491.
[cited by applicant]
Randolph, J.B. et al. “Stability, Specificity, and Fluorescence Brightness of Mulitply-Labeled Fluorescent DNA Probes” Nuc. Acids Res. (1997) 25:2923-2929.
[cited by applicant]
Reineke, et al. Epitope mapping protocols. Preface. Methods in molecular biology (Clifton, N.J.) vol. 524 (2009): v-vi.
[cited by applicant]
Reyes et al. “Critical role of HLA-DR11” binding peptides' peripheral flanking residues in fully-protective malaria vaccine development, Biochem Biophys Res Commun, May 23, 2017 (May 23, 2017), vol. 489, No. 3, pp. 339-…
[cited by applicant]
Riccelli, et al. Hybridization of single-stranded DNA targets to immobilized complementary DNA probes: comparison of hairpin versus linear capture probes. Nucleic acids research vol. 29,4 (2001): 996-1004. doi:10.1093/n…
[cited by applicant]
Richer, et al., Epitope identification from fixed-complexity random-sequence peptide microarrays, Molecular & cellular proteomics, vol. 14, No. 1, Nov. 3, 2014, pp. 136-147.
[cited by applicant]
Rissin, et al., “Single-Molecule enzyme-linked immunosorbent assay detects serum proteins at subfemtomalar concentrations”,
[cited by applicant]
Rothemund et al., “Folding DNA to create nanoscale shapes and patterns”, Nature Mar. 16, 2006;440(7082):297-300 (2006).
[cited by applicant]
Rusmini, Federica et al. Protein immobilization strategies for protein biochips. Biomacromolecules vol. 8,6 (2007): 1775-89. doi:10.1021/bm061197b.
[cited by applicant]
Sant'Angelo et al. “Recognition of core and flanking amino acids of MHC class II-bound peptides by the T cell receptor,” Eur J Immunol, Sep. 1, 2002 (Sep. 1, 2002), vol. 32, No. 9, pp. 2510-2520.
[cited by applicant]
Schweitzer et al. Immunoassays with rolling circle DNA amplification: a versatile platform for ultrasensitive antigen detection. Proceedings of the National Academy of Sciences. \USA. 97(18) (Aug. 2000):10113-10119.
[cited by applicant]
She, et al. Comprehensive and quantitative mapping of RNA-protein interactions across a transcribed eukaryotic genome. Proc Natl Acad Sci U S A. Apr. 4, 2017; 114(14): 3619-3624.
[cited by applicant]
Sigl et al., “Programmable icosahedral shell system for virus trapping”, Nature Materials, vol. 20, Sep. 2021, 1281-1289.
[cited by applicant]
Sinkeldam, R.W. et al. “Fluorescent Analogs of Biomolecular Building Blocks: Design, Properties and Applications” Chem. Rev. (2010) 110:2579-2619.
[cited by applicant]
Sjoberg et al. Validation of affinity reagents using antigen microarrays, Newbiotechnology, vol. 29, No. 5, Jun. 1, 2012 pp. 555-563, XP055793929, NLISSN: 1871-6784, DOI: 10.1016/j.nbt.2011.11.009.
[cited by applicant]
Speltz, et al. Design of Protein-Peptide Interaction Modules for Assembling Supramolecular Structures in Vivo and in Vitro. ACS Chem Biol. Sep. 18, 2015;10(9):2108-15. doi: 10.1021/acschembio.5b00415. Epub Jul. 17, 2015.
[cited by applicant]
Spicer, C.D. et al. “Achieving Controlled BiomoleculeñBiomaterial Conjugation” Chem. Rev. (2018) 118(16):7702ñ7743.
[cited by applicant]
Stawicki, C.M. et al., “Modular fluorescent nanoparticle DNA probes for detection of peptides and proteins” Scientific Reports 11:19921 (2021) [doi.org/10.1038/s41598-021-99084-4].
[cited by applicant]
Stöhr, et al. A 31-residue peptide induces aggregation of tau's microtubule-binding region in cells. Nat Chem. Sep. 2017; 9(9): 874-881. Published online Apr. 3, 2017.doi: 10.1038/nchem.2754.
[cited by applicant]
Sun, H. et al. “Coumarin-Induced DNA Ligation, Rearrangement to DNA Interstrand Crosslinks, and Photorelease of Coumarin Moiety” Chem BioChem (2016) 17:1-9.
[cited by applicant]
Swaminathan et al., “Highly parallel single-molecule identification of proteins in zeptomole-scale mixtures”, Nat Biotechnol 36, 1076-1082 (2018). https:--doi.org-10.1038-nbt.4278.
[cited by applicant]
Tagawa, M. et al. “Stabilization of DNA Nanostructures by Photo-Cross-Linking” Soft Matter (2011) 7:10931-10934.
[cited by applicant]
Tessler, L. Digital Protein Analysis: Technologies for Protein Diagnostics and Proteomics through Single-Molecule Detection (2011). All Theses and Dissertations (ETDs). 346 https://openscholarship.wustl.edu/etd/346.
[cited by applicant]
Tsourkas et al., “Hybridization kinetics and thermodynamics of molecular beacons”, Nucleic Acids Research, 2003, vol. 31, No. 4, pp. 1319-1330.
[cited by applicant]
Vauquelin, G. et al., “Exploring avidity: understanding the potential gains in functional affinity and target residence time of bivalent and heterobivalent ligands” British Journal of Pharmacology 168:1771-1785 (2013).
[cited by applicant]
Wang, L. et al. “DNA Nanostructures in Cell Biology and Medicine” DNA Nanotechnology for Bioanalysis (2017) pp. 99-127.
[cited by applicant]
Wilson, et al. Single-Step Selection of Bivalent Aptamers Validated by Comparison with SELEX Using High-Throughput Sequencing. PLoS One. 2014; 9(6): e100572.
[cited by applicant]
Xu, Weidong et al., “Supporting Information Super-resolution Geometric Barcoding for Multiplexed miRNA Profiling”, Angewandte Chemie, Oct. 22, 2018, figure S2.
[cited by applicant]
Xu, Weidong et al., “Super-resolution Geometric Barcoding for Multiplexed miRNA Profiling”, Angewandte Chemie International Edition, vol. 57, No. 43, Oct. 4, 2018, pp. 14075-14079.
[cited by applicant]
Yang et al., “Programmable Site-Specific Functionalization of DNA Origami with Polynucleotide Brushes”, Angewandte Chemie Int. Ed. https:--doi.org-10.1002-anie.202107829 Jul. 23, 2021.
[cited by applicant]
Yang, et al., “Self-assembly of highly ordered DNA origami lattices at solid-liquid interfaces by controlling cation binding and exchang”,
[cited by applicant]
Zakeri, B et al., “Peptide tag forming a rapid covalent bond to a protein, through engineering a bacterial adhesin” PNAS 109 (12): E690-E697 (2012).
[cited by applicant]
Zandian, Arash et al. Whole-Proteome Peptide Microarrays for Profiling Autoantibody Repertoires within Multiple Sclerosis and Narcolepsy. Journal of proteome research 16(3) 2017: 1300-1314.
[cited by applicant]
Zhang, P. et al., “Capturing transient antibody conformations with DNA origami epitopes” Nature Communications 11:3114 (2020).
[cited by applicant]
Zhao, Z. et al., “Organizing DNA origami tiles into larger structures using preformed scaffold frames” NanoLetters 11:2997-3002 (2011).
[cited by applicant]
WO, International Search Report & Written Opinion for International Application No. PCT/US2022/080322, 11 Pages, Mar. 15, 2023.
[cited by applicant]
Hoshino et al., “Interaction between synthetic particles and biomacromolecules: fundamental study of nonspecific interaction and design of nanoparticles that recognize target molecules”, Polymer Journal (2014) 46, 537-5…
[cited by applicant]
Abbasov et al., “A proteome-wide atlas of lysine-reactive chemistry”, Nature Chemistry, vol. 13: 1081-1092, Nov. 2021.
[cited by applicant]
Aebersold et al., “How many human proteoforms are there?”, Nat. Chem. Biol., 14:206-214, Feb. 14, 2018.
[cited by applicant]
Anderson & Anderson. The human plasma proteome: history, character, and diagnostic prospects. Molecular & Cellular Proteomics: MCP vol. 1,11 (2002): 845-67.
[cited by applicant]
Blume et al., “Rapid, deep and precise profiling of the plasma proteome with multi-nanoparticle protein corona”, Nature Communications, 11:3662 (2020).
[cited by applicant]
Egertson et al., “A theoretical framework for proteome-scale single-molecule protein identification using multi-affinity protein binding reagents”, BioRxiv, (2021); DOI: 10.1101/2021.10.11.463967.
[cited by applicant]
Ho et al., Unification of Protein Abundance Datasets Yields a Quantitative
[cited by applicant]
Luo et al., “Dinitroimidazoles as bifunctional bioconjugation reagents for protein functionalization and peptide macrocyclizations”, Nat. Comm., 10:142 (2019); https://doi.org/10.1038/s41467-018-08010-2.
[cited by applicant]
Rappsilber et al., “Protocol for micro-purification, enrichment, pre-fraction and storage of peptides for proteomics using StageTips”, Nat. Protoc., vol. 2, No. 8:1896-906, published online Aug. 2, 2007.
[cited by applicant]
Wisniewski et al. “A Proteomic Ruler for Protein Copy Number and Concentration Estimation without Spike-in Standards”, Molecular & Cellular Proteomics, 13(12):3497-506 (2014).
[cited by applicant]
Zanon et al., “Profiling the Proteome-wide Selectivity of Diverse Electrophiles”, ChemRxiv, 10.33774/chemrxiv-2021-w7rss-v2 (2021).
[cited by applicant]