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Nuclear Magnetic Resonance (NMR) provides a highly flexible platform for non invasive analysis and imaging biological samples, since the manipulation of nuclear spin allows the tailoring of experiments to maximize the informativeness of the data. MRI is capable of visualizing a holistic picture of the lipid storage in living plant/seed. This review has sought to explain how the technology can be used to acquire functional and physiological data from plant samples, and how to exploit it to characterize lipid deposition in vivo. At the same time, we have referred to the current limitations of NMR technology as applied to plants, and in particular of the difficulty of transferring methodologies optimized for animal/medical subjects to plant ones. A forward look into likely developments in the field is included, anticipating its key future role in the study of living plant.
Das Ziel dieser Promotion ist der Aufbau eines dreMR Setups für einen klinischen 1,5T Scanner, das die Relaxations-Dispersions-Bildgebung ermöglicht, und die anschließende Ergründung von möglichst vielen Anwendungsfeldern von dreMR. Zu der Aufgabe gehört die Bereitstellung der zugrunde liegenden Theorie, der Bau des experimentellen Setups (Offset-Spule und Stromversorgung) sowie die Programmierung der nötigen Software. Mit dem gebauten Setup konnten zwei große Anwendungsfelder — dreMR Messungen mit und ohne Kontrastmitteln — untersucht werden.
The focus of the work concerned the development of a series of MRI techniques that were specifically designed and optimized to obtain quantitative and spatially resolved information about characteristic parameters of the lung. Three image acquisition techniques were developed. Each of them allows to quantify a different parameter of relevant diagnostic interest for the lung, as further described below:
1) The blood volume fraction, which represents the amount of lung water in the intravascular compartment expressed as a fraction of the total lung water. This parameter is related to lung perfusion.
2) The magnetization relaxation time T\(_2\) und T*\(_2\)
, which represents the component of T\(_2\) associated with the diffusion of water molecules through the internal magnetic field gradients of the lung. Because the amplitude of these internal gradients is related to the alveolar size, T\(_2\) und T*\(_2\) can be used to obtain information about the microstructure of the lung.
3) The broadening of the NMR spectral line of the lung. This parameter depends on lung inflation and on the concentration of oxygen in the alveoli. For this reason, the spectral line broadening can be regarded as a fingerprint for lung inflation; furthermore, in combination with oxygen enhancement, it provides a measure for lung ventilation.
Magnetic Resonance Imaging at field strengths up to 3 T, has become a default diagnostic modality for a variety of disorders and injuries, due to multiple reasons ranging from its non-invasive nature to the possibility of obtaining high resolution images of internal organs and soft tissues. Despite tremendous advances, MR imaging of certain anatomical regions and applications present specific challenges to be overcome. One such application is MR Musculo-Skeletal Imaging. This work addresses a few difficult areas within MSK imaging from the hardware perspective, with coil solutions for dynamic imaging of knee and high field imaging of hand.
Starting with a brief introduction to MR physics, different types of RF coils are introduced in chapter 1, followed by sections on design of birdcage coils, phased arrays and their characterization in chapter 2. Measurements, calculations and simulations, done during the course of this work, have been added to this chapter to give a quantitative feel of the concepts explained.
Chapter 3 deals with the construction of a phased array receiver for dynamic imaging of knee of a large animal model, i.e. minipig, at 1.5 T. Starting with details on the various aspects of an application that need to be considered when an MR RF array is designed, the chapter details the complex geometry of the region of interest in a minipig and reasons that necessitate a high density array. The sizes of the individual elements that constitute the array have been arrived at by studying the ratio of unloaded to loaded Q factors and choosing a size that provides the best ratio but still maintains a uniform SNR throughout the movement of the knee. To have a minimum weight and to allow mechanical movement of the knee, the Preamplifiers were located in a separate box. A movement device was constructed to achieve adjustable periodic movement of the knee of the anesthetized animal. The constructed array has been characterized for its SNR and compared with an existing product coil to show the improvement. The movement device was also characterized for its reproducibility. High resolution static images with anatomical details marked have been presented. The 1/g maps show the accelerations possible with the array. Snapshots of obtained dynamic images trace the cruciate ligaments through a cycle of movement of the animal's knee.
The hardware combination of a high density phased array and a movement device designed for a minipig's knee was used as a 'reference' and extended in chapter 4 for a human knee. In principle the challenges are similar for dynamic imaging of a human knee with regards to optimization of the elements, the associated electronics and the construction of the movement device. The size of the elements were optimized considering the field penetration / sensitivity required for the internal tissues. They were distributed around the curvature of the knee keeping in mind the acceleration required for dynamic imaging and the direction of the movement. The constructed movement device allows a periodic motion of the lower half of the leg, with the knee placed within the coil, enabling visualization of the tissues inside, while the leg is in motion. Imaging has been performed using dynamic interleaved acquisition sequence where higher effective TR and flip angles are achieved due to a combination of interleaving and segmentation of the sequence. The movement device has been characterized for its reproducibility while the SNR distribution of the constructed RF array has been compared with that of a commercially available standard 8 channel array. The results show the improvement in SNR and acceleration with the constructed geometry. High resolution static images, dynamic snapshots and the 3D segmentation of the obtained images prove the usefulness of the complete package provided in the design, for performing dynamic imaging at a clinically relevant field strength.
A simple study is performed in chapter 5 to understand the effects of changes in overlap for coil configurations with different loads and at different frequencies. The noise levels of individual channels and the correlation between them are plotted against subtle changes in overlap, at 64 and 123 MHz. SNR for every overlap setup is also measured and plotted. Results show that achieving critical overlap is crucial to obtain the best possible SNR in those coil setups where the load offered by the sample is low.
Chapter 6 of the thesis work deals with coil design for high field imaging of hand and wrists at 7 T, with an aim to achieve ultra high resolution imaging. At this field strength due to the increase in dielectric effects and the resulting decrease in homogeneity, whole body transmit coils are impractical and this has led engineers to design local transmit coils, for specific anatomies. While transmit or transceive arrays are usually preferred, to mitigate SAR effects, the spatial resolution obtained is limited. It is shown that a solution to this, with regards to hand imaging, can be a single volume transmit coil, along with high density receive arrays optimized for different regions of the hand. The use of a phased array for reception provides an increased SNR / penetration under high resolution. A volume transmit coil could pose issues in homogeneity at 7 T, but the specific anatomy of hand and wrist, with comparatively less water content, limits dielectric effects to have homogeneous B_1+ profile over the hand. To this effect, a bandpass birdcage and a 12 channel receive array are designed and characterized. Images of very high spatial resolution (0.16 x 0.16 x 0.16 mm3) with internal tissues marked are presented. In vivo 1/g maps show that an acceleration of up to 3 is possible and the EM simulation results presented show the uniform field along with SAR hotspots in the hand. To reduce the stress created due to the 'superman' position of imaging, provisions in the form of a holder and a hand rest have been designed and presented. Factors that contributed to the stability of the presented design are also listed, which would help future designs of receive arrays at high field strengths.
In conclusion, the coils and related hardware presented in this thesis address the following two aspects of MSK imaging: Dynamic imaging of knee and High resolution imaging of hand / wrist. The presented hardware addresses specific challenges and provides solutions. It is hoped that these designs are steps in the direction of improving the existing coils to get a better knowledge and understanding of MSK diseases such as Rheumatoid Arthritis and Osteoarthritis. The hardware can aid our study of ligament reconstruction and development. The high density array and transmit coil design for hand / wrist also demonstrates the benefits of the obtained SNR at 7 T while maintaining SAR within limits. This design is a contribution towards optimizing hardware at high field strength, to make it clinically acceptable and approved by regulatory bodies.
Nuclear magnetic resonance (NMR) imaging is a well-established imaging technique. If the achieved spatial resolution is below 100 um, it is usually denoted as magnetic resonance microscopy (MRM). The spatial resolution limit is on the order of a few um. As a downside, high resolution imaging is usually time-consuming and technological requirements are very sumptuous. Furthermore, miniaturization of the radiofrequency (RF) coil leading to a so-called microcoil is necessary; it also brings along detrimental effects. Therefore, there is a high potential for optimizing present MRM methods. Hence it is the aim of this work to improve and further develop present methods in MRM with focus on the RF coil and to apply those methods on new biological applications. All experiments were conducted on a Bruker 17.6 T system with a maximum gradient strength of 1 T/m and four RF receiver channels. Minimizing the RF coil dimensions, leads to increased artefacts due to differences in magnetic susceptibility of the coil wire and surrounding air. Susceptibility matching by immersing the coil in FC-43 is the most common approach that fulfills the requirements of most applications. However, hardly any alternatives are known for cases where usage of FC-43 is not feasible due to its specific disadvantages. Two alternative substances (bromotricholoromethane and Fomblin Y25) were presented and their usability was checked by susceptibility determination and demonstration experiments after shimming under practical conditions. In a typical MRM microcoil experiment, the sample volume is significantly smaller than the maximum volume usable for imaging. This mismatch has been optimized in order to increase the experiment efficiency by increasing the number of probe coils and samples used. A four-channel probehead consisting of four individual solenoid coils suited for cellular imaging of Xenopus laevis oocytes was designed, allowing simultaneous acquisition from four samples. All coils were well isolated and allowed quantitative image acquisition with the same spatial resolution as in single coil operation. This method has also been applied in other studies for increased efficiency: using X. laevis oocytes as a single cell model, the effect of chemical fixation on intracellular NMR relaxation times T1 and T2 and on diffusion was studied for the first time. Significant reduction of relaxation times was found in all cell compartments; after reimmersion in buffer, values return close to the initial values, but there were small but statistically significant differences due to residual formaldehyde. Embryos of the same species have been studied morphologically in different developmental stages. Wild type embryos were compared to embryos that had experienced variations in protein levels of chromosomal proteins HMGN and H1A. Significant differences were found between wild type and HMGN-modified embryos, while no difference was observed between wild type and H1-modified embryos. These results were concordant with results obtained from light microscopy and histology. The technique of molecular imaging was also performed on X. laevis embryos. Commercially available antibodies coupled to ultrasmall superparamagnetic iron oxide (USPIO) dextrane coated particles (MACS) served as a specific probe detectable by MRM, the aim being the detection of tissue specific contrast variations. Initially, the relaxivity of MACS was studied and compared to Resovist and VSOP particles. The iron concentration was determined quantitatively by using a general theoretical approach and results were compared to values obtained from mass spectroscopy. After incubation with MACS antibodies, intraembryonal relaxation times were determined in different regions of the embryo. These values allowed determination of local iron oxide particle concentrations, and specific binding could be distinguished from unspecific binding. Although applications in this work were focused on X. laevis oocytes and embryos, 3D-imaging on a beewolf head was also carried out in order to visualize the postpharyngeal gland. Additionally, an isolated beewolf antenna was imaged with a spatial resolution of (8 um)^3 for depiction of the antennal glands by using a microcoil that was specially designed for this sample. The experiments carried out in this work show that commercially available MRM systems can be significantly optimized by using small sample-adapted RF coils and by parallel operation of multiple coils, by which the sample throughput and thus time-efficiency is increased. With this optimized setup, practical use was demonstrated in a number of new biological applications.
Proton magnetic resonance imaging (MRI) has recently emerged as a clinical tool to image the lungs. This paper outlines the current technical aspects of MRI pulse sequences, radiofrequency (RF) coils and MRI system requirements needed for imaging the pulmonary parenchyma and vasculature. Lung MRI techniques are presented as a “technical toolkit”, from which MR protocols will be composed in the subsequent papers for comprehensive imaging of lung disease and function (parts 2 and 3). This paper is pitched at MR scientists, technicians and radiologists who are interested in understanding and establishing lung MRI methods. Images from a 1.5 T scanner are used for illustration of the sequences and methods that are highlighted.
Main Messages
• Outline of the hardware and pulse sequence requirements for proton lung MRI
• Overview of pulse sequences for lung parenchyma, vascular and functional imaging with protons
• Demonstration of the pulse-sequence building blocks for clinical lung MRI protocols
Diffusionstensorbildgebung im Vergleich zu anderen Parametermethoden für die Infarktcharakterisierung Ziel dieses Teils der Arbeit war die Klärung der Frage, welches Potential verschiedene MR-Parametersequenzen bei der Charakterisierung eines myokardialen Infarkts sowohl im akuten als auch im chronischen Fall haben. Dazu wurde eine Studie mit akut und chronisch infarzierten Rattenherzen durchgeführt. Untersucht wurden die Parameter T1, T2 und T2* sowie die aus der Diffusionstensorbildgebung berechneten Parameter ADC, FA, cs, cp und cl . Es zeigte sich, dass es kein Analogon zum bei einer cerebralen Ischämie bekannten Mismatch-Konzept gibt. Weder im akuten noch im chronischen war Fall eine ausgewiesene Differenz im diagnostizierten Infarktareal zwischen verschiedenen Sequenzen feststellbar. Alles in allem eignen sich zur detaillierten Charakterisierung der Infarktnarbe am besten eine T2*- oder eine Diffusionstensorsequenz. Die T2*-Sequenz liefert optisch das aufschlussreichere Bild, die aufwendigere Diffusionstensorsequenz dagegen bietet aufgrund der vielfachen Darstellungsmöglichkeiten im Postprocessing ein Mehr an Information und zeigt dazu eine Veränderung der Narbe im Zeitverlauf. Oxygenierungsmessung am Mäuseherz in vivo Die Charakterisierung einer Infarktnarbe kann auch über die Darstellung morphologischer Strukturen hinaus erfolgen. Die Oxygenierung ist ein komplexer Parameter, der funktionelle Auskunft über die Vaskularisierung und Viabilität des Gewebes geben kann. Zugang zu diesem Parameter erhält man über T2*-Messungen, da der Parameter T2* sensitiv auf chemisch gebundenen Sauerstoff reagiert. Hier wurden der Einfluss von reiner Sauerstoffatmung im Gegensatz zu normaler Raumluftatmung auf die Oxygenierung bei gesunden und infarzierten Mäusen untersucht. Die Messungen wurden trotz der Schwierigkeiten, die durch die Bewegung durch Atmung und Herzschlag entstehen, in vivo bei 17,6 Tesla implementiert und durchgeführt. Die Auflösung war ausreichend, um auch nach Infarkt extrem ausgedünnte Myokardwände gut auflösen und charakterisieren zu können. Der Effekt auf das Oxygenierungslevel ist stark unterschiedlich zwischen normalen und infarzierten Herzen, woraus auf eine noch nicht weit fortgeschrittene Revaskularisierung der Narbe eine Woche nach Infarzierung geschlossen werden kann. Die Methode wurde darüber hinaus an einem 7,0 Tesla-Magneten zur Verwendung an Ratten implementiert und auf das im Gegensatz zur Maus veränderte Atmungsverhalten der Ratte angepasst. Zum einen kann dadurch der Einfluss des hohen Magnetfeldes auf die Oxygenierungsmessung untersucht werden, zum anderen ist das Herz als zu untersuchendes Objekt bei der Ratte größer. Diffusionswichtung mittels Hole-Burning Die in dieser Arbeit zur Charakterisierung des Herzens verwendete Diffusionsmethode kann im Grenzfall von kurzen T2-Relaxationszeiten an ihre Grenzen stoßen: Bei den verwendeten starken Magnetfeldern klingt das messbare Signal aufgrund der Relaxationszeit T2 oft sehr schnell ab. Daher wurde eine Methode entwickelt, die einen völlig neuen Ansatz zur diffusionsgewichteten Bildgebung verfolgt, bei dem die Informationen über die Diffusion unabhängig von der limitierenden T2-Zeit gewonnen werden können. Die sog. Hole-Burning-Diffusionssequenz verwendet in einem Vorexperiment lediglich die Longitudinalmagnetisierung zur Diffusionswichtung. Das Signal wird dann mit einer schnellen Auslesesequenz akquiriert. Bei der Präparation werden zunächst auf Subvoxel-Niveau Streifen "gebrannt", d.h. die Magnetisierung wird dort gesättigt. Bis zur nächsten Sättigung ist das Verhalten der Magnetisierung abhängig von der T1-Relaxation in diesem Bereich und vom Diffusionsverhalten. Durch rasches Wiederholen des selektiven Pulszugs wird schließlich eine Gleichgewichtsmagnetisierung erreicht, die von der Diffusionskonstanten D und der T1-Relaxationszeit abhängt. Im Rahmen dieser Arbeit wurden die Abhängigkeiten verschiedener Sequenzparameter untersucht und diese mittels Simulationen optimiert. Außerdem wurde die Sequenz an einem Scanner implementiert und erste Experimente damit durchgeführt. Mit Hilfe von Simulationen konnten dazu Lookup-Tabellen generiert werden, mit denen in bestimmten Bereichen (insbesondere bei nicht zu kurzen T1-Relaxationszeiten) sowohl die Diffusionskonstante D als auch die T1-Relaxationszeit quantifiziert werden konnte.
Die Arbeit befaßt sich mit Methoden der 23Na-NMR-Bildgebung zur Diagnose am ischämischen und infarzierten Herzmuskel. Der erste Teil beschreibt eine Methode zur lokalisierten Messung des intra- und extrazellulären Natriumgehaltes und T1. Die Methode kam in einer Studie zum Einsatz, in der intra- und extrazellulärer Natriumgehalt sowie die T1-Werte an den Tagen 1, 3 und 21 nach Infarkt gemessen wurden.Im zweiten Teil der Arbeit wird die Dynamik des 23Na bei freier Präzession im stationären Zustand (SSFP) sowohl in numerischen Simulationen als auch experimentell untersucht.
The goal of the work presented in this thesis was to explore the possibilities and limitations of MRI / MRS using an ultra high field of 17.6 tesla. A broad range of specific applications and MR methods, from MRI to MRSI and MRS were investigated. The main foci were on sodium magnetic resonance spectroscopic imaging of rodents, magnetic resonance spectroscopy of the mouse brain, and the detection of small amounts of iron labeled stem cells in the rat brain using MRI Sodium spectroscopic imaging was explored since it benefits tremendously from the high magnetic field. Due to the intrinsically low signal in vivo, originating from the low concentrations and short transverse relaxation times, only limited results have been achieved by other researchers until now. Results in the literature include studies conducted on large animals such as dogs to animals as small as rats. No studies performed on mice have been reported, despite the fact that the mouse is the most important laboratory animal due to the ready availability of transgenic strains. Hence, this study concentrated on sodium MRSI of small rodents, mostly mice (brain, heart, and kidney), and in the case of the brain on young rats. The second part of this work concentrated on proton magnetic resonance spectroscopy of the rodent brain. Due to the high magnetic field strength not only the increasing signal but also the extended spectral resolution was advantageous for such kind of studies. The difficulties/limitations of ultra high field MRS were also investigated. In the last part of the presented work detection limits of iron labeled stem cells in vivo using magnetic resonance imaging were explored. The studies provided very useful benchmarks for future researchers in terms of the number of labeled stem cells that are required for high-field MRI studies. Overall this work has shown many of the benefits and the areas that need special attention of ultra high fields in MR. Three topics in MRI, MRS and MRSI were presented in detail. Although there are significant additional difficulties that have to be overcome compared to lower frequencies, none of the work presented here would have been possible at lower field strengths.
Low field NMR has been successfully used for the evaluation of seed composition and quality, but largely only in crop species. We show here that 1.5T NMR provides a reliable means for analysing the seed lipid fraction present in a wide range of species, where both the seed size and lipid concentration differed by >10 fold. Little use of high field NMR has been made in seed research to date, even though it potentially offers many opportunities for studying seed development, metabolism and storage. Here we demonstrate how 17.5T and 20T NMR can be applied to image seed structure, and analyse lipid and metabolite distribution. We suggest that further technical developments in NMR/MRI will facilitate significant advances in our understanding of seed biology.