TY - JOUR A1 - Herz, Stefan A1 - Stefanescu, Maria R. A1 - Lohr, David A1 - Vogel, Patrick A1 - Kosmala, Aleksander A1 - Terekhov, Maxim A1 - Weng, Andreas M. A1 - Grunz, Jan-Peter A1 - Bley, Thorsten A. A1 - Schreiber, Laura M. T1 - Effects of image homogeneity on stenosis visualization at 7 T in a coronary artery phantom study: With and without B1-shimming and parallel transmission JF - PloS One N2 - Background To investigate the effects of B\(_1\)-shimming and radiofrequency (RF) parallel transmission (pTX) on the visualization and quantification of the degree of stenosis in a coronary artery phantom using 7 Tesla (7 T) magnetic resonance imaging (MRI). Methods Stenosis phantoms with different grades of stenosis (0%, 20%, 40%, 60%, 80%, and 100%; 5 mm inner vessel diameter) were produced using 3D printing (clear resin). Phantoms were imaged with four different concentrations of diluted Gd-DOTA representing established arterial concentrations after intravenous injection in humans. Samples were centrally positioned in a thorax phantom of 30 cm diameter filled with a custom-made liquid featuring dielectric properties of muscle tissue. MRI was performed on a 7 T whole-body system. 2D-gradient-echo sequences were acquired with an 8-channel transmit 16-channel receive (8 Tx / 16 Rx) cardiac array prototype coil with and without pTX mode. Measurements were compared to those obtained with identical scan parameters using a commercially available 1 Tx / 16 Rx single transmit coil (sTX). To assess reproducibility, measurements (n = 15) were repeated at different horizontal angles with respect to the B0-field. Results B\(_1\)-shimming and pTX markedly improved flip angle homogeneity across the thorax phantom yielding a distinctly increased signal-to-noise ratio (SNR) averaged over a whole slice relative to non-manipulated RF fields. Images without B\(_1\)-shimming showed shading artifacts due to local B\(_1\)\(^+\)-field inhomogeneities, which hampered stenosis quantification in severe cases. In contrast, B\(_1\)-shimming and pTX provided superior image homogeneity. Compared with a conventional sTX coil higher grade stenoses (60% and 80%) were graded significantly (p<0.01) more precise. Mild to moderate grade stenoses did not show significant differences. Overall, SNR was distinctly higher with B\(_1\)-shimming and pTX than with the conventional sTX coil (inside the stenosis phantoms 14%, outside the phantoms 32%). Both full and half concentration (10.2 mM and 5.1 mM) of a conventional Gd-DOTA dose for humans were equally suitable for stenosis evaluation in this phantom study. Conclusions B\(_1\)-shimming and pTX at 7 T can distinctly improve image homogeneity and therefore provide considerably more accurate MR image analysis, which is beneficial for imaging of small vessel structures. KW - stenosis KW - magnetic resonance imaging KW - thorax KW - in vivo imaging KW - coronary arteries KW - image processing KW - 3D printing KW - signal to noise ratio Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-300129 VL - 17 IS - 6 ER - TY - JOUR A1 - Vogel, Patrick A1 - Rückert, Martin Andreas A1 - Friedrich, Bernhard A1 - Tietze, Rainer A1 - Lyer, Stefan A1 - Kampf, Thomas A1 - Hennig, Thomas A1 - Dölken, Lars A1 - Alexiou, Christoph A1 - Behr, Volker Christian T1 - Critical Offset Magnetic PArticle SpectroScopy for rapid and highly sensitive medical point-of-care diagnostics JF - Nature Communications N2 - Magnetic nanoparticles (MNPs) have been adapted for many applications, e.g., bioassays for the detection of biomarkers such as antibodies, by controlled engineering of specific surface properties. Specific measurement of such binding states is of high interest but currently limited to highly sensitive techniques such as ELISA or flow cytometry, which are relatively inflexible, difficult to handle, expensive and time-consuming. Here we report a method named COMPASS (Critical-Offset-Magnetic-Particle-SpectroScopy), which is based on a critical offset magnetic field, enabling sensitive detection to minimal changes in mobility of MNP ensembles, e.g., resulting from SARS-CoV-2 antibodies binding to the S antigen on the surface of functionalized MNPs. With a sensitivity of 0.33 fmole/50 µl (≙7 pM) for SARS-CoV-2-S1 antibodies, measured with a low-cost portable COMPASS device, the proposed technique is competitive with respect to sensitivity while providing flexibility, robustness, and a measurement time of seconds per sample. In addition, initial results with blood serum demonstrate high specificity. KW - biochemical assays KW - characterization and analytical techniques KW - magnetic properties and materials KW - nanoparticles Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-300893 VL - 13 ER - TY - JOUR A1 - Guggenberger, Konstanze Viktoria A1 - Torre, Giulia Dalla A1 - Ludwig, Ute A1 - Vogel, Patrick A1 - Weng, Andreas Max A1 - Vogt, Marius Lothar A1 - Fröhlich, Matthias A1 - Schmalzing, Marc A1 - Raithel, Esther A1 - Forman, Christoph A1 - Urbach, Horst A1 - Meckel, Stephan A1 - Bley, Thorsten Alexander T1 - Vasa vasorum of proximal cerebral arteries after dural crossing - potential imaging confounder in diagnosing intracranial vasculitis in elderly subjects on black-blood MRI JF - European Radiology N2 - Objectives Vessel wall enhancement (VWE) may be commonly seen on MRI images of asymptomatic subjects. This study aimed to characterize the VWE of the proximal internal carotid (ICA) and vertebral arteries (VA) in a non-vasculitic elderly patient cohort. Methods Cranial MRI scans at 3 Tesla were performed in 43 patients (aged ≥ 50 years) with known malignancy for exclusion of cerebral metastases. For vessel wall imaging (VWI), a high-resolution compressed-sensing black-blood 3D T1-weighted fast (turbo) spin echo sequence (T1 CS-SPACE prototype) was applied post gadolinium with an isotropic resolution of 0.55 mm. Bilateral proximal intradural ICA and VA segments were evaluated for presence, morphology, and longitudinal extension of VWE. Results Concentric VWE of the proximal intradural ICA was found in 13 (30%) patients, and of the proximal intradural VA in 39 (91%) patients. Mean longitudinal extension of VWE after dural entry was 13 mm in the VA and 2 mm in the ICA. In 14 of 39 patients (36%) with proximal intradural VWE, morphology of VWE was suggestive of the mere presence of vasa vasorum. In 25 patients (64 %), morphology indicated atherosclerotic lesions in addition to vasa vasorum. Conclusions Vasa vasorum may account for concentric VWE within the proximal 2 mm of the ICA and 13 mm of the VA after dural entry in elderly subjects. Concentric VWE in these locations should not be confused with large artery vasculitis. Distal to these segments, VWE may be more likely related to pathologic conditions such as vasculitis. KW - vertebral artery KW - magnetic resonance imaging KW - vasa vasorum KW - large artery vasculitis KW - Atherosclerosis, intracranial arteries Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-266524 SN - 1432-1084 VL - 32 IS - 2 ER - TY - JOUR A1 - Horvat, Sonja A1 - Vogel, Patrick A1 - Kampf, Thomas A1 - Brandl, Andreas A1 - Alshamsan, Aws A1 - Alhadlaq, Hisham A. A1 - Ahamed, Maqusood A1 - Albrecht, Krystyna A1 - Behr, Volker C. A1 - Beilhack, Andreas A1 - Groll, Jürgen T1 - Crosslinked Coating Improves the Signal‐to‐Noise Ratio of Iron Oxide Nanoparticles in Magnetic Particle Imaging (MPI) JF - ChemNanoMat N2 - Magnetic particle imaging is an emerging tomographic method used for evaluation of the spatial distribution of iron‐oxide nanoparticles. In this work, the effect of the polymer coating on the response of particles was studied. Particles with covalently crosslinked coating showed improved signal and image resolution. KW - crosslinked coating KW - imaging agents KW - magnetic properties KW - MPI KW - MPS Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-214718 VL - 6 IS - 5 SP - 755 EP - 758 ER - TY - JOUR A1 - Vogel, Patrick A1 - Markert, Jonathan A1 - Rückert, Martin A. A1 - Herz, Stefan A1 - Keßler, Benedikt A1 - Dremel, Kilian A1 - Althoff, Daniel A1 - Weber, Matthias A1 - Buzug, Thorsten M. A1 - Bley, Thorsten A. A1 - Kullmann, Walter H. A1 - Hanke, Randolf A1 - Zabler, Simon A1 - Behr, Volker C. T1 - Magnetic Particle Imaging meets computed tomography: first simultaneous imaging JF - Scientific Reports N2 - Magnetic Particle Imaging (MPI) is a promising new tomographic modality for fast as well as three-dimensional visualization of magnetic material. For anatomical or structural information an additional imaging modality such as computed tomography (CT) is required. In this paper, the first hybrid MPI-CT scanner for multimodal imaging providing simultaneous data acquisition is presented. KW - Applied physics KW - Biomedical engineering KW - Imaging techniques Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-202501 VL - 9 ER - TY - THES A1 - Vogel, Patrick T1 - Traveling Wave Magnetic Particle Imaging T1 - Traveling Wave Magnetic Particle Imaging N2 - Magnetic Particle Imaging (MPI) ist eine noch sehr junge Technologie unter den nicht-invasiven tomographischen Verfahren. Seit der ersten Veröffentlichung 2005 wurden einige Scannertypen und Konzepte vorgestellt, welche durch die Messung des Antwortsignals von superparamagnetischen Eisennanopartikeln (SPIOs) auf wechselnde Magnetfelder ein dreidi-mensionales Bild ihrer Verteilung berechnen können. Durch die direkte Messung des Tracers handelt es sich beim MPI um eine sehr sensitive und hochspezifische bildgebende Methode. Zu Beginn dieser Forschungsarbeit gab es nur wenige bekannte MPI-Scanner, die jedoch alle ein nur kleines Field-of-View (FOV) vorweisen konnten. Der Grund dafür liegt in der Ver-wendung von Permanentmagneten. Das Ziel war es nun, ein neues Konzept auszuarbeiten und einen 3D-MPI-Scanner zu entwer-fen, der in der Lage ist, ein mausgroßes Objekt zu messen. In dieser Arbeit wird ein alternatives Scannerkonzept für die dreidimensionale Bildge-bung superparamagnetischer Eisennanopartikel vorgestellt. Der Traveling Wave MPI-Scanner (TWMPI) basiert auf einem neu entwickelten Hauptspulensystem, welches aus mehreren Elektromagneten besteht. Dadurch ist die Hardware bereits in der Lage, eine Linie entlang der Symmetrieachse über einen großen Bereich dynamisch zu kodieren. Mit Hilfe weiterer Ab-lenkspulen kann schließlich ein FOV von 65 x 25 x 25 Millimetern dreidimensional abgetastet werden. Dazu stehen mehrere Scanverfahren zur Verfügung, welche das Probenvolumen li-nienweise oder ebenenweise abtasten und mit einer Auflösung von ca. 2 Millimetern die Ver-teilung der SPIOs in wenigen Millisekunden abbilden können. Mit diesem neuen Hardwareansatz konnte erstmals ein MPI-Scanner mit einem MR-Tomographen (MRT) kombiniert werden. Das MPI/MRT-Hybridsystem liefert tomographi-sche Bilder des Gewebes (MRT) und zeigt die Verteilung des eisenhaltigen Kontrastmittels (MPI), ohne die Probe bewegen zu müssen. In einer in-vivo Echtzeitmessung konnte der TWMPI-Scanner mit 20 Bildern pro Se-kunde die dynamische Verteilung eines eisenhaltigen Kontrastmittels im Körper und speziell im schlagenden Herzen eines Tieres darstellen. Diese Echtzeitfähigkeit eröffnet in der kardi-ovaskuläre Bildgebung neue Möglichkeiten. Erste Messungen mit funktionalisierten Eisenpartikeln zeigen die spezifische Bildge-bung verschiedener Zelltypen und stellen einen interessanten Aspekt für die molekulare Bild-gebung dar. Die Sensitivität des Scanners liegt dabei im Bereich von wenigen Mikrogramm Eisen pro Milliliter, was für den Nachweis von wenigen 10.000 mit Eisen markierten Zellen ausreicht. Neben Messungen an diversen Ferrofluiden und eisenhaltigen Kontrastmitteln konnte der Einfluss von massiven Materialen, wie Eisenstückchen oder Eisenspänen, auf die rekon-struierten Bilder untersucht werden. Erste Messungen an Gestein zeigen die Verteilung von Eiseneinschlüssen und bieten die Möglichkeit einer weiteren zerstörungsfreien Untersuchungsmethode für Materialwissen-schaftler und Geologen. Weiterführende Testmessungen mit einer unabhängigen μMPI-Anlage zeigen erste Ergebnisse mit Auflösungen im Mikrometerbereich und liefern Erkennt-nisse für den Umgang und Messung mit starken Gradientenfeldern. Eine Modifizierung der Messanlage erlaubt es, in gerade einmal 500 μs ein komplettes Bild aufzunehmen, womit die Bewegung eines Ferrofluidtropfens in Wasser sichtbar gemacht werden konnte. Damit ist diese TWMPI-Anlage das schnellste MPI-System und eröffnet die Möglichkeit grundlegende Erfahrungen in der Partikeldynamik zu erlangen. Der vorgestellte Traveling Wave MPI-Scanner ist ein alternativer Scannertyp, welcher sich von anderen MPI-Scannern abhebt. Mit neuen Ansätzen ist in der Lage ein mausgroßes Objekt auf dynamische Weise sehr schnell abzutasten. Dabei konnten in verschiedenen Mes-sungen die Funktionalität und Leistungsfähigkeit des TWMPI-Konzeptes demonstriert wer-den, welche die gesteckten Ziele deutlich übertreffen. N2 - Magnetic particle imaging (MPI) is still a very young technology among the non-invasive tomographic modalities. Since its first publication in 2005, several types of scanners and concepts were presented, which can reconstruct a three-dimensional image of the distri-bution of superparamagnetic iron-oxide nanoparticles (SPIOs) by measuring their magnetiza-tion response to varying magnetic fields. Due to the direct measurement of the tracer MPI is a very sensitive and highly specific imaging modality. At the beginning of this project only a few MPI-scanners were known, but all of them are limited to a small field-of-view (FOV). The reason for this is the use of permanent mag-nets. The aim of this work was to develop a new concept and design for a 3D-MPI-scanner, which is able to measure a mouse sized object. In this thesis an alternative scanner concept for three-dimensional imaging of super-paramagnetic iron nanoparticles is presented. The Traveling Wave-MPI-scanner (TWMPI) is based on a newly developed main coil system, which consists of a series of electromagnets. This coil array is by itself able to dynamically encode a line along the symmetry axis over an extended length. With additional offset coils the system is able to scan a FOV of 65 x 25 x 25 millimeters in three dimensions. For scanning the whole volume several tech-niques are available, which map the data line-by-line or slice-by-slice in a few milliseconds and yield the distribution of SPIOs with a resolution of about 2 millimeters. Using this new hardware approach a MPI-scanner was successfully combined with an MRI-scanner for the first time. The MPI/MRI-hybrid-system provides tomographic images of the tissue (MRI) and detects the distribution of iron-containing contrast agent (MPI), without the need to move the sample. In an in-vivo real-time measurement using the TWMPI-scanner the dynamic distribu-tion of an iron-containing contrast agent was visualized in the body and especially in the beat-ing heart of an animal with a temporal resolution of 20 frames per second. This real-time ca-pability opens up new possibilities in cardio-vascular imaging. First measurements using functionalized iron-oxide nanoparticles specifically detect different cell types and thereby provide an interesting aspect for molecular imaging. The sensi-tivity of the scanner is in the range of a few micrograms of iron per milliliter, which is suffi-cient to detect about 50,000 iron-labeled cells. In several studies the influence of various ferrofluids, iron-containing contrast agents and solid materials, such as pieces of iron or iron filings, were examined on the reconstructed images. First measurements on ferrous rock show the location of iron-inclusions and offer an-other non-destructive imaging technique for material scientists and geologists. Additional tests with an independent μMPI-system were performed to explore resolutions in the micrometer range and provide insights for handling and measuring with a high gradient strength. A modification of the setup allows to acquire a full slice in just 500 microseconds, which enable the visualization of the motion of a droplet of ferrofluid in water. With this TWMPI is the fastest MPI-system available and gives access to fundamental studies of particle dynamics. The presented Traveling Wave MPI-system is an alternative scanner concept, which sets itself apart from other MPI-scanners. Mouse-sized objects can be imaged in a dynamic way in very short times. The feasibility and performance of the TWMPI-concept were suc-cessfully demonstrated in various measurements considerably exceeding the original aims. KW - Magnetpartikelbildgebung KW - Traveling Wave Magnetic Particle Imaging KW - Traveling Wave Magnetic Particle Imaging KW - tomographic imaging method KW - molecular imaging KW - field free point (FFP) KW - Tomografie Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-132700 ER -