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<meta name="robots" content="INDEX,FOLLOW,NOARCHIVE" /><meta name="citation_inbook_title" content="Molecular Imaging and Contrast Agent Database (MICAD) [Internet]" /><meta name="citation_title" content="Cy5.5-Aminohexanoic acid-RPLALWRS-aminohexanoic acid-C-G4-PAMAM-PEG-AF750" /><meta name="citation_publisher" content="National Center for Biotechnology Information (US)" /><meta name="citation_date" content="2009/05/28" /><meta name="citation_author" content="Kam Leung" /><meta name="citation_pmid" content="20641551" /><meta name="citation_fulltext_html_url" content="https://www.ncbi.nlm.nih.gov/books/NBK23349/" /><link rel="schema.DC" href="http://purl.org/DC/elements/1.0/" /><meta name="DC.Title" content="Cy5.5-Aminohexanoic acid-RPLALWRS-aminohexanoic acid-C-G4-PAMAM-PEG-AF750" /><meta name="DC.Type" content="Text" /><meta name="DC.Publisher" content="National Center for Biotechnology Information (US)" /><meta name="DC.Contributor" content="Kam Leung" /><meta name="DC.Date" content="2009/05/28" /><meta name="DC.Identifier" content="https://www.ncbi.nlm.nih.gov/books/NBK23349/" /><meta name="description" content="Optical fluorescence imaging is increasingly used to obtain biological functions of specific targets (1, 2). However, the intrinsic fluorescence of biomolecules poses a problem when fluorophores that absorb visible light (350–700 nm) are used. Near-infrared (NIR) fluorescence (700–1,000 nm) detection avoids the background fluorescence interference of natural biomolecules, providing a high contrast between target and background tissues. NIR fluorophores have wider dynamic range and minimal background as a result of reduced scattering compared with visible fluorescence detection. They also have high sensitivity, resulting from low infrared background, and high extinction coefficients, which provide high quantum yields. The NIR region is also compatible with solid-state optical components, such as diode lasers and silicon detectors. NIR fluorescence imaging is becoming a non-invasive alternative to radionuclide imaging." /><meta name="og:title" content="Cy5.5-Aminohexanoic acid-RPLALWRS-aminohexanoic acid-C-G4-PAMAM-PEG-AF750" /><meta name="og:type" content="book" /><meta name="og:description" content="Optical fluorescence imaging is increasingly used to obtain biological functions of specific targets (1, 2). However, the intrinsic fluorescence of biomolecules poses a problem when fluorophores that absorb visible light (350–700 nm) are used. Near-infrared (NIR) fluorescence (700–1,000 nm) detection avoids the background fluorescence interference of natural biomolecules, providing a high contrast between target and background tissues. NIR fluorophores have wider dynamic range and minimal background as a result of reduced scattering compared with visible fluorescence detection. They also have high sensitivity, resulting from low infrared background, and high extinction coefficients, which provide high quantum yields. The NIR region is also compatible with solid-state optical components, such as diode lasers and silicon detectors. NIR fluorescence imaging is becoming a non-invasive alternative to radionuclide imaging." /><meta name="og:url" content="https://www.ncbi.nlm.nih.gov/books/NBK23349/" /><meta name="og:site_name" content="NCBI Bookshelf" /><meta name="og:image" content="https://www.ncbi.nlm.nih.gov/corehtml/pmc/pmcgifs/bookshelf/thumbs/th-micad-lrg.png" /><meta name="twitter:card" content="summary" /><meta name="twitter:site" content="@ncbibooks" /><meta name="bk-non-canon-loc" content="/books/n/micad/PB-M7NIR/" /><link rel="canonical" href="https://www.ncbi.nlm.nih.gov/books/NBK23349/" /><link rel="stylesheet" href="/corehtml/pmc/css/figpopup.css" type="text/css" media="screen" /><link rel="stylesheet" href="/corehtml/pmc/css/bookshelf/2.26/css/books.min.css" type="text/css" /><link rel="stylesheet" href="/corehtml/pmc/css/bookshelf/2.26/css/books_print.min.css" type="text/css" media="print" /><style type="text/css">p a.figpopup{display:inline !important} .bk_tt {font-family: monospace} .first-line-outdent .bk_ref {display: inline} .body-content h2, .body-content .h2 {border-bottom: 1px solid #97B0C8} .body-content h2.inline {border-bottom: none} a.page-toc-label , .jig-ncbismoothscroll a {text-decoration:none;border:0 !important} .temp-labeled-list .graphic {display:inline-block !important} .temp-labeled-list img{width:100%}</style><script type="text/javascript" src="/corehtml/pmc/js/jquery.hoverIntent.min.js"> </script><script type="text/javascript" src="/corehtml/pmc/js/common.min.js?_=3.18"> </script><script type="text/javascript" src="/corehtml/pmc/js/large-obj-scrollbars.min.js"> </script><script type="text/javascript">window.name="mainwindow";</script><script type="text/javascript" src="/corehtml/pmc/js/bookshelf/2.26/book-toc.min.js"> </script><script type="text/javascript" src="/corehtml/pmc/js/bookshelf/2.26/books.min.js"> </script><meta name="book-collection" content="NONE" />
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<div class="pre-content"><div><div class="bk_prnt"><p class="small">NCBI Bookshelf. A service of the National Library of Medicine, National Institutes of Health.</p><p>Molecular Imaging and Contrast Agent Database (MICAD) [Internet]. Bethesda (MD): National Center for Biotechnology Information (US); 2004-2013. </p></div><div class="iconblock clearfix whole_rhythm no_top_margin bk_noprnt"><a class="img_link icnblk_img" title="Table of Contents Page" href="/books/n/micad/"><img class="source-thumb" src="/corehtml/pmc/pmcgifs/bookshelf/thumbs/th-micad-lrg.png" alt="Cover of Molecular Imaging and Contrast Agent Database (MICAD)" height="100px" width="80px" /></a><div class="icnblk_cntnt eight_col"><h2>Molecular Imaging and Contrast Agent Database (MICAD) [Internet].</h2><a data-jig="ncbitoggler" href="#__NBK23349_dtls__">Show details</a><div style="display:none" class="ui-widget" id="__NBK23349_dtls__"><div>Bethesda (MD): <a href="https://www.ncbi.nlm.nih.gov/" ref="pagearea=page-banner&targetsite=external&targetcat=link&targettype=publisher">National Center for Biotechnology Information (US)</a>; 2004-2013.</div></div><div class="half_rhythm"><ul class="inline_list"><li style="margin-right:1em"><a class="bk_cntns" href="/books/n/micad/">Contents</a></li></ul></div><div class="bk_noprnt"><form method="get" action="/books/n/micad/" id="bk_srch"><div class="bk_search"><label for="bk_term" class="offscreen_noflow">Search term</label><input type="text" title="Search this book" id="bk_term" name="term" value="" data-jig="ncbiclearbutton" /> <input type="submit" class="jig-ncbibutton" value="Search this book" submit="false" style="padding: 0.1em 0.4em;" /></div></form></div></div><div class="icnblk_cntnt two_col"><div class="pagination bk_noprnt"><a class="active page_link prev" href="/books/n/micad/Z1907-Cy55/" title="Previous page in this title">< Prev</a><a class="active page_link next" href="/books/n/micad/Cy5-5AnnexinV/" title="Next page in this title">Next ></a></div></div></div></div></div>
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<div class="main-content lit-style" itemscope="itemscope" itemtype="http://schema.org/CreativeWork"><div class="meta-content fm-sec"><h1 id="_NBK23349_"><span class="title" itemprop="name">Cy5.5-Aminohexanoic acid-RPLALWRS-aminohexanoic acid-C-G4-PAMAM-PEG-AF750</span></h1><div itemprop="alternativeHeadline" class="subtitle whole_rhythm">PB-M7NIR</div><p class="contrib-group"><span itemprop="author">Kam Leung</span>, PhD.</p><a data-jig="ncbitoggler" href="#__NBK23349_ai__" style="border:0;text-decoration:none">Author Information and Affiliations</a><div style="display:none" class="ui-widget" id="__NBK23349_ai__"><div class="contrib half_rhythm"><span itemprop="author">Kam Leung</span>, PhD<div class="affiliation small">National Center for Biotechnology Information, NLM, NIH<div><span class="email-label">Email: </span><a href="mailto:dev@null" data-email="vog.hin.mln.ibcn@DACIM" class="oemail">vog.hin.mln.ibcn@DACIM</a></div></div><div class="small">Corresponding author.</div></div></div><p class="small">Created: <span itemprop="datePublished">April 26, 2009</span>; Last Update: <span itemprop="dateModified">May 28, 2009</span>.</p></div><div class="jig-ncbiinpagenav body-content whole_rhythm" data-jigconfig="allHeadingLevels: ['h2'],smoothScroll: false" itemprop="text"><div id="PB-M7NIR.T1" class="table"><p class="large-table-link" style="display:none"><span class="right"><a href="/books/NBK23349/table/PB-M7NIR.T1/?report=objectonly" target="object">View in own window</a></span></p><div class="large_tbl" id="__PB-M7NIR.T1_lrgtbl__"><table><tbody><tr><td rowspan="1" colspan="1" style="text-align:right;vertical-align:top;">
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<b>Chemical name:</b>
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</td><td rowspan="1" colspan="1" style="text-align:left;vertical-align:top;">Cy5.5-Aminohexanoic acid-RPLALWRS-aminohexanoic acid-C-G4-PAMAM-PEG-AF750</td><td rowspan="9" colspan="1" style="text-align:left;vertical-align:middle;"></td></tr><tr><td rowspan="1" colspan="1" style="text-align:right;vertical-align:top;">
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<b>Abbreviated name:</b>
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</td><td rowspan="1" colspan="1" style="text-align:left;vertical-align:top;">PB-M7NIR</td></tr><tr><td rowspan="1" colspan="1" style="text-align:right;vertical-align:top;">
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<b>Synonym:</b>
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</td><td rowspan="1" colspan="1" style="text-align:left;vertical-align:top;"></td></tr><tr><td rowspan="1" colspan="1" style="text-align:right;vertical-align:top;">
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<b>Agent category:</b>
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</td><td rowspan="1" colspan="1" style="text-align:left;vertical-align:top;">Peptide</td></tr><tr><td rowspan="1" colspan="1" style="text-align:right;vertical-align:top;">
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<b>Target:</b>
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</td><td rowspan="1" colspan="1" style="text-align:left;vertical-align:top;">Matrix metalloproteinase-7 (MMP-7)</td></tr><tr><td rowspan="1" colspan="1" style="text-align:right;vertical-align:top;">
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<b>Target category:</b>
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</td><td rowspan="1" colspan="1" style="text-align:left;vertical-align:top;">Enzyme</td></tr><tr><td rowspan="1" colspan="1" style="text-align:right;vertical-align:top;">
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<b>Method of detection:</b>
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</td><td rowspan="1" colspan="1" style="text-align:left;vertical-align:top;">Optical, near-infrared (NIR) fluorescence</td></tr><tr><td rowspan="1" colspan="1" style="text-align:right;vertical-align:top;">
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<b>Source of signal/contrast:</b>
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</td><td rowspan="1" colspan="1" style="text-align:left;vertical-align:top;">Cy5.5</td></tr><tr><td rowspan="1" colspan="1" style="text-align:right;vertical-align:top;">
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<b>Activation:</b>
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</td><td rowspan="1" colspan="1" style="text-align:left;vertical-align:top;">Yes</td></tr><tr><td rowspan="1" colspan="1" style="text-align:right;vertical-align:top;">
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<b>Studies:</b>
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</td><td rowspan="1" colspan="1" style="text-align:left;vertical-align:top;">
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<ul class="simple-list"><li class="half_rhythm"><div>
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<img alt="Checkbox" src="/corehtml/pmc/css/bookshelf/2.26/img/studies.checkbox.png" />
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<i>In vitro</i>
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</div></li><li class="half_rhythm"><div>
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<img alt="Checkbox" src="/corehtml/pmc/css/bookshelf/2.26/img/studies.checkbox.png" /> Rodents
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</div></li></ul>
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</td><td rowspan="1" colspan="1" style="text-align:left;vertical-align:top;">No structure is currently available in <a href="http://pubchem.ncbi.nlm.nih.gov" ref="pagearea=body&targetsite=external&targetcat=link&targettype=uri">PubChem</a>.</td></tr></tbody></table></div></div><div id="PB-M7NIR.Background"><h2 id="_PB-M7NIR_Background_">Background</h2><p>[<a href="/entrez/query.fcgi?cmd=PureSearch&db=pubmed&details_term=PB-M7NIR" ref="pagearea=body&targetsite=external&targetcat=link&targettype=uri">PubMed</a>]</p><p>Optical fluorescence imaging is increasingly used to obtain biological functions of specific targets (<a class="bk_pop" href="#PB-M7NIR.REF.1" data-bk-pop-others="PB-M7NIR.REF.2">1, 2</a>). However, the intrinsic fluorescence of biomolecules poses a problem when fluorophores that absorb visible light (350–700 nm) are used. Near-infrared (NIR) fluorescence (700–1,000 nm) detection avoids the background fluorescence interference of natural biomolecules, providing a high contrast between target and background tissues. NIR fluorophores have wider dynamic range and minimal background as a result of reduced scattering compared with visible fluorescence detection. They also have high sensitivity, resulting from low infrared background, and high extinction coefficients, which provide high quantum yields. The NIR region is also compatible with solid-state optical components, such as diode lasers and silicon detectors. NIR fluorescence imaging is becoming a non-invasive alternative to radionuclide imaging.</p><p>Extracellular matrix (ECM) adhesion molecules consist of a complex network of fibronectins, collagens, chondroitins, laminins, glycoproteins, heparin sulfate, tenascins, and proteoglycans that surround connective tissue cells, and they are mainly secreted by fibroblasts, chondroblasts, and osteoblasts (<a class="bk_pop" href="#PB-M7NIR.REF.3">3</a>). Cell substrate adhesion molecules are considered essential regulators of cell migration, differentiation, and tissue integrity and remodeling. These molecules play a role in inflammation and atherogenesis, but they also participate in the process of invasion and metastasis of malignant cells in the host tissue (<a class="bk_pop" href="#PB-M7NIR.REF.4">4</a>). Invasive tumor cells adhere to the ECM, which provides a matrix environment for permeation of tumor cells through the basal lamina and underlying interstitial stroma of the connective tissue. Overexpression of matrix metalloproteinases (MMPs) and other proteases by tumor cells allows intravasation of tumor cells into the circulatory system after degrading the basement membrane and ECM (<a class="bk_pop" href="#PB-M7NIR.REF.5">5</a>).</p><p>Several families of MMPs are involved in atherogenesis, myocardial infarction, angiogenesis, and tumor invasion and metastases (<a class="bk_pop" href="#PB-M7NIR.REF.6" data-bk-pop-others="PB-M7NIR.REF.7 PB-M7NIR.REF.8 PB-M7NIR.REF.9">6-9</a>). MMP expression in normal cells, such as trophoblasts, osteoclasts, neutrophils, and macrophages, is highly regulated. Elevated levels of MMPs have been found in tumors associated with a poor prognosis for cancer patients (<a class="bk_pop" href="#PB-M7NIR.REF.10">10</a>). The peptide aminohexanoic acid(AXH)-RPLALWRS-(AXH)-C (M7) was found to be a MMP-7 substrate that is cleaved between the L and W residues. Scherer et al. (<a class="bk_pop" href="#PB-M7NIR.REF.11">11</a>) used this sequence with a Cy5.5 NIR dye molecule to attach to a Generation 4–polyamidoamine-polyethylene glycol (PEG)-AF750 dendrimer to form fluorescence-quenched dendrimer, Cy5.5-(AXH)-RPLALWRS-(AXH)-C-G4-PAMAM-PEG-AF750 (PB-M7NIR). The Cy5.5 molecules are in close proximity, which results in fluorescence quenching because of the close proximity of the Cy5.5 molecules. AF750 molecules are conjugated to the dendrimer and act as an internal fluorescence reference. The NIR fluorescence signal will increase when the L-W bond is cleaved by MMP-7, releasing Cy5.5-containing fragments. Cy5.5 is a NIR fluorescent dye with an absorbance maximum at 675 nm and an emission maximum at 694 nm with a high extinction coefficient of 250,000 M<sup>-1</sup>cm<sup>-1</sup>. PB-M7NIR is being developed for NIR fluorescence imaging of MMP-7 expression in tumors, atherosclerosis, myocardial infarction, and other diseases.</p></div><div id="PB-M7NIR.Synthesis"><h2 id="_PB-M7NIR_Synthesis_">Synthesis</h2><p>[<a href="/entrez/query.fcgi?cmd=PureSearch&db=pubmed&details_term=PB-M7NIR%20and%20synthesis" ref="pagearea=body&targetsite=external&targetcat=link&targettype=uri">PubMed</a>]</p><p>Scherer et al. (<a class="bk_pop" href="#PB-M7NIR.REF.11">11</a>) prepared PB-M7NIR by conjugation of Cy5.5-M7 to G4-PAMAM-PEG-AF750. A methanolic solution (5 mM) of the M7 peptide was reacted with 0.8 molar equivalent of Cy5.5-NHS in dimethyl sulfoxide (DMSO) (7 mM), and triethylamine was added to 1% (v/v) to fluorescently label the peptide at the N-terminal amine. Cy5.5-M7 was coupled to G4-PAMAM-PEG. To synthesize the thioether-bonded conjugate in Cy5.5-M7-PAMAM-PEG, the PAMAM-PEG conjugate was first activated by treatment with <i>N</i>-succinimidyl iodoacetate (SIA) (8 mg/ml methanol, 20 molar equivalents/PAMAM). After reaction for 20 minutes at room temperature, the SIA-activated PAMAM-PEG was incubated with the reduced Cy5.5-M7 peptides in methanolic solution (8 peptides/PAMAM) for 24 hours at room temperature. To label the PAMAM dendrimer scaffold with AF750, the Cy5.5-M7-PAMAM-PEG was dissolved in 50 mM in Na<sub>2</sub>CO<sub>3</sub> (pH 9) and reacted for 18 h with up to 8 molar equivalents of AF750-NHS (7 mM in DMSO). PB-M7NIR was purified with ultrafiltration. There were approximately eight molecules of Cy5.5-M7 and approximately six molecules of AF750 per PB-M7NIR.</p></div><div id="PB-M7NIR.In_Vitro_Studies_Tes"><h2 id="_PB-M7NIR_In_Vitro_Studies_Tes_"><i>In Vitro</i> Studies: Testing in Cells and Tissues</h2><p>[<a href="/entrez/query.fcgi?cmd=PureSearch&db=pubmed&details_term=PB-M7NIR%20and%20in%20vitro" ref="pagearea=body&targetsite=external&targetcat=link&targettype=uri">PubMed</a>]</p><p>Scherer et al. (<a class="bk_pop" href="#PB-M7NIR.REF.11">11</a>) showed that PB-M7NIR exhibited five-fold increases in Cy5.5 NIR fluorescence signal with MMP-7 incubation with no change in the AF750 reference fluorescence signal. McIntyre et al. (<a class="bk_pop" href="#PB-M7NIR.REF.12">12</a>) showed that FITC-M7-PAMAM-TMR (PB-M7VIS) was cleaved by MMP-2, MMP-3, and MMP-7. However, PB-M7VIS was 56-fold more active with MMP-7 than with MMP-2 and 13-fold more active with MMP-7 than with MMP-3. PB-M7VIS was not a substrate for cathepsin B or L.</p></div><div id="PB-M7NIR.Animal_Studies"><h2 id="_PB-M7NIR_Animal_Studies_">Animal Studies</h2><div id="PB-M7NIR.Rodents"><h3>Rodents</h3><p>[<a href="/entrez/query.fcgi?cmd=PureSearch&db=pubmed&details_term=PB-M7NIR%20and%20rodentia" ref="pagearea=body&targetsite=external&targetcat=link&targettype=uri">PubMed</a>]</p><p>Scherer et al. (<a class="bk_pop" href="#PB-M7NIR.REF.11">11</a>) performed biodistribution studies of PB-M7NIR (1 nmol/mouse) injected intravenously to mice (<i>n</i> = 13) bearing SW480neo human colon cancer cells (MMP-7–negative) on one flank and SW480mat human colon cancer cells (MMP-7–positive) on the opposite flank. Optical imaging was performed in the Cy5.5 and AF750 channels for 4 h after injection. Cy5.5 NIR fluorescence signal above the background was visualized at 1 h and increased by approximately one-fold at 3 h as compared with the signal at 1 h. On the other hand, the AF750 reference signal was lower than the Cy5.5 signal with little increase over time. The Cy5.5/AF750 ratios at 4 h after injection were 70 for the MMP-7–negative tumors and 275 for the MMP-7–positive tumors. Histological imaging of tumor sections revealed a strong Cy5.5 signal at the tumor-stroma interface and in the ECM of MMP-7–positive tumor sections, but not in the MMP-7–negative tumor sections with Cy5.5/AF750 ratios of 692 and 2, respectively. No blocking or MMP-7 inhibition experiments were performed.</p></div><div id="PB-M7NIR.Other_NonPrimate_Mam"><h3>Other Non-Primate Mammals</h3><p>[<a href="/entrez/query.fcgi?cmd=PureSearch&db=pubmed&details_term=PB-M7NIR%20and%20%28dog%20or%20pig%20or%20sheep%20or%20rabbit%29" ref="pagearea=body&targetsite=external&targetcat=link&targettype=uri">PubMed</a>]</p><p>No publication is currently available.</p></div><div id="PB-M7NIR.NonHuman_Primates"><h3>Non-Human Primates</h3><p>[<a href="/entrez/query.fcgi?cmd=PureSearch&db=pubmed&details_term=PB-M7NIR%20and%20%28primate%20not%20human%29" ref="pagearea=body&targetsite=external&targetcat=link&targettype=uri">PubMed</a>]</p><p>No publication is currently available.</p></div></div><div id="PB-M7NIR.Human_Studies"><h2 id="_PB-M7NIR_Human_Studies_">Human Studies</h2><p>[<a href="/entrez/query.fcgi?cmd=PureSearch&db=pubmed&details_term=PB-M7NIR%20and%20human" ref="pagearea=body&targetsite=external&targetcat=link&targettype=uri">PubMed</a>]</p><p>No publication is currently available.</p></div><div id="PB-M7NIR.NIH_Support"><h2 id="_PB-M7NIR_NIH_Support_">NIH Support</h2><p>R01 CA60867, P30 068485</p></div><div id="PB-M7NIR.References"><h2 id="_PB-M7NIR_References_">References</h2><dl class="temp-labeled-list"><dt>1.</dt><dd><div class="bk_ref" id="PB-M7NIR.REF.1">Ntziachristos V., Bremer C., Weissleder R.
|
||
<em>Fluorescence imaging with near-infrared light: new technological advances that enable in vivo molecular imaging.</em>
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||
<span><span class="ref-journal">Eur Radiol. </span>2003;<span class="ref-vol">13</span>(1):195–208.</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/12541130" ref="pagearea=cite-ref&targetsite=entrez&targetcat=link&targettype=pubmed">PubMed<span class="bk_prnt">: 12541130</span></a>]</div></dd><dt>2.</dt><dd><div class="bk_ref" id="PB-M7NIR.REF.2">Achilefu S.
|
||
<em>Lighting up tumors with receptor-specific optical molecular probes.</em>
|
||
<span><span class="ref-journal">Technol Cancer Res Treat. </span>2004;<span class="ref-vol">3</span>(4):393–409.</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/15270591" ref="pagearea=cite-ref&targetsite=entrez&targetcat=link&targettype=pubmed">PubMed<span class="bk_prnt">: 15270591</span></a>]</div></dd><dt>3.</dt><dd><div class="bk_ref" id="PB-M7NIR.REF.3">Bosman F.T., Stamenkovic I.
|
||
<em>Functional structure and composition of the extracellular matrix.</em>
|
||
<span><span class="ref-journal">J Pathol. </span>2003;<span class="ref-vol">200</span>(4):423–8.</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/12845610" ref="pagearea=cite-ref&targetsite=entrez&targetcat=link&targettype=pubmed">PubMed<span class="bk_prnt">: 12845610</span></a>]</div></dd><dt>4.</dt><dd><div class="bk_ref" id="PB-M7NIR.REF.4">Jiang W.G., Puntis M.C., Hallett M.B.
|
||
<em>Molecular and cellular basis of cancer invasion and metastasis: implications for treatment.</em>
|
||
<span><span class="ref-journal">Br J Surg. </span>1994;<span class="ref-vol">81</span>(11):1576–90.</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/7827878" ref="pagearea=cite-ref&targetsite=entrez&targetcat=link&targettype=pubmed">PubMed<span class="bk_prnt">: 7827878</span></a>]</div></dd><dt>5.</dt><dd><div class="bk_ref" id="PB-M7NIR.REF.5">Albelda S.M.
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||
<em>Role of integrins and other cell adhesion molecules in tumor progression and metastasis.</em>
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||
<span><span class="ref-journal">Lab Invest. </span>1993;<span class="ref-vol">68</span>(1):4–17.</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/8423675" ref="pagearea=cite-ref&targetsite=entrez&targetcat=link&targettype=pubmed">PubMed<span class="bk_prnt">: 8423675</span></a>]</div></dd><dt>6.</dt><dd><div class="bk_ref" id="PB-M7NIR.REF.6">Keppler D., Sameni M., Moin K., Mikkelsen T., Diglio C.A., Sloane B.F.
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||
<em>Tumor progression and angiogenesis: cathepsin B & Co.</em>
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||
<span><span class="ref-journal">Biochem Cell Biol. </span>1996;<span class="ref-vol">74</span>(6):799–810.</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/9164649" ref="pagearea=cite-ref&targetsite=entrez&targetcat=link&targettype=pubmed">PubMed<span class="bk_prnt">: 9164649</span></a>]</div></dd><dt>7.</dt><dd><div class="bk_ref" id="PB-M7NIR.REF.7">Liu J., Sukhova G.K., Sun J.S., Xu W.H., Libby P., Shi G.P.
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<em>Lysosomal cysteine proteases in atherosclerosis.</em>
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||
<span><span class="ref-journal">Arterioscler Thromb Vasc Biol. </span>2004;<span class="ref-vol">24</span>(8):1359–66.</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/15178558" ref="pagearea=cite-ref&targetsite=entrez&targetcat=link&targettype=pubmed">PubMed<span class="bk_prnt">: 15178558</span></a>]</div></dd><dt>8.</dt><dd><div class="bk_ref" id="PB-M7NIR.REF.8">Berchem G., Glondu M., Gleizes M., Brouillet J.P., Vignon F., Garcia M., Liaudet-Coopman E.
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<em>Cathepsin-D affects multiple tumor progression steps in vivo: proliferation, angiogenesis and apoptosis.</em>
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<span><span class="ref-journal">Oncogene. </span>2002;<span class="ref-vol">21</span>(38):5951–5.</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/12185597" ref="pagearea=cite-ref&targetsite=entrez&targetcat=link&targettype=pubmed">PubMed<span class="bk_prnt">: 12185597</span></a>]</div></dd><dt>9.</dt><dd><div class="bk_ref" id="PB-M7NIR.REF.9">Brix, K., A. Dunkhorst, K. Mayer, and S. Jordans, <em>Cysteine cathepsins: Cellular roadmap to different functions.</em> Biochimie, 2007. [<a href="https://pubmed.ncbi.nlm.nih.gov/17825974" ref="pagearea=cite-ref&targetsite=entrez&targetcat=link&targettype=pubmed">PubMed<span class="bk_prnt">: 17825974</span></a>]</div></dd><dt>10.</dt><dd><div class="bk_ref" id="PB-M7NIR.REF.10">Deryugina E.I., Quigley J.P.
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<em>Matrix metalloproteinases and tumor metastasis.</em>
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||
<span><span class="ref-journal">Cancer Metastasis Rev. </span>2006;<span class="ref-vol">25</span>(1):9–34.</span> [<a href="https://pubmed.ncbi.nlm.nih.gov/16680569" ref="pagearea=cite-ref&targetsite=entrez&targetcat=link&targettype=pubmed">PubMed<span class="bk_prnt">: 16680569</span></a>]</div></dd><dt>11.</dt><dd><div class="bk_ref" id="PB-M7NIR.REF.11">Scherer R.L., VanSaun M.N., McIntyre J.O., Matrisian L.M.
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<em>Optical imaging of matrix metalloproteinase-7 activity in vivo using a proteolytic nanobeacon.</em>
|
||
<span><span class="ref-journal">Mol Imaging. </span>2008;<span class="ref-vol">7</span>(3):118–31.</span> [<a href="/pmc/articles/PMC2777890/" ref="pagearea=cite-ref&targetsite=entrez&targetcat=link&targettype=pmc">PMC free article<span class="bk_prnt">: PMC2777890</span></a>] [<a href="https://pubmed.ncbi.nlm.nih.gov/19123982" ref="pagearea=cite-ref&targetsite=entrez&targetcat=link&targettype=pubmed">PubMed<span class="bk_prnt">: 19123982</span></a>]</div></dd><dt>12.</dt><dd><div class="bk_ref" id="PB-M7NIR.REF.12">McIntyre J.O., Fingleton B., Wells K.S., Piston D.W., Lynch C.C., Gautam S., Matrisian L.M.
|
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<em>Development of a novel fluorogenic proteolytic beacon for in vivo detection and imaging of tumour-associated matrix metalloproteinase-7 activity.</em>
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<span><span class="ref-journal">Biochem J. </span>2004;<span class="ref-vol">377</span>(Pt 3):617–28.</span> [<a href="/pmc/articles/PMC1223892/" ref="pagearea=cite-ref&targetsite=entrez&targetcat=link&targettype=pmc">PMC free article<span class="bk_prnt">: PMC1223892</span></a>] [<a href="https://pubmed.ncbi.nlm.nih.gov/14556651" ref="pagearea=cite-ref&targetsite=entrez&targetcat=link&targettype=pubmed">PubMed<span class="bk_prnt">: 14556651</span></a>]</div></dd></dl></div><div id="bk_toc_contnr"></div></div></div>
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<div class="post-content"><div><div class="half_rhythm"><a href="/books/about/copyright/">Copyright Notice</a></div><div class="small"><span class="label">Bookshelf ID: NBK23349</span><span class="label">PMID: <a href="https://pubmed.ncbi.nlm.nih.gov/20641551" title="PubMed record of this page" ref="pagearea=meta&targetsite=entrez&targetcat=link&targettype=pubmed">20641551</a></span></div><div style="margin-top:2em" class="bk_noprnt"><a class="bk_cntns" href="/books/n/micad/">Contents</a><div class="pagination bk_noprnt"><a class="active page_link prev" href="/books/n/micad/Z1907-Cy55/" title="Previous page in this title">< Prev</a><a class="active page_link next" href="/books/n/micad/Cy5-5AnnexinV/" title="Next page in this title">Next ></a></div></div></div></div>
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<div xmlns:np="http://ncbi.gov/portal/XSLT/namespace" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance"></div><div class="portlet"><div class="portlet_head"><div class="portlet_title"><h3><span>Views</span></h3></div><a name="Shutter" sid="1" href="#" class="portlet_shutter" title="Show/hide content" remembercollapsed="true" pgsec_name="PDF_download" id="Shutter"></a></div><div class="portlet_content"><ul xmlns:np="http://ncbi.gov/portal/XSLT/namespace" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" class="simple-list"><li><a href="/books/NBK23349/?report=reader">PubReader</a></li><li><a href="/books/NBK23349/?report=printable">Print View</a></li><li><a data-jig="ncbidialog" href="#_ncbi_dlg_citbx_NBK23349" data-jigconfig="width:400,modal:true">Cite this Page</a><div id="_ncbi_dlg_citbx_NBK23349" style="display:none" title="Cite this Page"><div class="bk_tt">Leung K. Cy5.5-Aminohexanoic acid-RPLALWRS-aminohexanoic acid-C-G4-PAMAM-PEG-AF750. 2009 Apr 26 [Updated 2009 May 28]. In: Molecular Imaging and Contrast Agent Database (MICAD) [Internet]. Bethesda (MD): National Center for Biotechnology Information (US); 2004-2013. <span class="bk_cite_avail"></span></div></div></li><li><a href="/books/NBK23349/pdf/Bookshelf_NBK23349.pdf">PDF version of this page</a> (134K)</li><li><a href="/books/n/micad/toc/bin/micad.csv">MICAD summary (CSV file)</a></li></ul></div></div><div class="portlet"><div class="portlet_head"><div class="portlet_title"><h3><span>In this page</span></h3></div><a name="Shutter" sid="1" href="#" class="portlet_shutter" title="Show/hide content" remembercollapsed="true" pgsec_name="page-toc" id="Shutter"></a></div><div class="portlet_content"><ul xmlns:np="http://ncbi.gov/portal/XSLT/namespace" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" class="simple-list"><li><a href="#PB-M7NIR.Background" ref="log$=inpage&link_id=inpage">Background</a></li><li><a href="#PB-M7NIR.Synthesis" ref="log$=inpage&link_id=inpage">Synthesis</a></li><li><a href="#PB-M7NIR.In_Vitro_Studies_Tes" ref="log$=inpage&link_id=inpage"><i>In Vitro</i> Studies: Testing in Cells and Tissues</a></li><li><a href="#PB-M7NIR.Animal_Studies" ref="log$=inpage&link_id=inpage">Animal Studies</a></li><li><a href="#PB-M7NIR.Human_Studies" ref="log$=inpage&link_id=inpage">Human Studies</a></li><li><a href="#PB-M7NIR.NIH_Support" ref="log$=inpage&link_id=inpage">NIH Support</a></li><li><a href="#PB-M7NIR.References" ref="log$=inpage&link_id=inpage">References</a></li></ul></div></div><div class="portlet"><div class="portlet_head"><div class="portlet_title"><h3><span>Search MICAD</span></h3></div><a name="Shutter" sid="1" href="#" class="portlet_shutter" title="Show/hide content" remembercollapsed="true" pgsec_name="source-application" id="Shutter"></a></div><div class="portlet_content"><form xmlns:np="http://ncbi.gov/portal/XSLT/namespace" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" name="frmSearch" method="get" action="/books/NBK5330/" id="frmSearch"><script type="text/javascript" src="/corehtml/pmc//js/bookshelf/micad.js">/**/</script><label class="offscreen_noflow" for="txtfield">Search term</label><input id="txtfield" type="text" name="f1_term" size="22" onKeyPress="KeyPress('micad',event,'/books/NBK5330/','')" /><button name="f1_search" type="submit">Go</button><button onclick="this.form.reset();" type="reset">Clear</button><p><b>Limit my Search:</b></p><div class="clearfix"><label for="detection">Method of detection:</label><div class="right"><select name="detection" id="detection" style="width:200px"><option value="" selected="selected">Any</option><option value="(MRI OR "Magnetic resonance imaging" OR MRS)">MRI</option><option value="Multimodal">Multimodal imaging</option><option value="Optical">Optical imaging</option><option value="PET">PET</option><option value="Photoacoustic">Photoacoustic imaging</option><option value="(SPECT OR planar)">SPECT</option><option value="Ultrasound">Ultrasound</option><option value="(x-ray OR ct)">X-ray, CT</option></select></div></div><div class="clearfix"><label for="signal">Source of signal/contrast:</label><div class="right"><select name="signal" id="signal" style="width:200px"><option value="" selected="selected">Any</option><optgroup label="MRI agents"><option value="(Copper OR Cu)">Copper</option><option value="(Europium OR Eu3+)">Europium</option><option value="(Fluorine OR 19F)">Fluorine</option><option value="(Gadolinium OR Gd3+)">Gadolinium</option><option value=""Hyperpolarized 13C"">Hyperpolarized 13C</option><option value=""Iron oxide"">Iron oxide</option><option value=""Nitroxide radicals"">Nitroxide radicals</option><option value="(Oxygen OR 17O)">Oxygen</option><option value="Thulium">Thulium</option></optgroup><optgroup label="Multimodal agents"><option value="((Gadolinium OR Gd3+) AND Optical)">Gadolinium and optical</option><option value="((Gadolinium OR Gd3+) AND (Gold OR Au))">Gadolinium and Gold</option><option value="("Iron oxide" AND (64Cu OR 124I OR 111In))">Iron oxide and
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value="Nanobubbles">Nanobubbles</option></optgroup><optgroup label="X-ray and CT agents"><option value="(Bismuth OR Bi)">Bismuth</option><option value="(Gold OR Au)">Gold</option><option value="Iodine">Iodine</option></optgroup></select></div></div><div class="clearfix"><label for="agent">Agent Category:</label><div class="right"><select name="agent" id="agent" style="width:200px"><option value="" selected="selected">Any</option><option value="(antibody OR trastuzumab OR immunoglobulin)">Antibodies</option><option value="(bacteria OR bacteriophage OR coli)">Bacteria</option><option value="cell">Cells</option><option value="(compound OR "amino acid" OR "folic acid" OR "cage molecule" OR carbohydrate OR copolymers OR polymer OR "small molecule" OR macromolecule OR triiodobenzoate OR estradiol OR glycosaminoglycan)">Compounds</option><option value="ligand">Ligands</option><option value="(lipid OR liposome OR liposomes">Lipids</option><option value="metal">Metal</option><option value="(nanoparticle OR nanoparticles OR nanotubes OR "iron oxide")">Nanoparticles</option><option value="(siRNA OR "nucleic acid" OR oligonucleotide)">Nucleic acids</option><option value="peptide">Peptides</option><option value="polyeptide">Polyeptides</option><option value="(protein OR albumin OR chemokin OR immunoprotein OR luciferase OR albumin)">Proteins</option><option value="(virus OR adenovirus)">Viruses</option></select></div></div><div class="clearfix"><label for="target">Target Category:</label><div class="right"><select name="target" id="target" style="width:200px"><option value="" selected="selected">Any</option><option value="acceptor">Acceptors</option><option value=""adhesion molecule"">Adhesion molecules</option><option value="(antigen OR antibody-antigen)">Antigens</option><option value="(enzyme OR enzymes OR enzyme-substrate)">Enzymes</option><option value="(lipids OR lipophilic cation)">Lipids</option><option value="(receptor OR receptors OR receptor-ligand OR 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