ArticleJournal of magnetic resonance imaging : JMRI2016
Measurement of skeletal muscle perfusion dynamics with pseudo-continuous arterial spin labeling (pCASL): Assessment of relative labeling efficiency at rest and during hyperemia, and comparison to pulsed arterial spin labeling (PASL).
Article in Journal of magnetic resonance imaging : JMRI, 2016. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 11 papers.
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Who cites it
11 citing papers in PubMed.
- Cardio-rheumatology: integrated care and the opportunities for personalized medicine.Therapeutic advances in musculoskeletal disease · 2025Review
- Non-contrast MRI of micro-vascularity of the feet and toes.Japanese journal of radiology · 2024Article
- Clinical physiology: the crucial role of MRI in evaluation of peripheral artery disease.American journal of physiology. Heart and circulatory physiology · 2024Review
- Feasibility of Arterial Spin Labeling Magnetic Resonance Imaging for Musculoskeletal Tumors with Optimized Post-Labeling Delay.Diagnostics (Basel, Switzerland) · 2022Article
- Muscle perfusion and the effect of compression garments in delayed-onset muscle soreness assessed with arterial spin labeling magnetic resonance imaging.Quantitative imaging in medicine and surgery · 2022Article
- Non-invasive MR imaging techniques for measuring femoral arterial flow in a pediatric and adolescent cohort.Physiological reports · 2022Article
- A split-label design for simultaneous measurements of perfusion in distant slices by pulsed arterial spin labeling.Magnetic resonance in medicine · 2021Article
- Quantitative and Dynamic MRI Measures of Peripheral Vascular Function.Frontiers in physiology · 2020Review
- Exercise-stimulated arterial transit time in calf muscles measured by dynamic contrast-enhanced magnetic resonance imaging.Physiological reports · 2019Article
- Simultaneous measurement of macro- and microvascular blood flow and oxygen saturation for quantification of muscle oxygen consumption.Magnetic resonance in medicine · 2018Article
- Potential of PET-MRI for imaging of non-oncologic musculoskeletal disease.Quantitative imaging in medicine and surgery · 2016Review
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Authors and funding
6 authors.
Funding
Abstract
purposeTo compare calf skeletal muscle perfusion measured with pulsed arterial spin labeling (PASL) and pseudo-continuous arterial spin labeling (pCASL) methods, and to assess the variability of pCASL labeling efficiency in the popliteal artery throughout an ischemia-reperfusion paradigm. MATERIALS AND
methodsAt 3T, relative pCASL labeling efficiency was experimentally assessed in five subjects by measuring the signal intensity of blood in the popliteal artery just distal to the labeling plane immediately following pCASL labeling or control preparation pulses, or without any preparation pulses throughout separate ischemia-reperfusion paradigms. The relative label and control efficiencies were determined during baseline, hyperemia, and recovery. In a separate cohort of 10 subjects, pCASL and PASL sequences were used to measure reactive hyperemia perfusion dynamics.
resultsCalculated pCASL labeling and control efficiencies did not differ significantly between baseline and hyperemia or between hyperemia and recovery periods. Relative to the average baseline, pCASL label efficiency was 2 ± 9% lower during hyperemia. Perfusion dynamics measured with pCASL and PASL did not differ significantly (P > 0.05). Average leg muscle peak perfusion was 47 ± 20 mL/min/100g or 50 ± 12 mL/min/100g, and time to peak perfusion was 25 ± 3 seconds and 25 ± 7 seconds from pCASL and PASL data, respectively. Differences of further metrics parameterizing the perfusion time course were not significant between pCASL and PASL measurements (P > 0.05).
conclusionNo change in pCASL labeling efficiency was detected despite the almost 10-fold increase in average blood flow velocity in the popliteal artery. pCASL and PASL provide precise and consistent measurement of skeletal muscle reactive hyperemia perfusion dynamics. J. MAGN. RESON. IMAGING 2016;44:929-939.
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