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    <mx:record id="15425">
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        <datafield tag="022" ind1="" ind2="">
            <subfield code="a">1949-095X</subfield>
        </datafield>
        <datafield tag="100" ind1="" ind2="">
            <subfield code="a">Camilla  Brolin and Takehiko Shiraishi</subfield>
        </datafield>
        
        <datafield tag="210" ind1="" ind2="">
            <subfield code="a">artificialdna</subfield>
        </datafield>
        
        <datafield tag="245" ind1="" ind2="">
            <subfield code="a">Antisense mediated exon skipping therapy for duchenne muscular dystrophy (DMD)</subfield> 
        </datafield>
        
        <datafield tag="260" ind1="3" ind2="">
            <subfield code="b">Landes Bioscience</subfield>
            <subfield code="c">2011-03-31</subfield>
        </datafield>
        
        <datafield tag="302" ind1="" ind2="">
            <subfield code="a">6 - 15</subfield>
        </datafield>
        
        <datafield tag="440" ind1="" ind2="">
            
            <subfield code="a">Artificial DNA: PNA &amp; XNA</subfield>
            <subfield code="v">2-1</subfield>
        </datafield>
        <datafield tag="449" ind1="" ind2="">
            <subfield code="o">Landes Bioscience</subfield>
        </datafield>
        <datafield tag="520" ind1="3" ind2="">
            <subfield code="a">Duchenne muscular dystrophy (DMD) is a lethal disease caused by mutations in the dystrophin gene (&lt;em&gt;DMD&lt;/em&gt;) that result in the absence of essential muscle protein dystrophin. Among many different approaches for DMD treatment, exon skipping, mediated by antisense oligonucleotides, is one of the most promising methods for restoration of dystrophin expression. This approach has been tested extensively targeting different exons in numerous models both in vitro and in vivo. During the past 10 years, there has been a considerable progress by using DMD animal models involving three types of antisense oligonucleotides (2’-O-methyl phosphorothioate (2OME-PS), phosphorodiamidate morpholino oligomer (PMO)) and peptide nucleic acid (PNA).</subfield>
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        <datafield tag="856" ind1="4" ind2="">
            
            <subfield code="u">http://dx.doi.org/10.4161/adna.2.1.15425</subfield>
            <subfield code="u">http://www.landesbioscience.com/journals/artificialdna/article/15425/</subfield>
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        <datafield tag="949" ind1="" ind2="">
            <subfield code="t">article</subfield>
            <subfield code="n">Mini-Review</subfield>
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