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Dive into the research topics where Nathan R. B. Boase is active.

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Featured researches published by Nathan R. B. Boase.


Journal of the American Chemical Society | 2014

Multimodal Polymer Nanoparticles with Combined 19F Magnetic Resonance and Optical Detection for Tunable, Targeted, Multimodal Imaging in Vivo

Barbara E. Rolfe; Idriss Blakey; Oliver Squires; Hui Peng; Nathan R. B. Boase; Cameron Alexander; Peter G. Parsons; Glen M. Boyle; Andrew K. Whittaker; Kristofer J. Thurecht

Understanding the complex nature of diseased tissue in vivo requires development of more advanced nanomedicines, where synthesis of multifunctional polymers combines imaging multimodality with a biocompatible, tunable, and functional nanomaterial carrier. Here we describe the development of polymeric nanoparticles for multimodal imaging of disease states in vivo. The nanoparticle design utilizes the abundant functionality and tunable physicochemical properties of synthetically robust polymeric systems to facilitate targeted imaging of tumors in mice. For the first time, high-resolution (19)F/(1)H magnetic resonance imaging is combined with sensitive and versatile fluorescence imaging in a polymeric material for in vivo detection of tumors. We highlight how control over the chemistry during synthesis allows manipulation of nanoparticle size and function and can lead to very high targeting efficiency to B16 melanoma cells, both in vitro and in vivo. Importantly, the combination of imaging modalities within a polymeric nanoparticle provides information on the tumor mass across various size scales in vivo, from millimeters down to tens of micrometers.


Polymer Chemistry | 2012

Molecular imaging with polymers

Nathan R. B. Boase; Idriss Blakey; Kristofer J. Thurecht

Polymers open up new possibilities in the field of molecular imaging, allowing sensitive and robust agents that can be imaged over long periods of time. This review highlights some recent advances in polymeric molecular imaging agents in both (pre)clinical and emerging applications.


Biomacromolecules | 2015

In vivo evaluation of folate decorated cross-linked micelles for the delivery of platinum anticancer drugs.

Jeaniffer Eliezar; Wei Scarano; Nathan R. B. Boase; Kristofer J. Thurecht; Martina H. Stenzel

The biodistribution of micelles with and without folic acid targeting ligands were studied using a block copolymer consisting of acrylic acid (AA) and polyethylene glycol methyl ether acrylate (PEGMEA) blocks. The polymers were prepared using RAFT polymerization in the presence of a folic acid functionalized RAFT agent. Oxoplatin was conjugated onto the acrylic acid block to form amphiphilic polymers which, when diluted in water, formed stable micelles. In order to probe the in vivo stability, a selection of micelles were cross-linked using 1,8-diamino octane. The sizes of the micelles used in this study range between 75 and 200 nm, with both spherical and worm-like conformation. The effects of cross-linking, folate conjugation and different conformation on the biodistribution were studied in female nude mice (BALB/c) following intravenous injection into the tail vein. Using optical imaging to monitor the fluorophore-labeled polymer, the in vivo biodistribution of the micelles was monitored over a 48 h time-course after which the organs were removed and evaluated ex vivo. These experiments showed that both cross-linking and conjugation with folic acid led to increased fluorescence intensities in the organs, especially in the liver and kidneys, while micelles that are not conjugated with folate and not cross-linked are cleared rapidly from the body. Higher accumulation in the spleen, liver, and kidneys was also observed for micelles with worm-like shapes compared to the spherical micelles. While the various factors of cross-linking, micelle shape, and conjugation with folic acid all contribute separately to prolong the circulation time of the micelle, optimization of these parameters for drug delivery devices could potentially overcome adverse effects such as liver and kidney toxicity.


Chemical Communications | 2013

Aptamer-targeted hyperbranched polymers: towards greater specificity for tumours in vivo

Daniel J. Coles; Barbara E. Rolfe; Nathan R. B. Boase; Rakesh N. Veedu; Kristofer J. Thurecht

Hyperbranched polymers conjugated to a peptide-aptamer were prepared using a combination of RAFT polymerisation and click chemistry for targeting tumour cells in vivo. The polymers showed enhanced cell-uptake in vitro (compared to unconjugated polymer) while excellent specificity for solid tumours was observed in vivo using a mouse model of melanoma.


Polymer Chemistry | 2014

Synthesis of a multimodal molecular imaging probe based on a hyperbranched polymer architecture

Nathan R. B. Boase; Idriss Blakey; Barbara E. Rolfe; Karine Mardon; Kristofer J. Thurecht

Molecular imaging is utilised in modern medicine to aid in the diagnosis and treatment of disease by allowing its spatiotemporal state to be examined in vivo. This study focuses on the development of novel multimodal molecular imaging agents based on hyperbranched polymers that combine the complementary capabilities of optical fluorescence imaging and positron emission tomography-computed tomography (PET/CT) into one construct. RAFT-mediated polymerisation was used to prepare two hydrophilic hyperbranched polymers that were differentiated by their size and level of branching. The multiple functional end-groups facilitated covalent attachment of both near infrared fluorescent dyes for optical imaging, as well as a copper chelator allowing binding of 64Cu as a PET radio nuclei. In vivo multimodal imaging of mice using PET/CT and planar optical imaging was first used to assess the biodistribution of the polymeric materials and it was shown that the larger and more branched polymer had a significantly longer circulation time. The larger constructs were also shown to exhibit enhanced accumulation in solid tumours in a murine B16 melanoma model. Importantly, it was demonstrated that the PET modality gave rise to high sensitivity immediately after injection of the agent, while the optical modality facilitated extended longitudinal studies, thus highlighting how the complementary capabilities of the molecular imaging agents can be useful for studying various diseases, including cancer.


Advanced Healthcare Materials | 2016

Overcoming Instability of Antibody-Nanomaterial Conjugates: Next Generation Targeted Nanomedicines Using Bispecific Antibodies

Christopher B. Howard; Nicholas L. Fletcher; Zachary H. Houston; Adrian V. Fuchs; Nathan R. B. Boase; Joshua D. Simpson; Lyndon J. Raftery; Tim Ruder; Martina L. Jones; Christopher J. de Bakker; Stephen M. Mahler; Kristofer J. Thurecht

Targeted nanomaterials promise improved therapeutic efficacy, however their application in nanomedicine is limited due to complexities associated with protein conjugations to synthetic nanocarriers. A facile method to generate actively targeted nanomaterials is developed and exemplified using polyethylene glycol (PEG)-functional nanostructures coupled to a bispecific antibody (BsAb) with dual specificity for methoxy PEG (mPEG) epitopes and cancer targets such as epidermal growth factor receptor (EGFR). The EGFR-mPEG BsAb binds with high affinity to recombinant EGFR (KD : 1 × 10(-9) m) and hyperbranched polymer (HBP) consisting of mPEG (KD : 10 × 10(-9) m) and demonstrates higher avidity for HBP compared to linear mPEG. The binding of BsAb-HBP bioconjugate to EGFR on MDA-MB-468 cancer cells is investigated in vitro using a fluorescently labeled polymer, and in in vivo xenograft models by small animal optical imaging. The antibody-targeted nanostructures show improved accumulation in tumor cells compared to non-targeted nanomaterials. This demonstrates a facile approach for tuning targeting ligand density on nanomaterials, by modulating surface functionality. Antibody fragments are tethered to the nanomaterial through simple mixing prior to administration to animals, overcoming the extensive procedures encountered for developing targeted nanomedicines.


Polymer Chemistry | 2016

Synthesis of 19F nucleic acid–polymer conjugates as real-time MRI probes of biorecognition

Giovanna Sicilia; Adrienne L. Davis; Sebastian G. Spain; Johannes P. Magnusson; Nathan R. B. Boase; Kristofer J. Thurecht; Cameron Alexander

Polymer–DNA conjugates in which one nucleic acid strand contains fluorine-substituted nucleobases have been prepared and characterised. The efficacy of these novel 19F nucleic acid–polymer conjugates as sensitive and selective in vitro reporters of DNA binding events is demonstrated through a number of rapid-acquisition MR sequences. The conjugates respond readily and in a sequence specific manner to external target oligonucleotide sequences by changes in hybridisation. In turn, these structural changes in polymer–nucleotide conjugates translate into responses which are detectable in fluorine relaxation and diffusion switches, and which can be monitored by in vitro Spin Echo and DOSY NMR spectroscopy. Although complementary to conventional FRET methods, the excellent diagnostic properties of fluorine nuclei make this approach a versatile and sensitive probe of molecular structure and conformation in polymeric assemblies.


European Journal of Pharmaceutics and Biopharmaceutics | 2015

The in vivo fate of nanoparticles and nanoparticle-loaded microcapsules after oral administration in mice: Evaluation of their potential for colon-specific delivery

Yiming Ma; Adrian V. Fuchs; Nathan R. B. Boase; Barbara E. Rolfe; Allan G.A. Coombes; Kristofer J. Thurecht


Journal of Chemical Technology & Biotechnology | 2015

Imaging tumour distribution of a polymeric drug delivery platform in vivo by PET-MRI

Simon Puttick; Nathan R. B. Boase; Idriss Blakey; Kristofer J. Thurecht


Science & Engineering Faculty | 2016

Overcoming instability of antibody-nanomaterial conjugates: Next generation targeted nanomedicines using bispecific antibodies

Christopher B. Howard; Nicholas L. Fletcher; Zachary H. Houston; Adrian V. Fuchs; Nathan R. B. Boase; Joshua D. Simpson; Lyndon J. Raftery; Tim Ruder; Martina L. Jones; Christopher J. de Bakker; Stephen M. Mahler; Kristofer J. Thurecht

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Idriss Blakey

University of Queensland

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