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March 23, 2007Circulation Research158 citationsOpen Access

Dual Channel Optical Tomographic Imaging of Leukocyte Recruitment and Protease Activity in the Healing Myocardial Infarct

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MNMatthias NahrendorfDSDavid E. SosnovikPWPeter Waterman

Key Result

Fluorescent molecular tomography detected impaired recruitment of phagocytes and protease activity in FXIII-/- mice compared to wild-type mice after myocardial infarction (P<0.05).

Structured PICO

Does multichannel fluorescent molecular tomography (FMT) detect impaired healing and characterize phagocytic and proteolytic activities in murine myocardial infarcts?

P
Population
Wild-type and FXIII-/- mice subjected to coronary ligation (myocardial infarction model)
I
Intervention
Multichannel fluorescent molecular tomography (FMT) with simultaneous injections of Prosense-680 (cathepsin activity sensor) and CLIO-VT750 (magneto-fluorescent nanoparticle)
C
Comparator
Wild-type mice (efficient healing) compared to FXIII-/- mice (impaired healing)
O
Outcome
Phagocytic and proteolytic activities mediated by macrophages and neutrophils in murine infarctssurrogate

Multichannel fluorescent molecular tomography is a promising noninvasive imaging approach to characterize cellular functions and detect impaired healing in myocardial infarction.

Main Result

p-value: p=<0.05

Abstract

Inflammatory responses after myocardial infarction profoundly impact tissue repair. Yet, efficient tools to serially and noninvasively assess cellular and molecular functions in postinfarct inflammation are lacking. Here we use multichannel fluorescent molecular tomography (FMT) for spatiotemporal resolution of phagocytic and proteolytic activities mediated by macrophages and neutrophils in murine infarcts. We performed FMT imaging to compare the course of efficient and impaired healing in wild-type and FXIII-/- mice, respectively. Mice subjected to coronary ligation received simultaneous injections with Prosense-680, an activatable fluorescence sensor reporting on cathepsin activity, and CLIO-VT750, a magneto-fluorescent nanoparticle for imaging of phagocyte recruitment. On FMT, Prosense-680 infarct signal was 19-fold higher than background (P<0.05). Protease activity was higher in the infarcted lateral wall than in the remote, uninjured septum on ex vivo fluorescence reflectance imaging (contrast to noise ratio 118+/-24). CLIO-VT750 FMT signal coregistered with contrast enhancement in the hypokinetic infarct on MRI. Microscopic fluorescence signal colocalized with immunoreactive staining for cathepsin, macrophages and neutrophils. Flow cytometry of digested infarcts revealed monocytes/macrophages and neutrophils as the source of the fluorescence signal. Phagocytic activity peaked on day 6, and proteolytic activity peaked on day 4 after myocardial infarction. FMT detected impaired recruitment of phagocytes and protease activity in FXIII-/- mice (P<0.05). FMT is a promising noninvasive molecular imaging approach to characterize infarct healing. Spectrally resolved imaging agents allow for simultaneous assesment of key processes of in vivo cellular functions. Specifically, we show that in vivo FMT detects impaired healing in FXIII-/- mice.

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Cite This Study

Nahrendorf et al. (2007) studied Myocardial infarction. Fluorescent molecular tomography (FMT) with Prosense-680 and CLIO-VT750 vs. Wild-type mice was evaluated on Phagocytic and proteolytic activities (p=<0.05). Fluorescent molecular tomography detected impaired recruitment of phagocytes and protease activity in FXIII-/- mice compared to wild-type mice after myocardial infarction (P<0.05).

synapsesocial.com/papers/6a0cfa78b31ab1d6e01e7406https://doi.org/10.1161/01.res.0000265064.46075.31
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