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1.
J Neurosci Methods ; 289: 75-84, 2017 Sep 01.
Article in English | MEDLINE | ID: mdl-28694213

ABSTRACT

BACKGROUND: Differences in the cerebro-vasculature among strains as well as individual animals might explain variability in animal models and thus, a non-invasive method tailored to image cerebral vessel of interest with high signal to noise ratio is required. NEW METHOD: Experimentally, we describe a new general protocol of three-dimensional time-of-flight magnetic resonance angiography to visualize non-invasively the cerebral vasculature in 6 different rat strains. Flow compensated angiograms of Sprague Dawley, Wistar Kyoto, Lister Hooded, Long Evans, Fisher 344 and Spontaneous Hypertensive Rat strains were obtained without the use of contrast agents. At 11.7T using a repetition time of 60ms, an isotropic resolution of up to 62µm was achieved; total imaging time was 98min for a 3D data set. RESULTS: The visualization of the cerebral arteries was improved by removing extra-cranial vessels prior to the calculation of maximum intensity projection to obtain the angiograms. Ultimately, we demonstrate that the newly implemented method is also suitable to obtain angiograms following middle cerebral artery occlusion, despite the presence of intense vasogenic edema 24h after reperfusion. COMPARISON WITH EXISTING METHODS: The careful selection of the excitation profile and repetition time at a higher static magnetic field allowed an increase in spatial resolution to reliably detect of the hypothalamic artery, the anterior choroidal artery as well as arterial branches of the peri-amygdoidal complex and the optical nerve in six different rat strains. CONCLUSIONS: MR angiography without contrast agent can be utilized to study cerebro-vascular abnormalities in various animal models.


Subject(s)
Cerebral Angiography/methods , Imaging, Three-Dimensional/methods , Magnetic Resonance Angiography/methods , Rats/anatomy & histology , Animals , Brain Edema/diagnostic imaging , Brain Edema/pathology , Cerebellum/blood supply , Cerebellum/diagnostic imaging , Infarction, Middle Cerebral Artery/diagnostic imaging , Infarction, Middle Cerebral Artery/pathology , Male , Species Specificity , Time Factors
2.
MAGMA ; 30(3): 299-307, 2017 Jun.
Article in English | MEDLINE | ID: mdl-28070869

ABSTRACT

OBJECTIVE: A newly adapted zoomed ultrafast low-angle RARE (U-FLARE) sequence is described for abdominal imaging applications at 11.7 Tesla and compared with the standard echo-plannar imaging (EPI) and snapshot fast low angle shot (FLASH) methods. MATERIALS AND METHODS: Ultrafast EPI and snapshot-FLASH protocols were evaluated to determine relaxation times in phantoms and in the mouse kidney in vivo. Owing to their apparent shortcomings, imaging artefacts, signal-to-noise ratio (SNR), and variability in the determination of relaxation times, these methods are compared with the newly implemented zoomed U-FLARE sequence. RESULTS: Snapshot-FLASH has a lower SNR when compared with the zoomed U-FLARE sequence and EPI. The variability in the measurement of relaxation times is higher in the Look-Locker sequences than in inversion recovery experiments. Respectively, the average T1 and T2 values at 11.7 Tesla are as follows: kidney cortex, 1810 and 29 ms; kidney medulla, 2100 and 25 ms; subcutaneous tumour, 2365 and 28 ms. CONCLUSION: This study demonstrates that the zoomed U-FLARE sequence yields single-shot single-slice images with good anatomical resolution and high SNR at 11.7 Tesla. Thus, it offers a viable alternative to standard protocols for mapping very fast parameters, such as T1 and T2, or dynamic processes in vivo at high field.


Subject(s)
Abdomen/diagnostic imaging , Diffusion Magnetic Resonance Imaging/methods , Echo-Planar Imaging/methods , Kidney/diagnostic imaging , Neoplasms, Experimental/diagnostic imaging , Signal Processing, Computer-Assisted , Abdomen/pathology , Animals , Cell Line, Tumor , Humans , Image Enhancement/methods , Image Interpretation, Computer-Assisted/methods , Kidney/pathology , Male , Mice , Mice, Nude , Neoplasms, Experimental/pathology , Reproducibility of Results , Sensitivity and Specificity
3.
Small ; 10(24): 5054-67, 2014 Dec 29.
Article in English | MEDLINE | ID: mdl-25123704

ABSTRACT

The success of nanoparticle-based therapies will depend in part on accurate delivery to target receptors and organs. There is, therefore, considerable potential in nanoparticles which achieve delivery of the right drug(s) using the right route of administration to the right location at the right time, monitoring the process by non-invasive molecular imaging. A challenge is harnessing immunotherapy via activation of Toll-like receptors (TLRs) for the development of vaccines against major infectious diseases and cancer. In immunotherapy, delivery of the vaccine components to lymph nodes (LNs) is essential for effective stimulation of the immune response. Although some promising advances have been made, delivering therapeutics to LNs remains challenging. It is here shown that iron-oxide nanoparticles can be engineered to combine in a single and small (<50 nm) nanocarrier complementary multimodal imaging features with the immunostimulatory activity of polyinosinic-polycytidylic acid (poly (I:C)). Whilst the fluorescence properties of the nanocarrier show effective delivery to endosomes and TLR3 in antigen presenting cells, MRI/SPECT imaging reveals effective delivery to LNs. Importantly, in vitro and in vivo studies show that, using this nanocarrier, the immunostimulatory activity of poly (I:C) is greatly enhanced. These nanocarriers have considerable potential for cancer diagnosis and the development of new targeted and programmable immunotherapies.


Subject(s)
Drug Carriers , Ferric Compounds/administration & dosage , Immune System/drug effects , Lymph Nodes/drug effects , Nanoparticles , RNA, Double-Stranded/administration & dosage , Animals , Cell Line , Immune System/immunology , Mice , Mice, Inbred BALB C
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