{"id":317,"date":"2018-01-09T19:35:32","date_gmt":"2018-01-09T23:35:32","guid":{"rendered":"http:\/\/sites.nd.edu\/pdnano\/?page_id=317"},"modified":"2026-08-25T18:39:39","modified_gmt":"2026-08-25T22:39:39","slug":"317-2","status":"publish","type":"page","link":"https:\/\/sites.nd.edu\/pdnano\/?page_id=317","title":{"rendered":"Publications"},"content":{"rendered":"<h4><span style=\"color: #3366ff\"><a style=\"color: #3366ff\" href=\"https:\/\/scholar.google.com\/citations?user=pkez5IQAAAAJ&amp;hl=en\" target=\"_blank\" rel=\"noopener noreferrer\"><strong>Journal Publications; Citations = 3306; h-index = 25,\u00a0 i10 index = 35; Patents: 2; Patent Applications = 9; one technology licensed out.<\/strong><\/a><\/span><br \/>\n<span style=\"color: #000000\">Full List of publications and citations can be accessed on\u00a0<a style=\"color: #000000\" href=\"https:\/\/scholar.google.com\/citations?user=pkez5IQAAAAJ&amp;hl=en\" target=\"_blank\" rel=\"noopener noreferrer\">google scholar<\/a><\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>2026<\/strong><\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>43.<\/strong> Brownsberger, A. F.; Kudary, C.; Williams, H. H.; Wei, S.; Latorre, P.; Eastland, R.; Sayani, O.; Lyu, J.; Davey, R.; Hopkins, V.; Roeder, R. K.; Nallathamby, P. D. Intrinsically Selective Nanoplatforms for Precision Therapy and Monitoring. <a class=\"link italic\" href=\"https:\/\/www.mdpi.com\/journal\/jnt\" target=\"_blank\" rel=\"noopener\">J. Nanotheranostics<\/a><span class=\"m-rich-text text-sm\" data-testid=\"article-reference\"><strong>2026<\/strong>,\u00a0<em>7<\/em>(2), 12; <a href=\"https:\/\/www.mdpi.com\/2624-845X\/7\/2\/12\" target=\"_blank\" rel=\"noopener\">https:\/\/doi.org\/10.3390\/jnt7020012<\/a><\/span><\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>42 . LICENSE ALERT: &#8220;<\/strong>Phage mimicking nanoparticles&#8221; licensed to nanoBLASTx,LLC in March 2026<br \/>\nInventors: Prakash Daniel Nallathamby, Juliane Hopf<br \/>\nIssue Date: 2024\/12\/10<br \/>\nUS Patents Office<br \/>\n<a href=\"https:\/\/pubchem.ncbi.nlm.nih.gov\/patent\/US-12161725-B2\" target=\"_blank\" rel=\"noopener\">Patent no. US 12161725 B2<\/a><\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>41.<\/strong> Bispecific nanoparticle systems for targeting cancer cells<br \/>\nInventor(s): Prakash Daniel Nallathamby<br \/>\nPublication date: 2022\/5\/01<br \/>\nUS Patents Office:<a href=\"https:\/\/patents.google.com\/patent\/US12576160B2\/en\" target=\"_blank\" rel=\"noopener\"> Patent No. 12576160 B2<\/a> \u00b7 Issued Mar 17, 2026\u00a0<\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>40.<\/strong> Brownsberger, A. F.; Kudary, C.; Williams, H. H.; Wei, S.; Latorre, P.; Eastland, R.; Sayani, O.; Lyu, J.; Davey, R.; Hopkins, V.; Roeder, R. K.; Nallathamby, P. D. Intrinsically Selective Nanoplatforms for Precision Therapy and Monitoring. Preprints 2026, 2026031641. <a href=\"https:\/\/www.preprints.org\/manuscript\/202603.1641\" target=\"_blank\" rel=\"noopener\">https:\/\/doi.org\/10.20944\/preprints202603.1641.v1<\/a>\u00a0<\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>2025<\/strong><\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>39.<\/strong> Receptor Independent Magnetoelectric Nanocarriers for Spatiotemporally Controlled Chemotherapy of Triple Negative Breast Cancer Variants, Ovarian Cancer, and Prostate Cancer. ChemRxiv. (2025) doi:10.26434\/chemrxiv-2025-9brnt This content is a preprint and has not been peer-reviewed. Lyu J, Brownsberger A, Kudary C, Waters M, Nallathamby P\u00a0<\/span><a href=\"https:\/\/doi.org\/10.26434\/chemrxiv-2025-9brnt\" target=\"_blank\" rel=\"noopener\">10.26434\/chemrxiv-2025-9brnt<\/a><\/h4>\n<h4><span style=\"color: #000000\"><strong>2024<\/strong><\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>38.<\/strong>Phage mimicking nanoparticles<br \/>\nInventors: Prakash Daniel Nallathamby, Juliane Hopf<br \/>\nIssue Date: 2024\/12\/10<br \/>\nUS Patents Office<br \/>\n<a href=\"https:\/\/pubchem.ncbi.nlm.nih.gov\/patent\/US-12161725-B2\" target=\"_blank\" rel=\"noopener\">Patent no. US 12161725 B2<\/a><\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>37.<\/strong> PLGA nanoparticles formulations loaded with antibiotics induce sustained and controlled antibiotics release for prolonged antibacterial action against MRSA, and Pseudomonas aeruginosa FRD1.\u00a0<em>Military Medicine, Volume <\/em>189, Issue Supplement_3, September\/October 2024, Pages 230\u2013238,\u00a0<a href=\"https:\/\/doi.org\/10.1093\/milmed\/usae079\" target=\"_blank\" rel=\"noopener\" data-google-interstitial=\"false\">https:\/\/doi.org\/10.1093\/milmed\/usae079<\/a>\u00a0(Accepted for Publication Feb 22, 2024) Guevara A, Armknecht K, Kudary C,\u00a0 Nallathamby, P.D.<\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>36. <\/strong>Antimicrobial Peptide-conjugated phage-mimicking nanoparticles exhibit potent antibacterial action against Streptococcus pyogenes in murine wound infection models. \u00a0<em>Nanoscale Advances<\/em>, 2024, 6, 1145 &#8211; 1162<a href=\"https:\/\/pubs.rsc.org\/en\/content\/articlepdf\/2024\/NA\/D3NA00620D?page=search\" target=\"_blank\" rel=\"noopener\" data-saferedirecturl=\"https:\/\/www.google.com\/url?q=https:\/\/pubs.rsc.org\/en\/content\/articlepdf\/2024\/NA\/D3NA00620D?page%3Dsearch&amp;source=gmail&amp;ust=1704995298948000&amp;usg=AOvVaw3GDKXWN7DBYIlbFK7tq5Nn\">DOI: 10.1039\/D3NA00620D<\/a> Olesk J, Donahue D, Ross J, Sheehan C, Bennett Z, Armknecht K, Kudary C, Hopf J, Ploplis V.A, Castellino F.J, Lee S.W, Nallathamby, P.D.\u00a0<\/span><span style=\"color: #000000\">(IF = 4.7)<\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>2023<\/strong><\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>35. <\/strong>Peptide-conjugated phage-mimicking nanoparticles exhibit potent antibacterial action against Streptococcus pyogenes in murine wound infection models. ChemRxiv. Cambridge: Cambridge Open Engage; 2023; This content is a preprint and has not been peer-reviewed. (2023) <em>In final review at Nanoscale Advances<\/em> Olesk J, Donahue D, Ross J, Sheehan C, Bennett Z, Armknecht K, Kudary C, Hopf J, Ploplis V.A, Castellino F.J, Lee S.W, Nallathamby, P.D. <a href=\"https:\/\/chemrxiv.org\/engage\/chemrxiv\/article-details\/64793c77be16ad5c5751deec\" target=\"_blank\" rel=\"noopener\">ChemRXiv<\/a> \u00a0<\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>2022<\/strong><\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>34. <\/strong> Biocompatible, Multi-Mode, Fluorescent, T2 MRI Contrast Magnetoelectric-Silica Nanoparticles (MagSiNs), for On-Demand Doxorubicin Delivery to Metastatic Cancer Cells. <em>Pharmaceuticals<\/em>\u00a0<i>15<\/i><b>,\u00a0<\/b>1216 (2022) Waters, M.; Hopf, J.; Tam,E.; Wallace, S.; Chang, J.; Bennett, Z.; Aquino, H.; Roeder, R.K.; Helquist,P.; Stack, M.S.; Nallathamby, P.D. <a href=\"https:\/\/www.mdpi.com\/1424-8247\/15\/10\/1216\" target=\"_blank\" rel=\"noopener\">https:\/\/www.mdpi.com\/1424-8247\/15\/10\/1216\u00a0 <\/a><\/span><span style=\"color: #000000\">(IF = 5.677)<\/span><\/h4>\n<h4><\/h4>\n<h4><span style=\"color: #000000\"><strong>33. <\/strong>\u00a0Engineering bioactive nanoparticles to rejuvenate vascular progenitor cells. <i>Communications Biology<\/i>\u00a0<b>5,\u00a0<\/b>635 (2022) Bui, L., Edwards, S., Hall, E., Alderfer, L., Round, K., Owen, M., Sainaghi, P., Zhang, S., Nallathamby, P.D., Haneline, L.S., Hanjaya-Putra,D.<\/span><br \/>\n<a href=\"http:\/\/doi.org\/10.1038\/s42003-022-03578-4\" target=\"_blank\" rel=\"noopener\">doi:10.1038\/s42003-022-03578-4\u00a0<\/a><span style=\"color: #000000\">(IF = 6.268)<\/span><\/h4>\n<h4><\/h4>\n<h4><span style=\"color: #000000\"><strong>2021<\/strong><\/span><br \/>\n<span style=\"color: #000000\"><strong>32. <\/strong>Colloidal Stability, Cytotoxicity, and Cellular Uptake of HfO2 Nanoparticles<strong><br \/>\n<\/strong>Journal of Biomedical Materials Research: Part B &#8211; Applied Biomaterials, 2021<\/span><br \/>\n<span style=\"color: #000000\">Tracie McGinnity, Viktoriya Sokolova, Oleg Prymak, Prakash Nallathamby, Matthias Epple, and Ryan K. Roeder\u00a0<\/span><br \/>\n<span style=\"color: #000000\"><a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1002\/jbm.b.34800\" target=\"_blank\" rel=\"noopener noreferrer\">doi: 10.1002\/jbm.b.34800\u00a0<\/a><\/span><span style=\"color: #000000\">(IF = 3.405)<\/span><\/h4>\n<h4><\/h4>\n<h4><span style=\"color: #000000\"><strong>2019<\/strong><\/span><br \/>\n<span style=\"color: #000000\"><strong>31. <\/strong>Phage-mimicking antibacterial core\u2013shell nanoparticles<strong><br \/>\n<\/strong>Nanoscale Advances, 2019, 1, 4812\u20134826<\/span><br \/>\n<span style=\"color: #000000\">Juliane Hopf, Margo Waters, Veronica Kalwajtys, Katelyn E. Carothers, Ryan K. Roeder, Joshua D. Shrout, Shaun W. Lee and Prakash D. Nallathamby<\/span><br \/>\n<span style=\"color: #000000\"><a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1039\/C9NA00461K\" target=\"_blank\" rel=\"noopener noreferrer\">doi: 10.1039\/C9NA00461K\u00a0<\/a><\/span><span style=\"color: #000000\">(IF = 5.598)<\/span><\/h4>\n<h4><\/h4>\n<h4><span style=\"color: #000000\"><strong>30.\u00a0<\/strong>Nanoparticles in Biomedicine-Focus on Imaging Applications<\/span><br \/>\n<span style=\"color: #000000\">Engineered Science, 5, 1-20<\/span><br \/>\n<span style=\"color: #000000\">P. Zhou, J. Wang, X.Du, T. Huang, P. D. Nallathamby, L. Yang, W. Zou, Y. Zhou, J-M Jault, S. Chen and F. Ding<\/span><br \/>\n<span style=\"color: #000000\"><a style=\"color: #000000\" href=\"http:\/\/doi.org\/10.30919\/es8d708\">doi:10.30919\/es8d708<\/a><\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>2018<\/strong><\/span><br \/>\n<span style=\"color: #000000\"><strong>29. <\/strong>CD133 Promotes Adhesion to the Ovarian Cancer Metastatic Niche<\/span><br \/>\n<span style=\"color: #000000\">Cancer Growth and Metastasis,\u00a0\u00a011, 1-11<\/span><br \/>\n<span style=\"color: #000000\">Lynn Roy, Alexander Bobbs, Rachel Sattler, Jeffrey L Kurkewich, Paige B Dausinas, Prakash Nallathamby, Karen D Cowden Dahl<\/span><br \/>\n<span style=\"color: #000000\">doi<a style=\"color: #000000\" href=\"https:\/\/doi.org\/10.1177\/1179064418767882\" target=\"_blank\" rel=\"noopener noreferrer\">10.1177\/1179064418767882\u00a0<\/a><\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>28.<\/strong> Super-resolution fluorescence microscopy by stepwise optical saturation<\/span><br \/>\n<span style=\"color: #000000\">Biomedical Optics Express\u00a0 9, 1613-1629 (IF = 3.562)<\/span><br \/>\n<span style=\"color: #000000\">Yide Zhang, P.D. Nallathamby,Genevieve D. Vigil, Aamir A. Khan, Devon E. Mason, Joel D. Boerckel, Ryan K. Roeder, and Scott S. Howard<\/span><br \/>\n<span style=\"color: #000000\">doi<a style=\"color: #000000\" href=\"https:\/\/doi.org\/10.1364\/BOE.9.001613\" target=\"_blank\" rel=\"noopener noreferrer\">10.1364\/BOE.9.001613\u00a0<\/a><\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>2017<\/strong><\/span><br \/>\n<span style=\"color: #000000\"><strong>27.<\/strong> Nanoparticle imaging probes for molecular imaging with computed tomography and application to cancer imaging<\/span><br \/>\n<span style=\"color: #000000\">SPIE Medical Imaging<\/span><br \/>\n<span style=\"color: #000000\">101320X-101320X-8<\/span><br \/>\n<span style=\"color: #000000\">doi<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1117\/12.2255688\" target=\"_blank\" rel=\"noopener noreferrer\">:10.1039\/c6tb01659f\u00a0<\/a><\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>2016<\/strong><\/span><br \/>\n<span style=\"color: #000000\"><strong>26.<\/strong> Single Nanoparticle Plasmonic Spectroscopy for Study of Efflux Function of Multidrug ABC Membrane Transporters of Single Live Cells<\/span><br \/>\n<span style=\"color: #000000\">RSC Advances; 6, 36794-36802<\/span><br \/>\n<span style=\"color: #000000\">doi:<a href=\"https:\/\/dx.doi.org\/10.1039\/C6RA05895G\" target=\"_blank\" rel=\"noopener\">10.1039\/C6RA05895G<\/a>(IF = 4.036)<\/span><br \/>\n<span style=\"color: #000000\"><strong>25.<\/strong> Single Nanoparticle Plasmonic Spectroscopy for Study of Charge-Dependent Efflux Function of Multidrug ABC Transporters of Single Live Bacillus subtilis Cells<\/span><br \/>\n<span style=\"color: #000000\">The Journal of Physical Chemistry C; 120, 21007-21016<\/span><br \/>\n<span style=\"color: #000000\">doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1021\/acs.jpcc.6b03313\" target=\"_blank\" rel=\"noopener noreferrer\">10.1021\/acs.jpcc.6b03313<\/a> (IF = 4.126)<\/span><br \/>\n<span style=\"color: #000000\"><strong>24.<\/strong> Hafnia (HfO 2) nanoparticles as an X-ray contrast agent and mid-infrared biosensor<\/span><br \/>\n<span style=\"color: #000000\">Nanoscale; 8, 13627-13637<\/span><br \/>\n<span style=\"color: #000000\">doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1039\/c6nr03217f\" target=\"_blank\" rel=\"noopener noreferrer\">10.1039\/c6nr03217f<\/a> (IF = 8.307)<\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>23.<\/strong> Preparation of fluorescent Au\u2013SiO 2 core\u2013shell nanoparticles and nanorods with tunable silica shell thickness and surface modification for immunotargeting<\/span><br \/>\n<span style=\"color: #000000\">Journal of Materials Chemistry B; 4, 5418-5428<\/span><br \/>\n<span style=\"color: #000000\">doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1039\/c6tb01659f\" target=\"_blank\" rel=\"noopener noreferrer\">10.1039\/c6tb01659f\u00a0<\/a>(IF = 6.331)<\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>2015<\/strong><\/span><br \/>\n<span style=\"color: #000000\"><strong>22.<\/strong> New surface radiolabeling schemes of super paramagnetic iron oxide nanoparticles (SPIONs) for biodistribution studies<\/span><br \/>\n<span style=\"color: #000000\">Nanoscale; 7, 6545-6555<\/span><br \/>\n<span style=\"color: #000000\">doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1039\/c4nr06441k\" target=\"_blank\" rel=\"noopener noreferrer\">10.1039\/c4nr06441k<\/a>(IF = 8.307)<\/span><br \/>\n<span style=\"color: #000000\"><strong>21.<\/strong> Design and Synthesis of Nanoparticle Contrast Agents for Spectral (color) X-Ray Imaging<\/span><br \/>\n<span style=\"color: #000000\">MRS Proceedings; 1719, mrsf14-1719-c05-08<\/span><br \/>\n<span style=\"color: #000000\">doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1557\/opl.2015.460\" target=\"_blank\" rel=\"noopener noreferrer\">10.1557\/opl.2015.460<\/a><\/span><br \/>\n<span style=\"color: #000000\"><strong>20.<\/strong>\u00a0Wavelength dependent specific plasmon resonance coupling of single silver nanoparticles with EGFP<\/span><br \/>\n<span style=\"color: #000000\">Nanoscale; 7, 17623-17630<\/span><br \/>\n<span style=\"color: #000000\">doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1039\/c5nr05234c\" target=\"_blank\" rel=\"noopener noreferrer\">10.1039\/c5nr05234c<\/a> (IF = 8.307)<\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>2013 <\/strong><\/span><br \/>\n<span style=\"color: #000000\"><strong>19.<\/strong> Study of charge-dependent transport and toxicity of peptide-functionalized silver nanoparticles using zebrafish embryos and single nanoparticle plasmonic spectroscopy<\/span><br \/>\n<span style=\"color: #000000\">Chemical research in toxicology; 26, 904-917<\/span><br \/>\n<span style=\"color: #000000\">doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1021\/tx400087d\" target=\"_blank\" rel=\"noopener noreferrer\">10.1021\/tx400087d<\/a> (IF = 3.739)<\/span><br \/>\n<span style=\"color: #000000\"><strong>18.<\/strong> Dynamic development of the protein corona on silica nanoparticles: composition and role in toxicity<\/span><br \/>\n<span style=\"color: #000000\">Nanoscale; 5, 6372-6380<\/span><br \/>\n<span style=\"color: #000000\">doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1039\/c3nr33280B\" target=\"_blank\" rel=\"noopener noreferrer\">10.1039\/c3nr33280B<\/a> (IF = 8.307)<\/span><br \/>\n<span style=\"color: #000000\"><strong>17.<\/strong> In Vivo Inhalation Exposures to Super-Paramagnetic Iron-Oxide Nanoparticles (SPIONP) followed by Magnetic Particle Detection (MPD) and Accelerator Mass Spectrometry (AMS) Analysis<\/span><br \/>\n<span style=\"color: #000000\">Journal of Aerosol of Medicine and Pulmonary Drug Delivery; 26, A16-A16<\/span><br \/>\n<span style=\"color: #000000\"><strong>16.<\/strong> Silver Nanoparticles Incite Size-and Dose-Dependent Developmental Phenotypes and Nanotoxicity in Zebrafish Embryos<\/span><br \/>\n<span style=\"color: #000000\">Chemical research in toxicology; 26, 1503-1513<\/span><br \/>\n<span style=\"color: #000000\">doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1021\/tx400228p\" target=\"_blank\" rel=\"noopener noreferrer\">10.1021\/tx400228p\u00a0<\/a>(IF = 3.739)<\/span><br \/>\n<span style=\"color: #000000\"><strong>15.<\/strong> Silver nanoparticles induce developmental stage-specific embryonic phenotypes in zebrafish<\/span><br \/>\n<span style=\"color: #000000\">Nanoscale; 5, 11625-11636<\/span><br \/>\n<span style=\"color: #000000\">doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1039\/c3nr03210h\" target=\"_blank\" rel=\"noopener noreferrer\">10.1039\/c3nr03210h\u00a0<\/a>(IF = 8.307)<\/span><br \/>\n<span style=\"color: #000000\"><strong>14.<\/strong> Volume labeling with Alexa Fluor dyes and surface functionalization of highly sensitive fluorescent silica (SiO 2) nanoparticles<\/span><br \/>\n<span style=\"color: #000000\">Nanoscale; 5, 10369-10375<\/span><br \/>\n<span style=\"color: #000000\">doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1039\/c3nr02639F\" target=\"_blank\" rel=\"noopener noreferrer\">10.1039\/c3nr02639F\u00a0<\/a>(IF = 8.307)<\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>2012 <\/strong><\/span><br \/>\n<span style=\"color: #000000\"><strong>13<\/strong>. Single nanoparticle spectroscopy for real-time in vivo quantitative analysis of transport and toxicity of single nanoparticles in single embryos.<\/span><br \/>\n<span style=\"color: #000000\">The Analyst; 137, 2973<\/span><br \/>\n<span style=\"color: #000000\">doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1039\/C2AN35293A\" target=\"_blank\" rel=\"noopener noreferrer\">10.1039\/C2AN35293A\u00a0<\/a>(IF = 4.616)<\/span><br \/>\n<span style=\"color: #000000\"><strong>12.<\/strong> In Vivo Quantitative Study of Sized-Dependent Transport and Toxicity of Single Silver Nanoparticles Using Zebrafish Embryos<\/span><br \/>\n<span style=\"color: #000000\">Chemical Research in Toxicology; 25, 1029-1046<\/span><br \/>\n<span style=\"color: #000000\">doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1021\/tx300021u\" target=\"_blank\" rel=\"noopener noreferrer\">10.1021\/tx300021u<\/a> (IF = 3.739<strong>)<\/strong><\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>2010 <\/strong><\/span><br \/>\n<span style=\"color: #000000\"><strong>11.<\/strong> Study of cytotoxic and therapeutic effects of stable and purified silver nanoparticles on tumor cells<\/span><br \/>\n<span style=\"color: #000000\">Nanoscale; 2, 942-952 doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1039\/c0nr00080a\" target=\"_blank\" rel=\"noopener noreferrer\">10.1039\/c0nr00080a<\/a> (IF = 8.307)<\/span><br \/>\n<span style=\"color: #000000\"><strong>10.<\/strong> Study of the Multidrug Membrane Transporter of Single Living Pseudomonas aeruginosa Cells Using Size-Dependent Plasmonic Nanoparticle Optical Probes<\/span><br \/>\n<span style=\"color: #000000\">Biochemistry; 49, 5942-5953doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1021\/bi100268k\" target=\"_blank\" rel=\"noopener noreferrer\">10.1021\/bi100268k\u00a0<\/a>(IF = 3.162)<strong>\u00a0<\/strong><\/span><br \/>\n<span style=\"color: #000000\"><strong>9<\/strong>. Probing of multidrug ABC membrane transporters of single living cells using single plasmonic nanoparticle optical probes<\/span><br \/>\n<span style=\"color: #000000\">Analytical and bioanalytical chemistry; 397, 3317-3328doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1007\/s00216-010-3864-8\">10.1007\/s00216-010-3864-8<\/a>(IF = 3.44)<\/span><br \/>\n<span style=\"color: #000000\"><strong>8.<\/strong> Design and characterization of optical nanorulers of single nanoparticles using optical microscopy and spectroscopy<\/span><br \/>\n<span style=\"color: #000000\">Nanoscale; 2, 1715-1722doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1039\/c0nr00303d\" target=\"_blank\" rel=\"noopener noreferrer\">10.1039\/c0nr00303d\u00a0<\/a>(IF = 8.307)<\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>2009 <\/strong><\/span><br \/>\n<span style=\"color: #000000\"><strong>7.<\/strong> Random walk of single gold nanoparticles in zebrafish embryos leading to stochastic toxic effects on embryonic developments<\/span><br \/>\n<span style=\"color: #000000\">Nanoscale; 1, 138-152<\/span><br \/>\n<span style=\"color: #000000\">doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1039\/b9nr00053d\" target=\"_blank\" rel=\"noopener noreferrer\">10.1039\/b9nr00053d<\/a> (IF = 8.307)<\/span><br \/>\n<span style=\"color: #000000\"><strong>6.<\/strong> Correlation and Characterization of Three-Dimensional Morphologically Dependent Localized Surface Plasmon Resonance Spectra of Single Silver Nanoparticles Using Dark-Field Optical Microscopy and Spectroscopy and Atomic Force Microscopy<\/span><br \/>\n<span style=\"color: #000000\">The Journal of Physical Chemistry C; 114, 74-81<\/span><br \/>\n<span style=\"color: #000000\">doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1021\/jp9083019\">10.1021\/jp9083019\u00a0<\/a>(IF = 4.126)<\/span><br \/>\n<span style=\"color: #000000\"><strong>5.<\/strong> Real-time imaging and tuning subcellular structures and membrane transport kinetics of single live cells at nanosecond regime<\/span><br \/>\n<span style=\"color: #000000\">The Journal of Physical Chemistry B; 113, 14393-14404<\/span><br \/>\n<span style=\"color: #000000\">doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1021\/jp9021739\" target=\"_blank\" rel=\"noopener noreferrer\">10.1021\/jp9021739\u00a0<\/a>(IF =2.991)<\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>2008 <\/strong><\/span><br \/>\n<span style=\"color: #000000\"><strong>4<\/strong>. Photostable single-molecule nanoparticle optical biosensors for real-time sensing of single cytokine molecules and their binding reactions<\/span><br \/>\n<span style=\"color: #000000\">Journal of the American Chemical Society; 130, 17095-17105<\/span><br \/>\n<span style=\"color: #000000\">doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1021\/ja8068853\" target=\"_blank\" rel=\"noopener noreferrer\">10.1021\/ja8068853<\/a> (IF = 16.38)<\/span><br \/>\n<span style=\"color: #000000\"><strong>3.<\/strong> Design of stable and uniform single nanoparticle photonics for in vivo dynamics imaging of nanoenvironments of zebrafish embryonic fluids<\/span><br \/>\n<span style=\"color: #000000\">ACS nano; 2, 1371-1380<\/span><br \/>\n<span style=\"color: #000000\">doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1021\/nn800048x\" target=\"_blank\" rel=\"noopener noreferrer\">10.1021\/nn800048x\u00a0<\/a>(IF = 18.03)<\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>2007<\/strong><\/span><br \/>\n<span style=\"color: #000000\"><strong>2.<\/strong> In vivo imaging of transport and biocompatibility of single silver nanoparticles in early development of zebrafish embryos<\/span><br \/>\n<span style=\"color: #000000\">ACS Nano; 1, 133-143<\/span><br \/>\n<span style=\"color: #000000\">doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1021\/nn700048y\" target=\"_blank\" rel=\"noopener noreferrer\">10.1021\/nn700048y<\/a> (IF = 18.03)<\/span><br \/>\n<span style=\"color: #000000\"><strong>1.<\/strong> Design and synthesis of single-nanoparticle optical biosensors for imaging and characterization of single receptor molecules on single living cells<\/span><br \/>\n<span style=\"color: #000000\">Analytical chemistry; 79, 7708-7718<\/span><br \/>\n<span style=\"color: #000000\">doi:<a style=\"color: #000000\" href=\"http:\/\/dx.doi.org\/10.1021\/ac0709706\" target=\"_blank\" rel=\"noopener noreferrer\">10.1021\/ac0709706\u00a0<\/a>(IF = 8.008)<\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>Patents<\/strong><\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>8.<\/strong> <strong>\u201cPhage-Mimicking Nanoparticle And Polyethylenimine Metal Implant Coatings\u201d<\/strong><br \/>\nInventor(s): Prakash Daniel Nallathamby<br \/>\nPublication date: 2025<br \/>\nApplication \u201d PCT\/US2025\/042207<\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>7.<\/strong> \u201cPLGA Nanoparticles Formulations Loaded With Antibiotics Induce Sustained and Controlled Antibiotics Release for Prolonged Antibacterial Action Against MRSA, and Pseudomonas aeruginosa FRD1\u201d<br \/>\nInventor(s): Prakash Daniel Nallathamby<br \/>\nPublication date: 2025<br \/>\nApplication \u201d # 63\/865,823<\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>6.<\/strong> \u201cPeptide-conjugated phage-mimicking nanoparticles for inflammation free wound healing\u201d<br \/>\nInventor(s): Prakash Daniel Nallathamby<br \/>\nPublication date: 2025<br \/>\nApplication # 19\/487,191<\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>5.<\/strong> \u00a0Magnetic nanoparticles and methods of drug release<br \/>\nInventor(s): Prakash Daniel Nallathamby<br \/>\nPublication date: 2023\/5\/07<br \/>\nWorldwide Patent: WO2023215210A1<\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>4.<\/strong> Dual antibody bridge nanoparticles for efficient targeting of cancer cells using immunotherapy (universal CAR-T cells) or other anticancer therapeutics<br \/>\nInventor(s): Prakash Daniel Nallathamby<br \/>\nPublication date: 2022\/5\/01<br \/>\nUS Patents Office: Patent No. 12,576,160 B2 \u00b7 Issued Mar 17, 2026 <strong>(NOTICE OF ALLOWANCE RECEIVED ON Jan 21, 2026)<\/strong><\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>3.<\/strong> Phage mimicking nanoparticles<br \/>\nInventors: Prakash Daniel Nallathamby, Juliane Hopf<br \/>\nPublication date: 2021\/8\/19<br \/>\nUS Patents Office<br \/>\n<a href=\"https:\/\/pubchem.ncbi.nlm.nih.gov\/patent\/US-12161725-B2\">Patent no. US 12161725 B2<\/a><\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>2.<\/strong> Nanoparticle biosensors<\/span><br \/>\n<span style=\"color: #000000\">US Patents Office<\/span><br \/>\n<span style=\"color: #000000\"><a style=\"color: #000000\" href=\"https:\/\/www.google.com\/patents\/US20090148863?dq=20090148863&amp;hl=en&amp;sa=X&amp;ved=0ahUKEwjqisGMxKzMAhWkuIMKHewTA3EQ6AEIHDAA\" target=\"_blank\" rel=\"noopener noreferrer\">Patent no.\u00a020090148863<\/a><\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>1.<\/strong> Stable nanoparticles, nanoparticle-based imaging systems, nanoparticle-based assays, and in vivo assays for screening biocompatibility and toxicity of nanoparticles<\/span><br \/>\n<span style=\"color: #000000\">US Patents Office<\/span><br \/>\n<span style=\"color: #000000\"><a style=\"color: #000000\" href=\"https:\/\/www.google.com\/patents\/US20120164073?dq=20090148863\" target=\"_blank\" rel=\"noopener noreferrer\">Patent no.\u00a020120164073<\/a><\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>Book Chapter<\/strong><\/span><br \/>\n<span style=\"color: #000000\"><strong>2007<\/strong><\/span><br \/>\n<span style=\"color: #000000\">Probing Membrane Transport of Single Live Cells Using Single-Molecule Detection and Single Nanoparticle Assay<\/span><br \/>\n<span style=\"color: #000000\">Chemical Analysis-New York-Interscience John Wiley; 172, 41<\/span><\/h4>\n<h4><span style=\"color: #000000\"><strong>Dissertation<\/strong><\/span><br \/>\n<span style=\"color: #000000\"><strong>2010<\/strong><\/span><br \/>\n<span style=\"color: #000000\">Design and Synthesis of Photostable Nanoparticle Probes for Molecular Imaging and Sensing in Life Science<\/span><br \/>\n<span style=\"color: #000000\">Old Dominion University<\/span><\/h4>\n","protected":false},"excerpt":{"rendered":"<p>Journal Publications; Citations = 3306; h-index = 25,\u00a0 i10 index = 35; Patents: 2; Patent Applications = 9; one technology licensed out. Full List of publications and citations can be accessed on\u00a0google scholar 2026 43. Brownsberger, A. F.; Kudary, C.; Williams, H. H.; Wei, S.; Latorre, P.; Eastland, R.; Sayani, O.; Lyu, J.; Davey, R.; &hellip; <\/p>\n<p><a class=\"more-link block-button\" href=\"https:\/\/sites.nd.edu\/pdnano\/?page_id=317\">Continue reading &raquo;<\/a><\/p>\n","protected":false},"author":2672,"featured_media":0,"parent":0,"menu_order":3,"comment_status":"closed","ping_status":"closed","template":"","meta":{"footnotes":""},"class_list":["post-317","page","type-page","status-publish","hentry","nodate"],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v28.4 - https:\/\/yoast.com\/product\/yoast-seo-wordpress\/ -->\n<title>Publications - Nallathamby Laboratory<\/title>\n<meta name=\"description\" content=\"Peer-reviewed publications | Research positively impacting public health | We think outside the box\" \/>\n<meta name=\"robots\" content=\"index, follow, max-snippet:-1, max-image-preview:large, max-video-preview:-1\" \/>\n<link rel=\"canonical\" href=\"https:\/\/sites.nd.edu\/pdnano\/?page_id=317\" \/>\n<meta property=\"og:locale\" content=\"en_US\" \/>\n<meta property=\"og:type\" content=\"article\" \/>\n<meta property=\"og:title\" content=\"Publications - 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