Literature DB >> 21962084

Nanoparticle-mediated measurement of target-drug binding in cancer cells.

Adeeti V Ullal1, Thomas Reiner, Katherine S Yang, Rostic Gorbatov, Changwook Min, David Issadore, Hakho Lee, Ralph Weissleder.   

Abstract

Responses to molecularly targeted therapies can be highly variable and depend on mutations, fluctuations in target protein levels in individual cells, and drug delivery. The ability to rapidly quantitate drug response in cells harvested from patients in a point-of-care setting would have far reaching implications. Capitalizing on recent developments with miniaturized NMR technologies, we have developed a magnetic nanoparticle-based approach to directly measure both target expression and drug binding in scant human cells. The method involves covalent conjugation of the small-molecule drug to a magnetic nanoparticle that is then used as a read-out for target expression and drug-binding affinity. Using poly(ADP-ribose) polymerase (PARP) inhibition as a model system, we developed an approach to distinguish differential expression of PARP in scant cells with excellent correlation to gold standards, the ability to mimic drug pharmacodynamics ex vivo through competitive target-drug binding, and the potential to perform such measurements in clinical samples.
© 2011 American Chemical Society

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Year:  2011        PMID: 21962084      PMCID: PMC3297118          DOI: 10.1021/nn203450p

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  39 in total

1.  Magnetic relaxation switches capable of sensing molecular interactions.

Authors:  J Manuel Perez; Lee Josephson; Terrence O'Loughlin; Dagmar Högemann; Ralph Weissleder
Journal:  Nat Biotechnol       Date:  2002-07-22       Impact factor: 54.908

2.  Method of determining nanoparticle core weight.

Authors:  Fred Reynolds; Terry O'loughlin; Ralph Weissleder; Lee Josephson
Journal:  Anal Chem       Date:  2005-02-01       Impact factor: 6.986

3.  Continuous analyte sensing with magnetic nanoswitches.

Authors:  Eric Yi Sun; Ralph Weissleder; Lee Josephson
Journal:  Small       Date:  2006-10       Impact factor: 13.281

Review 4.  Nanotechnologies for biomolecular detection and medical diagnostics.

Authors:  Mark Ming-Cheng Cheng; Giovanni Cuda; Yuri L Bunimovich; Marco Gaspari; James R Heath; Haley D Hill; Chad A Mirkin; A Jasper Nijdam; Rosa Terracciano; Thomas Thundat; Mauro Ferrari
Journal:  Curr Opin Chem Biol       Date:  2006-01-18       Impact factor: 8.822

5.  PARP-1 and PARP-2 interact with nucleophosmin/B23 and accumulate in transcriptionally active nucleoli.

Authors:  Véronique S Meder; Marcel Boeglin; Gilbert de Murcia; Valérie Schreiber
Journal:  J Cell Sci       Date:  2005-01-01       Impact factor: 5.285

6.  The binding avidity of a nanoparticle-based multivalent targeted drug delivery platform.

Authors:  Seungpyo Hong; Pascale R Leroueil; István J Majoros; Bradford G Orr; James R Baker; Mark M Banaszak Holl
Journal:  Chem Biol       Date:  2007-01

7.  Bioorthogonal probes for polo-like kinase 1 imaging and quantification.

Authors:  Ghyslain Budin; Katherine S Yang; Thomas Reiner; Ralph Weissleder
Journal:  Angew Chem Int Ed Engl       Date:  2011-08-24       Impact factor: 15.336

8.  Bioorthogonal turn-on probes for imaging small molecules inside living cells.

Authors:  Neal K Devaraj; Scott Hilderbrand; Rabi Upadhyay; Ralph Mazitschek; Ralph Weissleder
Journal:  Angew Chem Int Ed Engl       Date:  2010-03-19       Impact factor: 15.336

9.  Potential chemotherapeutic activity of 4-iodo-3-nitrobenzamide. Metabolic reduction to the 3-nitroso derivative and induction of cell death in tumor cells in culture.

Authors:  J Mendeleyev; E Kirsten; A Hakam; K G Buki; E Kun
Journal:  Biochem Pharmacol       Date:  1995-08-25       Impact factor: 5.858

10.  Compromised CDK1 activity sensitizes BRCA-proficient cancers to PARP inhibition.

Authors:  Neil Johnson; Yu-Chen Li; Zandra E Walton; Katherine A Cheng; Danan Li; Scott J Rodig; Lisa A Moreau; Christine Unitt; Roderick T Bronson; Huw D Thomas; David R Newell; Alan D D'Andrea; Nicola J Curtin; Kwok-Kin Wong; Geoffrey I Shapiro
Journal:  Nat Med       Date:  2011-06-26       Impact factor: 53.440

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  7 in total

Review 1.  Dawn of advanced molecular medicine: nanotechnological advancements in cancer imaging and therapy.

Authors:  Charalambos Kaittanis; Travis M Shaffer; Daniel L J Thorek; Jan Grimm
Journal:  Crit Rev Oncog       Date:  2014

Review 2.  Microchip-based detection of magnetically labeled cancer biomarkers.

Authors:  Melaku Muluneh; David Issadore
Journal:  Adv Drug Deliv Rev       Date:  2013-10-05       Impact factor: 15.470

Review 3.  Stimuli-responsive cross-linked micelles for on-demand drug delivery against cancers.

Authors:  Yuanpei Li; Kai Xiao; Wei Zhu; Wenbin Deng; Kit S Lam
Journal:  Adv Drug Deliv Rev       Date:  2013-09-21       Impact factor: 15.470

4.  Sequestering survivin to functionalized nanoparticles: a strategy to enhance apoptosis in cancer cells.

Authors:  Ragini Jenkins; Yuriy P Bandera; Michael A Daniele; LeAnna L Ledford; Ashlee Tietje; Andrew A Kelso; Michael G Sehorn; Yanzhang Wei; Mrinmay Chakrabarti; Swapan K Ray; Stephen H Foulger
Journal:  Biomater Sci       Date:  2016-02-04       Impact factor: 6.843

Review 5.  Cancer nanotechnology: the impact of passive and active targeting in the era of modern cancer biology.

Authors:  Nicolas Bertrand; Jun Wu; Xiaoyang Xu; Nazila Kamaly; Omid C Farokhzad
Journal:  Adv Drug Deliv Rev       Date:  2013-11-22       Impact factor: 15.470

Review 6.  Click Chemistry-Mediated Nanosensors for Biochemical Assays.

Authors:  Yiping Chen; Yunlei Xianyu; Jing Wu; Binfeng Yin; Xingyu Jiang
Journal:  Theranostics       Date:  2016-04-28       Impact factor: 11.556

7.  Olaparib nanoparticles potentiated radiosensitization effects on lung cancer.

Authors:  Min Wu; Jing Liu; ChuanFei Hu; Dong Li; Juan Yang; ZhouXue Wu; LingLin Yang; Yue Chen; ShaoZhi Fu; JingBo Wu
Journal:  Int J Nanomedicine       Date:  2018-12-11
  7 in total

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