Dennis A. Moore
Mallinckrodt
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Publication
Featured researches published by Dennis A. Moore.
Biomacromolecules | 2008
Guorong Sun; Aviv Hagooly; Jinqi Xu; Andreas M. Nyström; Zicheng Li; Raffaella Rossin; Dennis A. Moore; Karen L. Wooley; Michael J. Welch
The in vivo behavior of shell cross-linked knedel-like (SCK) nanoparticles is shown to be tunable via a straightforward and versatile process that advances SCKs as attractive nanoscale carriers in the field of nanomedicine. Tuning of the pharmacokinetics was accomplished by grafting varied numbers of methoxy-terminated poly(ethylene glycol) (mPEG) chains to the amphiphilic block copolymer precursors, together with chelators for the radioactive tracer and therapeutic agent (64)Cu, followed by self-assembly into block copolymer micelles and chemical cross-linking throughout the shell regions. (64)Cu-radiolabeling was then performed to evaluate the SCKs in vivo by means of biodistribution experiments and positron emission tomography (PET). It was found that the blood retention of PEGylated SCKs could be tuned, depending on the mPEG grafting density and the nanoparticle surface properties. A semiquantitative model of the density of mPEG surface coverage as a function of in vivo behavior was applied to enhance the understanding of this system.
Chemical Science | 2013
Shiyi Zhang; Jiong Zou; Mahmoud Elsabahy; Amolkumar Karwa; Ang Li; Dennis A. Moore; Richard B. Dorshow; Karen L. Wooley
A new type of degradable, nanoscopic polymer assembly containing ultra-high levels of drug loading via covalent attachment within amphiphilic core-shell nanoparticle morphology has been generated as a potentially effective and safe anti-cancer agent. Poly(ethylene oxide)-block-polyphosphoester-based paclitaxel drug conjugates (PEO-b-PPE-g-PTX) were synthesized by rapid, scalable and versatile approach that involves only two steps: organocatalyst-promoted ring-opening-polymerization followed by click reaction-based conjugation of a PTX prodrug. Variations in the polymer-to-PTX stoichiometries allowed for optimization of the conjugation efficiency, the PTX drug loading and the resulting water solubilities of the entire polymer and the PTX content. The PEO-b-PPE-g-PTX formed well-defined micelles in aqueous solution, with a PTX loading capacity as high as 65 wt%, and a maximum PTX concentration of 6.2 mg/mL in water, which is 25000-fold higher than the aqueous solubility of free PTX. The positive cell-killing activity of PEO-b-PPE-g-PTX against several cancer cell lines is demonstrated, and the presence of pendant reactive functionality provides a powerful platform for future work to involve conjugation of multiple drugs and imaging agents to achieve chemotherapy and bioimaging.
Inorganic Chemistry | 1990
Dennis A. Moore; Phillip E. Fanwick; Michael J. Welch
Advanced Materials | 2007
Guorong Sun; Jinqi Xu; Aviv Hagooly; Raffaella Rossin; Zicheng Li; Dennis A. Moore; Craig J. Hawker; Michael J. Welch; Karen L. Wooley
Inorganic Chemistry | 1989
Dennis A. Moore; Phillip E. Fanwick; Michael J. Welch
Macromolecules | 2007
Jinqi Xu; Guorong Sun; Raffaella Rossin; Aviv Hagooly; Zicheng Li; Ken-ichi Fukukawa; Benjamin W. Messmore; Dennis A. Moore; Michael J. Welch; Craig J. Hawker; Karen L. Wooley
Archive | 1992
Dennis A. Moore; Max D. Adams; William P. Cacheris; David H. White; Muthunadar P. Periasamy; Raghavan Rajagopalan; Lynn deLearie; Steven R. Woulfe
Archive | 1994
T. Jeffrey Dunn; Dennis A. Moore; Muthunadar P. Periasamy; Milorad M. Rogic; Rebecca A. Wallace; David H. White; Steven R. Woulfe
Archive | 2005
Raghavan Rajagopalan; Richard B. Dorshow; William L. Neumann; Dennis A. Moore
Archive | 2006
Dennis A. Moore; Carol P. Howard