Serveur d'exploration sur le cobalt au Maghreb

Attention, ce site est en cours de développement !
Attention, site généré par des moyens informatiques à partir de corpus bruts.
Les informations ne sont donc pas validées.

Can Cytoprotective Cobalt Protoporphyrin Protect Skeletal Muscle and Muscle-derived Stem Cells From Ischemic Injury?

Identifieur interne : 000107 ( Main/Exploration ); précédent : 000106; suivant : 000108

Can Cytoprotective Cobalt Protoporphyrin Protect Skeletal Muscle and Muscle-derived Stem Cells From Ischemic Injury?

Auteurs : Heather-Marie P. Wilson [États-Unis] ; Robert E. Welikson [États-Unis] ; Jun Luo [États-Unis] ; Thomas J. Kean [États-Unis] ; Baohong Cao [République populaire de Chine] ; James E. Dennis [États-Unis] ; Margaret D. Allen [États-Unis]

Source :

RBID : PMC:4523510

Abstract

Background

Extremity trauma is the most common injury seen in combat hospitals as well as in civilian trauma centers. Major skeletal muscle injuries that are complicated by ischemia often result in substantial muscle loss, residual disability, or even amputation, yet few treatment options are available. A therapy that would increase skeletal muscle tolerance to hypoxic damage could reduce acute myocyte loss and enhance preservation of muscle mass in these situations.

Questions/purposes

In these experiments, we investigated (1) whether cobalt protoporphyrin (CoPP), a pharmacologic inducer of cytoprotective heme oxygenase-1 (HO-1), would upregulate HO-1 expression and activity in skeletal muscle, tested in muscle-derived stem cells (MDSCs); and (2) whether CoPP exposure would protect MDSCs from cell death during in vitro hypoxia/reoxygenation. Then, using an in vivo mouse model of hindlimb ischemia/reperfusion injury, we examined (3) whether CoPP pharmacotherapy would reduce skeletal muscle damage when delivered after injury; and (4) whether it would alter the host inflammatory response to injury.

Methods

MDSCs were exposed in vitro to a single dose of 25 μΜ CoPP and harvested over 24 to 96 hours, assessing HO-1 protein expression by Western blot densitometry and HO-1 enzyme activity by cGMP levels. To generate hypoxia/reoxygenation stress, MDSCs were treated in vitro with phosphate-buffered saline (vehicle), CoPP, or CoPP plus an HO-1 inhibitor, tin protoporphyrin (SnPP), and then subjected to 5 hours of hypoxia (< 0.5% O2) followed by 24 hours of reoxygenation and evaluated for apoptosis. In vivo, hindlimb ischemia/reperfusion injury was produced in mice by unilateral 2-hour tourniquet application followed by 24 hours of reperfusion. In three postinjury treatment groups (n = 7 mice/group), CoPP was administered intraperitoneally during ischemia, at the onset of reperfusion, or 1 hour later. Two control groups of mice with the same injury received phosphate-buffered saline (vehicle) or the HO-1 inhibitor, SnPP. Myocyte damage in the gastrocnemius and tibialis anterior muscles was determined by uptake of intraperitoneally delivered Evans blue dye (EBD), quantified by image analysis. On serial sections, inflammation was gauged by the mean myeloperoxidase staining intensity per unit area over the entirety of each muscle.

Results

In MDSCs, a single exposure to CoPP increased HO-1 protein expression and enzyme activity, both of which were sustained for 96 hours. CoPP treatment of MDSCs reduced apoptotic cell populations by 55% after in vitro hypoxia/reoxygenation injury (from a mean of 57.3% apoptotic cells in vehicle-treated controls to 25.7% in CoPP-treated cells, mean difference 31.6%; confidence interval [CI], 28.1–35.0; p < 0.001). In the hindlimb ischemia/reperfusion model, CoPP delivered during ischemia produced a 38% reduction in myocyte damage in the gastrocnemius muscle (from 86.4% ± 7% EBD+ myofibers in vehicle-treated, injured controls to 53.2% EBD+ in CoPP-treated muscle, mean difference 33.2%; 95% CI, 18.3, 48.4; p < 0.001). A 30% reduction in injury to the gastrocnemius was seen with drug delivery at the onset of reperfusion (to 60.6% ± 13% EBD+ with CoPP treatment, mean difference 25.8%; CI, 12.2–39.4; p < 0.001). In the tibialis anterior, however, myocyte damage was decreased only when CoPP was given at the onset of reperfusion, resulting in a 27% reduction in injury (from 78.8% ± 8% EBD+ myofibers in injured controls to 58.3% ± 14% with CoPP treatment, mean difference 20.5%; CI, 6.1–35.0; p = 0.004). Delaying CoPP delivery until 1 hour after tourniquet release obviated the protective effect in both muscles. Mean MPO staining intensity per unit area, indicating the host inflammatory response, decreased by 27–34% across both the gastrocnemius and tibialis anterior muscles when CoPP was given either during ischemia or at the time of reperfusion. Delaying drug delivery until 1 hour after the start of reperfusion abrogated this antiinflammatory effect.

Conclusions

CoPP can decrease skeletal muscle damage when given early in the course of ischemia/reperfusion injury and also provide protection for regenerative stem cell populations.

Clinical Relevance

Pharmacotherapy with HO-1 inducers, delivered in the field, on hospital arrival, or during trauma surgery, may improve preservation of muscle mass and muscle-inherent stem cells after severe ischemic limb injury.

Electronic supplementary material

The online version of this article (doi:10.1007/s11999-015-4332-8) contains supplementary material, which is available to authorized users.


Url:
DOI: 10.1007/s11999-015-4332-8
PubMed: 26070773
PubMed Central: 4523510


Affiliations:


Links toward previous steps (curation, corpus...)


Le document en format XML

<record>
<TEI>
<teiHeader>
<fileDesc>
<titleStmt>
<title xml:lang="en">Can Cytoprotective Cobalt Protoporphyrin Protect Skeletal Muscle and Muscle-derived Stem Cells From Ischemic Injury?</title>
<author>
<name sortKey="Wilson, Heather Marie P" sort="Wilson, Heather Marie P" uniqKey="Wilson H" first="Heather-Marie P." last="Wilson">Heather-Marie P. Wilson</name>
<affiliation wicri:level="2">
<nlm:aff id="Aff1">Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle, WA 98101 USA</nlm:aff>
<country xml:lang="fr">États-Unis</country>
<placeName>
<region type="state">Washington (État)</region>
</placeName>
<wicri:cityArea>Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle</wicri:cityArea>
</affiliation>
</author>
<author>
<name sortKey="Welikson, Robert E" sort="Welikson, Robert E" uniqKey="Welikson R" first="Robert E." last="Welikson">Robert E. Welikson</name>
<affiliation wicri:level="2">
<nlm:aff id="Aff1">Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle, WA 98101 USA</nlm:aff>
<country xml:lang="fr">États-Unis</country>
<placeName>
<region type="state">Washington (État)</region>
</placeName>
<wicri:cityArea>Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle</wicri:cityArea>
</affiliation>
<affiliation wicri:level="2">
<nlm:aff id="Aff2">University of Washington, Seattle, WA USA</nlm:aff>
<country>États-Unis</country>
<placeName>
<region type="state">Washington (État)</region>
</placeName>
<wicri:cityArea>University of Washington, Seattle</wicri:cityArea>
</affiliation>
</author>
<author>
<name sortKey="Luo, Jun" sort="Luo, Jun" uniqKey="Luo J" first="Jun" last="Luo">Jun Luo</name>
<affiliation wicri:level="2">
<nlm:aff id="Aff1">Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle, WA 98101 USA</nlm:aff>
<country xml:lang="fr">États-Unis</country>
<placeName>
<region type="state">Washington (État)</region>
</placeName>
<wicri:cityArea>Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle</wicri:cityArea>
</affiliation>
<affiliation wicri:level="2">
<nlm:aff id="Aff2">University of Washington, Seattle, WA USA</nlm:aff>
<country>États-Unis</country>
<placeName>
<region type="state">Washington (État)</region>
</placeName>
<wicri:cityArea>University of Washington, Seattle</wicri:cityArea>
</affiliation>
</author>
<author>
<name sortKey="Kean, Thomas J" sort="Kean, Thomas J" uniqKey="Kean T" first="Thomas J." last="Kean">Thomas J. Kean</name>
<affiliation wicri:level="2">
<nlm:aff id="Aff1">Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle, WA 98101 USA</nlm:aff>
<country xml:lang="fr">États-Unis</country>
<placeName>
<region type="state">Washington (État)</region>
</placeName>
<wicri:cityArea>Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle</wicri:cityArea>
</affiliation>
<affiliation wicri:level="2">
<nlm:aff id="Aff3">Department of Orthopedic Surgery, Baylor College of Medicine, Houston, TX USA</nlm:aff>
<country>États-Unis</country>
<placeName>
<region type="state">Texas</region>
</placeName>
<wicri:cityArea>Department of Orthopedic Surgery, Baylor College of Medicine, Houston</wicri:cityArea>
</affiliation>
</author>
<author>
<name sortKey="Cao, Baohong" sort="Cao, Baohong" uniqKey="Cao B" first="Baohong" last="Cao">Baohong Cao</name>
<affiliation wicri:level="1">
<nlm:aff id="Aff4">Shanghai Chempartner, Shanghai, China</nlm:aff>
<country xml:lang="fr">République populaire de Chine</country>
<wicri:regionArea>Shanghai Chempartner, Shanghai</wicri:regionArea>
<wicri:noRegion>Shanghai</wicri:noRegion>
</affiliation>
</author>
<author>
<name sortKey="Dennis, James E" sort="Dennis, James E" uniqKey="Dennis J" first="James E." last="Dennis">James E. Dennis</name>
<affiliation wicri:level="2">
<nlm:aff id="Aff1">Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle, WA 98101 USA</nlm:aff>
<country xml:lang="fr">États-Unis</country>
<placeName>
<region type="state">Washington (État)</region>
</placeName>
<wicri:cityArea>Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle</wicri:cityArea>
</affiliation>
<affiliation wicri:level="2">
<nlm:aff id="Aff3">Department of Orthopedic Surgery, Baylor College of Medicine, Houston, TX USA</nlm:aff>
<country>États-Unis</country>
<placeName>
<region type="state">Texas</region>
</placeName>
<wicri:cityArea>Department of Orthopedic Surgery, Baylor College of Medicine, Houston</wicri:cityArea>
</affiliation>
</author>
<author>
<name sortKey="Allen, Margaret D" sort="Allen, Margaret D" uniqKey="Allen M" first="Margaret D." last="Allen">Margaret D. Allen</name>
<affiliation wicri:level="2">
<nlm:aff id="Aff1">Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle, WA 98101 USA</nlm:aff>
<country xml:lang="fr">États-Unis</country>
<placeName>
<region type="state">Washington (État)</region>
</placeName>
<wicri:cityArea>Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle</wicri:cityArea>
</affiliation>
<affiliation wicri:level="2">
<nlm:aff id="Aff5">Department of Surgery, University of Washington, Seattle, WA USA</nlm:aff>
<country>États-Unis</country>
<placeName>
<region type="state">Washington (État)</region>
</placeName>
<wicri:cityArea>Department of Surgery, University of Washington, Seattle</wicri:cityArea>
</affiliation>
</author>
</titleStmt>
<publicationStmt>
<idno type="wicri:source">PMC</idno>
<idno type="pmid">26070773</idno>
<idno type="pmc">4523510</idno>
<idno type="url">http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4523510</idno>
<idno type="RBID">PMC:4523510</idno>
<idno type="doi">10.1007/s11999-015-4332-8</idno>
<date when="2015">2015</date>
<idno type="wicri:Area/Pmc/Corpus">000088</idno>
<idno type="wicri:explorRef" wicri:stream="Pmc" wicri:step="Corpus" wicri:corpus="PMC">000088</idno>
<idno type="wicri:Area/Pmc/Curation">000087</idno>
<idno type="wicri:explorRef" wicri:stream="Pmc" wicri:step="Curation">000087</idno>
<idno type="wicri:Area/Pmc/Checkpoint">000100</idno>
<idno type="wicri:explorRef" wicri:stream="Pmc" wicri:step="Checkpoint">000100</idno>
<idno type="wicri:Area/Ncbi/Merge">000395</idno>
<idno type="wicri:Area/Ncbi/Curation">000395</idno>
<idno type="wicri:Area/Ncbi/Checkpoint">000395</idno>
<idno type="wicri:doubleKey">0009-921X:2015:Wilson H:can:cytoprotective:cobalt</idno>
<idno type="wicri:Area/Main/Merge">000107</idno>
<idno type="wicri:Area/Main/Curation">000107</idno>
<idno type="wicri:Area/Main/Exploration">000107</idno>
</publicationStmt>
<sourceDesc>
<biblStruct>
<analytic>
<title xml:lang="en" level="a" type="main">Can Cytoprotective Cobalt Protoporphyrin Protect Skeletal Muscle and Muscle-derived Stem Cells From Ischemic Injury?</title>
<author>
<name sortKey="Wilson, Heather Marie P" sort="Wilson, Heather Marie P" uniqKey="Wilson H" first="Heather-Marie P." last="Wilson">Heather-Marie P. Wilson</name>
<affiliation wicri:level="2">
<nlm:aff id="Aff1">Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle, WA 98101 USA</nlm:aff>
<country xml:lang="fr">États-Unis</country>
<placeName>
<region type="state">Washington (État)</region>
</placeName>
<wicri:cityArea>Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle</wicri:cityArea>
</affiliation>
</author>
<author>
<name sortKey="Welikson, Robert E" sort="Welikson, Robert E" uniqKey="Welikson R" first="Robert E." last="Welikson">Robert E. Welikson</name>
<affiliation wicri:level="2">
<nlm:aff id="Aff1">Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle, WA 98101 USA</nlm:aff>
<country xml:lang="fr">États-Unis</country>
<placeName>
<region type="state">Washington (État)</region>
</placeName>
<wicri:cityArea>Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle</wicri:cityArea>
</affiliation>
<affiliation wicri:level="2">
<nlm:aff id="Aff2">University of Washington, Seattle, WA USA</nlm:aff>
<country>États-Unis</country>
<placeName>
<region type="state">Washington (État)</region>
</placeName>
<wicri:cityArea>University of Washington, Seattle</wicri:cityArea>
</affiliation>
</author>
<author>
<name sortKey="Luo, Jun" sort="Luo, Jun" uniqKey="Luo J" first="Jun" last="Luo">Jun Luo</name>
<affiliation wicri:level="2">
<nlm:aff id="Aff1">Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle, WA 98101 USA</nlm:aff>
<country xml:lang="fr">États-Unis</country>
<placeName>
<region type="state">Washington (État)</region>
</placeName>
<wicri:cityArea>Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle</wicri:cityArea>
</affiliation>
<affiliation wicri:level="2">
<nlm:aff id="Aff2">University of Washington, Seattle, WA USA</nlm:aff>
<country>États-Unis</country>
<placeName>
<region type="state">Washington (État)</region>
</placeName>
<wicri:cityArea>University of Washington, Seattle</wicri:cityArea>
</affiliation>
</author>
<author>
<name sortKey="Kean, Thomas J" sort="Kean, Thomas J" uniqKey="Kean T" first="Thomas J." last="Kean">Thomas J. Kean</name>
<affiliation wicri:level="2">
<nlm:aff id="Aff1">Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle, WA 98101 USA</nlm:aff>
<country xml:lang="fr">États-Unis</country>
<placeName>
<region type="state">Washington (État)</region>
</placeName>
<wicri:cityArea>Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle</wicri:cityArea>
</affiliation>
<affiliation wicri:level="2">
<nlm:aff id="Aff3">Department of Orthopedic Surgery, Baylor College of Medicine, Houston, TX USA</nlm:aff>
<country>États-Unis</country>
<placeName>
<region type="state">Texas</region>
</placeName>
<wicri:cityArea>Department of Orthopedic Surgery, Baylor College of Medicine, Houston</wicri:cityArea>
</affiliation>
</author>
<author>
<name sortKey="Cao, Baohong" sort="Cao, Baohong" uniqKey="Cao B" first="Baohong" last="Cao">Baohong Cao</name>
<affiliation wicri:level="1">
<nlm:aff id="Aff4">Shanghai Chempartner, Shanghai, China</nlm:aff>
<country xml:lang="fr">République populaire de Chine</country>
<wicri:regionArea>Shanghai Chempartner, Shanghai</wicri:regionArea>
<wicri:noRegion>Shanghai</wicri:noRegion>
</affiliation>
</author>
<author>
<name sortKey="Dennis, James E" sort="Dennis, James E" uniqKey="Dennis J" first="James E." last="Dennis">James E. Dennis</name>
<affiliation wicri:level="2">
<nlm:aff id="Aff1">Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle, WA 98101 USA</nlm:aff>
<country xml:lang="fr">États-Unis</country>
<placeName>
<region type="state">Washington (État)</region>
</placeName>
<wicri:cityArea>Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle</wicri:cityArea>
</affiliation>
<affiliation wicri:level="2">
<nlm:aff id="Aff3">Department of Orthopedic Surgery, Baylor College of Medicine, Houston, TX USA</nlm:aff>
<country>États-Unis</country>
<placeName>
<region type="state">Texas</region>
</placeName>
<wicri:cityArea>Department of Orthopedic Surgery, Baylor College of Medicine, Houston</wicri:cityArea>
</affiliation>
</author>
<author>
<name sortKey="Allen, Margaret D" sort="Allen, Margaret D" uniqKey="Allen M" first="Margaret D." last="Allen">Margaret D. Allen</name>
<affiliation wicri:level="2">
<nlm:aff id="Aff1">Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle, WA 98101 USA</nlm:aff>
<country xml:lang="fr">États-Unis</country>
<placeName>
<region type="state">Washington (État)</region>
</placeName>
<wicri:cityArea>Benaroya Research Institute at Virginia Mason, 1201 9th Avenue, Seattle</wicri:cityArea>
</affiliation>
<affiliation wicri:level="2">
<nlm:aff id="Aff5">Department of Surgery, University of Washington, Seattle, WA USA</nlm:aff>
<country>États-Unis</country>
<placeName>
<region type="state">Washington (État)</region>
</placeName>
<wicri:cityArea>Department of Surgery, University of Washington, Seattle</wicri:cityArea>
</affiliation>
</author>
</analytic>
<series>
<title level="j">Clinical Orthopaedics and Related Research</title>
<idno type="ISSN">0009-921X</idno>
<idno type="eISSN">1528-1132</idno>
<imprint>
<date when="2015">2015</date>
</imprint>
</series>
</biblStruct>
</sourceDesc>
</fileDesc>
<profileDesc>
<textClass></textClass>
</profileDesc>
</teiHeader>
<front>
<div type="abstract" xml:lang="en">
<sec>
<title>Background</title>
<p>Extremity trauma is the most common injury seen in combat hospitals as well as in civilian trauma centers. Major skeletal muscle injuries that are complicated by ischemia often result in substantial muscle loss, residual disability, or even amputation, yet few treatment options are available. A therapy that would increase skeletal muscle tolerance to hypoxic damage could reduce acute myocyte loss and enhance preservation of muscle mass in these situations.</p>
</sec>
<sec>
<title>Questions/purposes</title>
<p>In these experiments, we investigated (1) whether cobalt protoporphyrin (CoPP), a pharmacologic inducer of cytoprotective heme oxygenase-1 (HO-1), would upregulate HO-1 expression and activity in skeletal muscle, tested in muscle-derived stem cells (MDSCs); and (2) whether CoPP exposure would protect MDSCs from cell death during in vitro hypoxia/reoxygenation. Then, using an in vivo mouse model of hindlimb ischemia/reperfusion injury, we examined (3) whether CoPP pharmacotherapy would reduce skeletal muscle damage when delivered after injury; and (4) whether it would alter the host inflammatory response to injury.</p>
</sec>
<sec>
<title>Methods</title>
<p>MDSCs were exposed in vitro to a single dose of 25 μΜ CoPP and harvested over 24 to 96 hours, assessing HO-1 protein expression by Western blot densitometry and HO-1 enzyme activity by cGMP levels. To generate hypoxia/reoxygenation stress, MDSCs were treated in vitro with phosphate-buffered saline (vehicle), CoPP, or CoPP plus an HO-1 inhibitor, tin protoporphyrin (SnPP), and then subjected to 5 hours of hypoxia (< 0.5% O
<sub>2</sub>
) followed by 24 hours of reoxygenation and evaluated for apoptosis. In vivo, hindlimb ischemia/reperfusion injury was produced in mice by unilateral 2-hour tourniquet application followed by 24 hours of reperfusion. In three postinjury treatment groups (n = 7 mice/group), CoPP was administered intraperitoneally during ischemia, at the onset of reperfusion, or 1 hour later. Two control groups of mice with the same injury received phosphate-buffered saline (vehicle) or the HO-1 inhibitor, SnPP. Myocyte damage in the gastrocnemius and tibialis anterior muscles was determined by uptake of intraperitoneally delivered Evans blue dye (EBD), quantified by image analysis. On serial sections, inflammation was gauged by the mean myeloperoxidase staining intensity per unit area over the entirety of each muscle.</p>
</sec>
<sec>
<title>Results</title>
<p>In MDSCs, a single exposure to CoPP increased HO-1 protein expression and enzyme activity, both of which were sustained for 96 hours. CoPP treatment of MDSCs reduced apoptotic cell populations by 55% after in vitro hypoxia/reoxygenation injury (from a mean of 57.3% apoptotic cells in vehicle-treated controls to 25.7% in CoPP-treated cells, mean difference 31.6%; confidence interval [CI], 28.1–35.0; p < 0.001). In the hindlimb ischemia/reperfusion model, CoPP delivered during ischemia produced a 38% reduction in myocyte damage in the gastrocnemius muscle (from 86.4% ± 7% EBD
<sup>+</sup>
myofibers in vehicle-treated, injured controls to 53.2% EBD
<sup>+</sup>
in CoPP-treated muscle, mean difference 33.2%; 95% CI, 18.3, 48.4; p < 0.001). A 30% reduction in injury to the gastrocnemius was seen with drug delivery at the onset of reperfusion (to 60.6% ± 13% EBD
<sup>+</sup>
with CoPP treatment, mean difference 25.8%; CI, 12.2–39.4; p < 0.001). In the tibialis anterior, however, myocyte damage was decreased only when CoPP was given at the onset of reperfusion, resulting in a 27% reduction in injury (from 78.8% ± 8% EBD
<sup>+</sup>
myofibers in injured controls to 58.3% ± 14% with CoPP treatment, mean difference 20.5%; CI, 6.1–35.0; p = 0.004). Delaying CoPP delivery until 1 hour after tourniquet release obviated the protective effect in both muscles. Mean MPO staining intensity per unit area, indicating the host inflammatory response, decreased by 27–34% across both the gastrocnemius and tibialis anterior muscles when CoPP was given either during ischemia or at the time of reperfusion. Delaying drug delivery until 1 hour after the start of reperfusion abrogated this antiinflammatory effect.</p>
</sec>
<sec>
<title>Conclusions</title>
<p>CoPP can decrease skeletal muscle damage when given early in the course of ischemia/reperfusion injury and also provide protection for regenerative stem cell populations.</p>
</sec>
<sec>
<title>Clinical Relevance</title>
<p>Pharmacotherapy with HO-1 inducers, delivered in the field, on hospital arrival, or during trauma surgery, may improve preservation of muscle mass and muscle-inherent stem cells after severe ischemic limb injury.</p>
</sec>
<sec>
<title>Electronic supplementary material</title>
<p>The online version of this article (doi:10.1007/s11999-015-4332-8) contains supplementary material, which is available to authorized users.</p>
</sec>
</div>
</front>
</TEI>
<affiliations>
<list>
<country>
<li>République populaire de Chine</li>
<li>États-Unis</li>
</country>
<region>
<li>Texas</li>
<li>Washington (État)</li>
</region>
</list>
<tree>
<country name="États-Unis">
<region name="Washington (État)">
<name sortKey="Wilson, Heather Marie P" sort="Wilson, Heather Marie P" uniqKey="Wilson H" first="Heather-Marie P." last="Wilson">Heather-Marie P. Wilson</name>
</region>
<name sortKey="Allen, Margaret D" sort="Allen, Margaret D" uniqKey="Allen M" first="Margaret D." last="Allen">Margaret D. Allen</name>
<name sortKey="Allen, Margaret D" sort="Allen, Margaret D" uniqKey="Allen M" first="Margaret D." last="Allen">Margaret D. Allen</name>
<name sortKey="Dennis, James E" sort="Dennis, James E" uniqKey="Dennis J" first="James E." last="Dennis">James E. Dennis</name>
<name sortKey="Dennis, James E" sort="Dennis, James E" uniqKey="Dennis J" first="James E." last="Dennis">James E. Dennis</name>
<name sortKey="Kean, Thomas J" sort="Kean, Thomas J" uniqKey="Kean T" first="Thomas J." last="Kean">Thomas J. Kean</name>
<name sortKey="Kean, Thomas J" sort="Kean, Thomas J" uniqKey="Kean T" first="Thomas J." last="Kean">Thomas J. Kean</name>
<name sortKey="Luo, Jun" sort="Luo, Jun" uniqKey="Luo J" first="Jun" last="Luo">Jun Luo</name>
<name sortKey="Luo, Jun" sort="Luo, Jun" uniqKey="Luo J" first="Jun" last="Luo">Jun Luo</name>
<name sortKey="Welikson, Robert E" sort="Welikson, Robert E" uniqKey="Welikson R" first="Robert E." last="Welikson">Robert E. Welikson</name>
<name sortKey="Welikson, Robert E" sort="Welikson, Robert E" uniqKey="Welikson R" first="Robert E." last="Welikson">Robert E. Welikson</name>
</country>
<country name="République populaire de Chine">
<noRegion>
<name sortKey="Cao, Baohong" sort="Cao, Baohong" uniqKey="Cao B" first="Baohong" last="Cao">Baohong Cao</name>
</noRegion>
</country>
</tree>
</affiliations>
</record>

Pour manipuler ce document sous Unix (Dilib)

EXPLOR_STEP=$WICRI_ROOT/Wicri/Terre/explor/CobaltMaghrebV1/Data/Main/Exploration
HfdSelect -h $EXPLOR_STEP/biblio.hfd -nk 000107 | SxmlIndent | more

Ou

HfdSelect -h $EXPLOR_AREA/Data/Main/Exploration/biblio.hfd -nk 000107 | SxmlIndent | more

Pour mettre un lien sur cette page dans le réseau Wicri

{{Explor lien
   |wiki=    Wicri/Terre
   |area=    CobaltMaghrebV1
   |flux=    Main
   |étape=   Exploration
   |type=    RBID
   |clé=     PMC:4523510
   |texte=   Can Cytoprotective Cobalt Protoporphyrin Protect Skeletal Muscle and Muscle-derived Stem Cells From Ischemic Injury?
}}

Pour générer des pages wiki

HfdIndexSelect -h $EXPLOR_AREA/Data/Main/Exploration/RBID.i   -Sk "pubmed:26070773" \
       | HfdSelect -Kh $EXPLOR_AREA/Data/Main/Exploration/biblio.hfd   \
       | NlmPubMed2Wicri -a CobaltMaghrebV1 

Wicri

This area was generated with Dilib version V0.6.32.
Data generation: Tue Nov 14 12:56:51 2017. Site generation: Mon Feb 12 07:59:49 2024