TY - JOUR A1 - Parczyk, Marco A1 - Herold, Volker A1 - Klug, Gert A1 - Bauer, Wolfgang R. A1 - Rommel, Eberhard A1 - Jakob, Peter M. T1 - Regional in vivo transit time measurements of aortic pulse wave velocity in mice with high-field CMR at 17.6 Tesla N2 - Background: Transgenic mouse models are increasingly used to study the pathophysiology of human cardiovascular diseases. The aortic pulse wave velocity (PWV) is an indirect measure for vascular stiffness and a marker for cardiovascular risk. Results: This study presents a cardiovascular magnetic resonance (CMR) transit time (TT) method that allows the determination of the PWV in the descending murine aorta by analyzing blood flow waveforms. Systolic flow pulses were recorded with a temporal resolution of 1 ms applying phase velocity encoding. In a first step, the CMR method was validated by pressure waveform measurements on a pulsatile elastic vessel phantom. In a second step, the CMR method was applied to measure PWVs in a group of five eight-month-old apolipoprotein E deficient (ApoE(-/-)) mice and an age matched group of four C57Bl/6J mice. The ApoE(-/-) group had a higher mean PWV (PWV = 3.0 ± 0.6 m/s) than the C57Bl/6J group (PWV = 2.4 ± 0.4 m/s). The difference was statistically significant (p = 0.014). Conclusions: The findings of this study demonstrate that high field CMR is applicable to non-invasively determine and distinguish PWVs in the arterial system of healthy and diseased groups of mice. KW - Medizin Y1 - 2010 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-68219 ER - TY - THES A1 - Herold, Volker T1 - In vivo MR-Mikroskopie am kardiovaskulären System der Maus T1 - In vivo MR-microscopy of the murine cardiovascular system N2 - Als Tiermodell ist die Maus aus der pharmazeutischen Grundlagenforschung nicht mehr wegzudenken. Aus diesem Grund nimmt besonders die Verfügbarkeit nicht invasiver Diagnoseverfahren für dieses Tiermodell einen sehr hohen Stellenwert ein. Ziel dieser Arbeit war die Entwicklung von in vivo MR-Untersuchungsmethoden zur Charakterisierung des kardiovaskulären Systems der Maus. Neben der morphologischen Bildgebung wurde ein besonderer Schwerpunkt auf die Quantifizierung funktioneller Parameter der arteriellen Gefäße wie auch des Herzens gelegt. Durch Implementieren einer PC-Cine-Sequenz mit dreidimensionaler Bewegungskodierung war es möglich, die Charakteristik der Bewegung des gesamten Myokards zu untersuchen. Die Aufnahme von Bewegungsvektoren für jeden Bildpunkt und die Bestimmung des Torsionswinkels innerhalb der Messschichten konnte die systolische Kontraktion als dreidimensionale Wringbewegung des Herzens bestätigen. Um die Qualität der morphologischen Gefäßbildgebung zu verbessern, sollte untersucht werden, inwieweit bestehende Verfahren zur Gefäßwanddarstellung optimiert werden können. Implementieren einer Multi-Schicht-Multi-Spin-Echo-Sequenz an einem 17,6 Tesla Spektrometer erlaubte durch das hohe B0-Feld einen deutlichen Signalgewinn. Erstmals wurde es möglich, die gesunde Gefäßwand darzustellen und so morphologische Veränderungen in einem möglichst frühen Zustand zu untersuchen. Neben der Untersuchung morphologischer Veränderungen sollte vor allem ein Schwerpunkt auf das Studium funktioneller Parameter der Gefäßwand gelegt werden. Dazu wurde in einem ersten Schritt mit einem PC-Cine-Verfahren die Umfangsdehnung in ihrem zeitlichen Verlauf ermittelt. Dabei zeigte sich, dass im Laufe einer arteriosklerotischen Plaqueprogression eine Änderung der Umfangsdehnung vor einer Änderung morphologischer Parameter beobachtet werden kann. Deshalb war es Ziel, im Verlauf dieser Arbeit weitere Verfahren zur Charakterisierung funktioneller Parameter des Gefäßsystems zu entwickeln. Um direkt Elastizitätsparameter ermitteln zu können, fehlt als Bezugsgröße der arterielle Pulsdruck (AP). Die Lösung der inkompressiblen Navier-Stokes-Gleichungen unter Anwendung der Lang-Wellen-Näherung und der Näherung für große Pulswellengeschwindigkeiten (PWV) erlaubte die Bestimmung der komplexen Impedanz und somit des arteriellen Pulsdrucks in der Frequenzdomäne. Dadurch war es möglich, den dynamischen Anteil des arteriellen Druckpulses direkt aus einer Messung der Pulswellengeschwindigkeit sowie aus dem Verlauf des Flusspulses zu bestimmen. Zur Ermittlung des AP muss die Pulswellengeschwindigkeit bestimmt werden. Für die MR-Bildgebung in murinen Gefäßen waren hierzu bisher keine Verfahren verfügbar. Da sich die Gefäßdehnung möglicherweise als Indikator für eine frühe Wandveränderung bei der Plaqueprogression zeigt, bestand ein großes Interesse in der Untersuchung von spezifischen gefäßmechanischen Eigenschaften wie beispielsweise der PWV. Im Rahmen dieser Arbeit konnten zwei MR-Methoden für die nicht invasive Bildgebung in der Maus entwickelt werden, die es ermöglichten, die lokale und die regionale Pulswellengeschwindigkeit zu bestimmen. Die Messung der lokalen Pulswellengeschwindigkeit beruht dabei auf der zeitaufgelösten Bestimmung der Gefäßwanddehnung sowie des Blutvolumenflusses. Zur Bestimmung der regionalen Pulswellengeschwindigkeit wurde eine Erweiterung der Zwei-Punkt-Transit-Zeit-Methode verwendet. Durch zeitaufgelöste bewegungskodierte Bildgebung entlang der Aorta konnte anhand von 30 Stützpunkten die Propagation des arteriellen Flusspulses vermessen werden. Die Messzeit gegenüber einer Zwei-Punkt-Methode ließ sich dadurch halbieren. Gleichzeitig bietet die Auswertung von 30 Messpunkten eine größere Sicherheit in der Bestimmung der PWV. Beide Methoden wurden an einem elastischen Gefäßphantom validiert. In vivo Tierstudien an apoE(−/−)-Mäusen und einer Kontrollgruppe zeigten für beide Methoden eine gute Übereinstimmung. Darüber hinaus konnte ein Ansteigen der Pulswellengeschwindigkeit in apoE(−/−)-Mäusen durch arteriosklerotische Veränderungen nachgewiesen werden. Zusammenfassend wurden in dieser Arbeit grundlegende Verfahren zur Untersuchung des kardiovaskulären Systems der Maus optimiert und entwickelt. Die Vielseitigkeit der MR-Bildgebung ermöglichte dabei die Erfassung von morphologischen und funktionellen Parametern. In Kombination können die beschriebenen Methoden als hilfreiche Werkzeuge für die pharmakologische Grundlagenforschung zur Charakterisierung von Herz-Kreislauf-Erkankungen in Mausmodellen eingesetzt werden. N2 - The mouse model is considered as an essential animal model for the basic research in pharmacology. Therefore, the availability of non-invasive diagnostic methods for this species has gained important significance. The objective of this study was the development of methods to investigate the characteristics of the cardio-vascular system of mice with MR-technology. In addition to morphological imaging, the study was focused on the quantification of functional parameters of the arterial system as well as the mouse heart. By implementing a PC-Cine-sequence with three-dimensional motion encoding simultaneously with two dimensional spatial encoding, the comprehensive motion encoded datasets provided the access to motion patterns of the entire myocardium. It could be shown that the movement of the murine myocardium during systole is equivalent to a three-dimensional wring movement. To improve the quality of morphological imaging, this study also focused on the optimization of established methods visualizing the arterial wall. Implementing a multi-slice-multi-spin-(MSME)-echo method at 17.6 T allowed for a significant improvement of the SNR due to the high B0-field. For the first time the healthy vessel wall could thus be imaged; enabling the investigation of morphological changes at an early state of the atherosclerotic disease. In addition to the investigation of morphological changes, this paper was focused on the study of functional parameters of the arterial vessel wall. For that purpose, a PC-Cine-method was applied to determine the time course of the circumferential strain. The interim results thereby revealed that during atherosclerotic plaque progression, changes of the circumferential strain precede significant changes of the arterial wall thickness. These findings indicated the potential superiority of functional parameters over morphological properties and have motivated the development of further methods characterizing different functional parameters of the vessel wall. To calculate direct parameters of the vessel wall elasticity the according arterial pulse pressure (AP) is needed. Therefore the solution of the incompressible Navier-Stokes equations was applied using the long-wave approximation and the assumption of a high pulse wave velocity (PWV) compared to the blood flow velocity. Thus the complex impedance could be calculated enabling the computation of the pressure pulse in the frequency domain. The dynamic fraction of the arterial pulse pressure could be calculated by directly measuring the PWV and the time course of the blood flow velocity. To determine the AP the pulse wave velocity has to be known. Since no MR-methods were available for that purpose, two different approaches to calculate the PWV with MR methods were established in the course of this study. The two different approaches to estimate the PWV in the murine aorta allow the determination of the local PWV at a predefined location along the propagation pathway and the estimation of the regional PWV as the averaged value along a certain vessel wall segment. The measurement of the local pulse wave velocity is based on the time-resolved acquisition of the vessel wall strain and the blood volume flow. Both parameters were accessible by using a PC-Cine-sequence incorporating a specific acquisition scheme to sample the time-dependant data at a temporal resolution of 1000 frames per second. To determine the regional PWV an improvement of the two-point-transit-time method was implemented. By using time-resolved motion encoding along the propagation pathway 30 different interpolation points could be used to identify the respective starting time of the systolic pulse wave. Compared to the conventional two-point-measurement scheme, the total measurement time could thus be halved. Additionally, the use of 30 interpolation points significantly increased the accuracy of the calculation of the pulse wave velocity. Both methods were validated using an elastic vessel wall phantom. In vivo experiments with apoE(−/−)-mice and wild-type animals showed a good correlation between both methods. For the apoE(−/−)-mice an increase of the PWV could be identified when compared to the control group. In summary, this study provides the development and the optimization of MR-applications to investigate the cardiovascular system of mice. Measurements of functional parameters in combination with the study of morphological parameters can serve as a helpful tool for pharmacological research. KW - Maus KW - Kardiovaskuläres System KW - NMR-Bildgebung KW - NMR-Tomographie KW - MR-imaging KW - cardiovascular system KW - mice Y1 - 2010 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-54253 ER - TY - JOUR A1 - Winter, Patrick A1 - Kampf, Thomas A1 - Helluy, Xavier A1 - Gutjahr, Fabian T. A1 - Meyer, Cord B. A1 - Rommel, Eberhard A1 - Bauer, Wolfgang R. A1 - Jakob, Peter M. A1 - Herold, Volker T1 - Fast retrospectively triggered local pulse-wave velocity measurements in mice with CMR-microscopy using a radial trajectory JF - Journal of Cardiovascular Magnetic Resonance N2 - Background The aortic pulse-wave velocity (PWV) is an important indicator of cardiovascular risk. In recent studies MRI methods have been developed to measure this parameter noninvasively in mice. Present techniques require additional hardware for cardiac and respiratory gating. In this work a robust self-gated measurement of the local PWV in mice without the need of triggering probes is proposed. Methods The local PWV of 6-months-old wild-type C57BL/6J mice (n=6) was measured in the abdominal aorta with a retrospectively triggered radial Phase Contrast (PC) MR sequence using the flow-area (QA) method. A navigator signal was extracted from the CMR data of highly asymmetric radial projections with short repetition time (TR=3 ms) and post-processed with high-pass and low-pass filters for retrospective cardiac and respiratory gating. The self-gating signal was used for a reconstruction of high-resolution Cine frames of the aortic motion. To assess the local PWV the volume flow Q and the cross-sectional area A of the aorta were determined. The results were compared with the values measured with a triggered Cartesian and an undersampled triggered radial PC-Cine sequence. Results In all examined animals a self-gating signal could be extracted and used for retrospective breath-gating and PC-Cine reconstruction. With the non-triggered measurement PWV values of 2.3±0.2 m/s were determined. These values are in agreement with those measured with the triggered Cartesian (2.4±0.2 m/s) and the triggered radial (2.3±0.2 m/s) measurement. Due to the strong robustness of the radial trajectory against undersampling an acceleration of more than two relative to the prospectively triggered Cartesian sampling could be achieved with the retrospective method. Conclusion With the radial flow-encoding sequence the extraction of a self-gating signal is feasible. The retrospective method enables a robust and fast measurement of the local PWV without the need of additional trigger hardware. KW - pulse-wave velocity KW - mouse KW - self-gating KW - phase-contrast CMR KW - non-triggered KW - retrospective KW - radial KW - aorta Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-96602 UR - http://jcmr-online.com/content/15/1/88 ER - TY - JOUR A1 - Gotschy, Alexander A1 - Bauer, Wolfgang R. A1 - Winter, Patrick A1 - Nordbeck, Peter A1 - Rommel, Eberhard A1 - Jakob, Peter M. A1 - Herold, Volker T1 - Local versus global aortic pulse wave velocity in early atherosclerosis: An animal study in ApoE\(^{-/-}\) mice using ultrahigh field MRI JF - PLoS ONE N2 - Increased aortic stiffness is known to be associated with atherosclerosis and has a predictive value for cardiovascular events. This study aims to investigate the local distribution of early arterial stiffening due to initial atherosclerotic lesions. Therefore, global and local pulse wave velocity (PWV) were measured in ApoE\(^{-/-}\) and wild type (WT) mice using ultrahigh field MRI. For quantification of global aortic stiffness, a new multi-point transit-time (TT) method was implemented and validated to determine the global PWV in the murine aorta. Local aortic stiffness was measured by assessing the local PWV in the upper abdominal aorta, using the flow/area (QA) method. Significant differences between age matched ApoE\(^{-/-}\) and WT mice were determined for global and local PWV measurements (global PWV: ApoE\(^{-/-}\): 2.7 ±0.2m/s vs WT: 2.1±0.2m/s, P<0.03; local PWV: ApoE\(^{-/-}\): 2.9±0.2m/s vs WT: 2.2±0.2m/s, P<0.03). Within the WT mouse group, the global PWV correlated well with the local PWV in the upper abdominal aorta (R\(^2\) = 0.75, P<0.01), implying a widely uniform arterial elasticity. In ApoE\(^{-/-}\) animals, however, no significant correlation between individual local and global PWV was present (R\(^2\) = 0.07, P = 0.53), implying a heterogeneous distribution of vascular stiffening in early atherosclerosis. The assessment of global PWV using the new multi-point TT measurement technique was validated against a pressure wire measurement in a vessel phantom and showed excellent agreement. The experimental results demonstrate that vascular stiffening caused by early atherosclerosis is unequally distributed over the length of large vessels. This finding implies that assessing heterogeneity of arterial stiffness by multiple local measurements of PWV might be more sensitive than global PWV to identify early atherosclerotic lesions. KW - MRI KW - Atherosclerosis KW - Aorta KW - Stiffness KW - Measurement KW - Time measurement KW - Magnetic resonance imaging KW - Mouse models KW - Systole Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-171824 VL - 12 IS - 2 ER - TY - JOUR A1 - Herold, Volker A1 - Herz, Stefan A1 - Winter, Patrick A1 - Gutjahr, Fabian Tobias A1 - Andelovic, Kristina A1 - Bauer, Wolfgang Rudolf A1 - Jakob, Peter Michael T1 - Assessment of local pulse wave velocity distribution in mice using k-t BLAST PC-CMR with semi-automatic area segmentation. JF - Journal of Cardiovascular Magnetic Resonance N2 - Background: Local aortic pulse wave velocity (PWV) is a measure for vascular stiffness and has a predictive value for cardiovascular events. Ultra high field CMR scanners allow the quantification of local PWV in mice, however these systems are yet unable to monitor the distribution of local elasticities. Methods: In the present study we provide a new accelerated method to quantify local aortic PWV in mice with phase-contrast cardiovascular magnetic resonance imaging (PC-CMR) at 17.6 T. Based on a k-t BLAST (Broad-use Linear Acquisition Speed-up Technique) undersampling scheme, total measurement time could be reduced by a factor of 6. The fast data acquisition enables to quantify the local PWV at several locations along the aortic blood vessel based on the evaluation of local temporal changes in blood flow and vessel cross sectional area. To speed up post processing and to eliminate operator bias, we introduce a new semi-automatic segmentation algorithm to quantify cross-sectional areas of the aortic vessel. The new methods were applied in 10 eight-month-old mice (4 C57BL/6J-mice and 6 ApoE\(^{(-/-)}\)-mice) at 12 adjacent locations along the abdominal aorta. Results: Accelerated data acquisition and semi-automatic post-processing delivered reliable measures for the local PWV, similiar to those obtained with full data sampling and manual segmentation. No statistically significant differences of the mean values could be detected for the different measurement approaches. Mean PWV values were elevated for the ApoE\(^{(-/-)}\)-group compared to the C57BL/6J-group (3.5 ± 0.7 m/s vs. 2.2 ± 0.4 m/s, p < 0.01). A more heterogeneous PWV-distribution in the ApoE \(^{(-/-)}\)-animals could be observed compared to the C57BL/6J-mice, representing the local character of lesion development in atherosclerosis. Conclusion: In the present work, we showed that k-t BLAST PC-MRI enables the measurement of the local PWV distribution in the mouse aorta. The semi-automatic segmentation method based on PC-CMR data allowed rapid determination of local PWV. The findings of this study demonstrate the ability of the proposed methods to non-invasively quantify the spatial variations in local PWV along the aorta of ApoE\(^{(-/-)}\)-mice as a relevant model of atherosclerosis. KW - pulse wave velocity KW - ApoE\(^{(-/-)}\) KW - magnetic resonance imaging KW - phase contrast Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-157696 VL - 19 IS - 77 ER - TY - JOUR A1 - Winter, Patrick A1 - Andelovic, Kristina A1 - Kampf, Thomas A1 - Gutjahr, Fabian Tobias A1 - Heidenreich, Julius A1 - Zernecke, Alma A1 - Bauer, Wolfgang Rudolf A1 - Jakob, Peter Michael A1 - Herold, Volker T1 - Fast self-navigated wall shear stress measurements in the murine aortic archusing radial 4D-phase contrast cardiovascular magnetic resonance at 17.6 T JF - Journal of Cardiovascular Magnetic Resonance N2 - Purpose 4D flow cardiovascular magnetic resonance (CMR) and the assessment of wall shear stress (WSS) are non-invasive tools to study cardiovascular risks in vivo. Major limitations of conventional triggered methods are the long measurement times needed for high-resolution data sets and the necessity of stable electrocardiographic (ECG) triggering. In this work an ECG-free retrospectively synchronized method is presented that enables accelerated high-resolution measurements of 4D flow and WSS in the aortic arch of mice. Methods 4D flow and WSS were measured in the aortic arch of 12-week-old wildtype C57BL/6 J mice (n = 7) with a radial 4D-phase-contrast (PC)-CMR sequence, which was validated in a flow phantom. Cardiac and respiratory motion signals were extracted from the radial CMR signal and were used for the reconstruction of 4D-flow data. Rigid motion correction and a first order B0 correction was used to improve the robustness of magnitude and velocity data. The aortic lumen was segmented semi-automatically. Temporally averaged and time-resolved WSS and oscillatory shear index (OSI) were calculated from the spatial velocity gradients at the lumen surface at 14 locations along the aortic arch. Reproducibility was tested in 3 animals and the influence of subsampling was investigated. Results Volume flow, cross-sectional areas, WSS and the OSI were determined in a measurement time of only 32 min. Longitudinal and circumferential WSS and radial stress were assessed at 14 analysis planes along the aortic arch. The average longitudinal, circumferential and radial stress values were 1.52 ± 0.29 N/m2, 0.28 ± 0.24 N/m2 and − 0.21 ± 0.19 N/m2, respectively. Good reproducibility of WSS values was observed. Conclusion This work presents a robust measurement of 4D flow and WSS in mice without the need of ECG trigger signals. The retrospective approach provides fast flow quantification within 35 min and a flexible reconstruction framework. KW - 4D flow KW - WSS KW - OSI KW - Self-navigation KW - Mouse KW - Aortic arch Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-201120 VL - 21 ER - TY - JOUR A1 - Herold, Volker A1 - Kampf, Thomas A1 - Jakob, Peter Michael T1 - Dynamic magnetic resonance scattering JF - Communications Physics N2 - Dynamic light scattering is a popular technique to determine the size distribution of small particles in the sub micrometer region. It operates in reciprocal space, by analyzing the signal fluctuations with the photon auto correlation function. Equally, pulsed field gradient magnetic resonance is a technique generating data in the reciprocal space of the density distribution of an object. Here we show the feasibility of employing a magnetic resonance imaging system as a dynamic scattering device similar to dynamic light scattering appliances. By acquiring a time series of single data points from reciprocal space, analogue to dynamic light scattering, we demonstrate the examination of motion patterns of microscopic particles. This method allows the examination of particle dynamics significantly below the spatial resolution of magnetic resonance imaging. It is not limited by relaxation times and covers a wide field of applications for particle or cell motion in opaque media. KW - Characterization and analytical techniques KW - Imaging techniques Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-201091 VL - 2 ER - TY - JOUR A1 - Riedl, Katharina A. A1 - Kampf, Thomas A1 - Herold, Volker A1 - Behr, Volker C. A1 - Bauer, Wolfgang R. T1 - Wall shear stress analysis using 17.6 Tesla MRI: A longitudinal study in ApoE\(^{-/-}\)mice with histological analysis JF - PLoS One N2 - This longitudinal study was performed to evaluate the feasibility of detecting the interaction between wall shear stress (WSS) and plaque development. 20 ApoE\(^{-/-}\)mice were separated in 12 mice with Western Diet and 8 mice with Chow Diet. Magnetic resonance (MR) scans at 17.6 Tesla and histological analysis were performed after one week, eight and twelve weeks. Allin vivoMR measurements were acquired using a flow sensitive phase contrast method for determining vectorial flow. Histological sections were stained with Hematoxylin and Eosin, Elastica van Gieson and CD68 staining. Data analysis was performed using Ensight and a Matlab-based "Flow Tool". The body weight of ApoE\(^{-/-}\)mice increased significantly over 12 weeks. WSS values increased in the Western Diet group over the time period; in contrast, in the Chow Diet group the values decreased from the first to the second measurement point. Western Diet mice showed small plaque formations with elastin fragmentations after 8 weeks and big plaque formations after 12 weeks; Chow Diet mice showed a few elastin fragmentations after 8 weeks and small plaque formations after 12 weeks. Favored by high-fat diet, plaque formation results in higher values of WSS. With wall shear stress being a known predictor for atherosclerotic plaque development, ultra highfield MRI can serve as a tool for studying the causes and beginnings of atherosclerosis. KW - phase-contrast MRI KW - flow patterns KW - blood flow KW - apolipoprotein-E KW - atheriosclerosis KW - mouse KW - mice KW - quantification KW - association KW - lesions Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-229318 VL - 15 IS - 8 ER - TY - JOUR A1 - Winter, Patrick M. A1 - Andelovic, Kristina A1 - Kampf, Thomas A1 - Hansmann, Jan A1 - Jakob, Peter Michael A1 - Bauer, Wolfgang Rudolf A1 - Zernecke, Alma A1 - Herold, Volker T1 - Simultaneous measurements of 3D wall shear stress and pulse wave velocity in the murine aortic arch JF - Journal of Cardiovascular Magnetic Resonance N2 - Purpose Wall shear stress (WSS) and pulse wave velocity (PWV) are important parameters to characterize blood flow in the vessel wall. Their quantification with flow-sensitive phase-contrast (PC) cardiovascular magnetic resonance (CMR), however, is time-consuming. Furthermore, the measurement of WSS requires high spatial resolution, whereas high temporal resolution is necessary for PWV measurements. For these reasons, PWV and WSS are challenging to measure in one CMR session, making it difficult to directly compare these parameters. By using a retrospective approach with a flexible reconstruction framework, we here aimed to simultaneously assess both PWV and WSS in the murine aortic arch from the same 4D flow measurement. Methods Flow was measured in the aortic arch of 18-week-old wildtype (n = 5) and ApoE\(^{−/−}\) mice (n = 5) with a self-navigated radial 4D-PC-CMR sequence. Retrospective data analysis was used to reconstruct the same dataset either at low spatial and high temporal resolution (PWV analysis) or high spatial and low temporal resolution (WSS analysis). To assess WSS, the aortic lumen was labeled by semi-automatically segmenting the reconstruction with high spatial resolution. WSS was determined from the spatial velocity gradients at the lumen surface. For calculation of the PWV, segmentation data was interpolated along the temporal dimension. Subsequently, PWV was quantified from the through-plane flow data using the multiple-points transit-time method. Reconstructions with varying frame rates and spatial resolutions were performed to investigate the influence of spatiotemporal resolution on the PWV and WSS quantification. Results 4D flow measurements were conducted in an acquisition time of only 35 min. Increased peak flow and peak WSS values and lower errors in PWV estimation were observed in the reconstructions with high temporal resolution. Aortic PWV was significantly increased in ApoE\(^{−/−}\) mice compared to the control group (1.7 ± 0.2 versus 2.6 ± 0.2 m/s, p < 0.001). Mean WSS magnitude values averaged over the aortic arch were (1.17 ± 0.07) N/m\(^2\) in wildtype mice and (1.27 ± 0.10) N/m\(^2\) in ApoE\(^{−/−}\) mice. Conclusion The post processing algorithm using the flexible reconstruction framework developed in this study permitted quantification of global PWV and 3D-WSS in a single acquisition. The possibility to assess both parameters in only 35 min will markedly improve the analyses and information content of in vivo measurements. KW - 4D flow KW - pulse wave velocity KW - wall shear stress KW - radial KW - self-navigation KW - mouse KW - aortic arch KW - atherosclerosis KW - mice KW - flow KW - plaque KW - CMR KW - quantification KW - microscopy Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-259152 VL - 23 IS - 1 ER - TY - JOUR A1 - Andelovic, Kristina A1 - Winter, Patrick A1 - Kampf, Thomas A1 - Xu, Anton A1 - Jakob, Peter Michael A1 - Herold, Volker A1 - Bauer, Wolfgang Rudolf A1 - Zernecke, Alma T1 - 2D Projection Maps of WSS and OSI Reveal Distinct Spatiotemporal Changes in Hemodynamics in the Murine Aorta during Ageing and Atherosclerosis JF - Biomedicines N2 - Growth, ageing and atherosclerotic plaque development alter the biomechanical forces acting on the vessel wall. However, monitoring the detailed local changes in wall shear stress (WSS) at distinct sites of the murine aortic arch over time has been challenging. Here, we studied the temporal and spatial changes in flow, WSS, oscillatory shear index (OSI) and elastic properties of healthy wildtype (WT, n = 5) and atherosclerotic apolipoprotein E-deficient (Apoe\(^{−/−}\), n = 6) mice during ageing and atherosclerosis using high-resolution 4D flow magnetic resonance imaging (MRI). Spatially resolved 2D projection maps of WSS and OSI of the complete aortic arch were generated, allowing the pixel-wise statistical analysis of inter- and intragroup hemodynamic changes over time and local correlations between WSS, pulse wave velocity (PWV), plaque and vessel wall characteristics. The study revealed converse differences of local hemodynamic profiles in healthy WT and atherosclerotic Apoe\(^{−/−}\) mice, and we identified the circumferential WSS as potential marker of plaque size and composition in advanced atherosclerosis and the radial strain as a potential marker for vascular elasticity. Two-dimensional (2D) projection maps of WSS and OSI, including statistical analysis provide a powerful tool to monitor local aortic hemodynamics during ageing and atherosclerosis. The correlation of spatially resolved hemodynamics and plaque characteristics could significantly improve our understanding of the impact of hemodynamics on atherosclerosis, which may be key to understand plaque progression towards vulnerability. KW - atherosclerosis KW - mouse KW - 4D flow MRI KW - aortic arch KW - flow dynamics KW - WSS KW - mapping KW - PWV KW - plaque characteristics Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-252164 SN - 2227-9059 VL - 9 IS - 12 ER -