Na + /Ca 2+ ‐exchanger‐mediated Mn 2+ ‐enhanced 1 H 2 O MRI in hypoxic, perfused rat myocardium
Paramagnetic Mn 2+ has emerged in the search for non‐invasive magnetic resonance imaging (MRI) techniques to monitor Ca 2+ in diagnostic and prognostic cardiovascular disease tests because it both alters MRI contrast and behaves as a Ca 2+ ‘surrogate’ in vivo . However, the reliance on macroscopical...
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Veröffentlicht in: | Contrast media and molecular imaging 2007-09, Vol.2 (5), p.248-257 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Paramagnetic Mn
2+
has emerged in the search for non‐invasive magnetic resonance imaging (MRI) techniques to monitor Ca
2+
in diagnostic and prognostic cardiovascular disease tests because it both alters MRI contrast and behaves as a Ca
2+
‘surrogate’
in vivo
. However, the reliance on macroscopically averaged measurements to infer microscopic processes constitutes a major limitation of MRI. This investigation circumvents this limitation and contributes an MRI‐based myocardial Ca
2+
‐transporter assay, which probes the Na
+
/Ca
2+
‐exchanger involvement in Mn
2+
(and presumably Ca
2+
) transport by virtue of its response to pharmacological inhibition. In the model employed herein,
ex vivo
arrested rat hearts underwent normoxia and then hypoxia while a constant (hyperkalemic) perfusion minimized flow (and uncontrolled Ca
2+
‐channel) contributions to Mn
2+
‐enhanced MRI measurements. The results (i) demonstrate that Mn
2+
(and presumably Ca
2+
) accumulates via Na
+
/Ca
2+
‐exchanger‐mediated transport during hyperkalemic hypoxia and further, (ii) implicate hypo‐perfusion (rather than the diminished participation of an isolated sarcolemmal Ca
2+
‐transporter) as the mechanism that underlies the reported reductions of Mn
2+
accumulation (relative to healthy myocardium) subsequent to myocardial insults in MRI studies. Although myriad studies have employed Mn
2+
‐enhanced MRI in myocardial investigations, this appears to be the first attempt to assay the Na
+
/Ca
2+
‐exchanger with MRI under highly circumscribed conditions. MRI‐based Ca
2+
‐transporter assays, such as the Na
+
/Ca
2+
‐exchanger assay utilized here, will inevitably impact disciplines in the medical sciences and beyond. Copyright © 2007 John Wiley & Sons, Ltd. |
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ISSN: | 1555-4309 1555-4317 |
DOI: | 10.1002/cmmi.151 |