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    <title><![CDATA[<i>Moringa Oleifera</i> Leaves Extract Attenuates Male Sexual Dysfunction]]></title>
    <link>https://thescipub/abstract/amjnsp.2012.17.24</link>
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        <![CDATA[<p>Neuroscience International, Published online: 1 September 2012; <a href="https://thescipub.com/abstract/amjnsp.2012.17.24">doi:10.3844/amjnsp.2012.17.24</a></p>Problem statement: At present, the novel agent that is effective, cheap and easy to approach for treating male sexual dysfunction is required due to the current poor therapeutic efficacy. Though Morin...]]></content:encoded>
    <dc:title><![CDATA[<i>Moringa Oleifera</i> Leaves Extract Attenuates Male Sexual Dysfunction]]></dc:title><dc:creator>Wipawee  Thukhammee</dc:creator><dc:creator>Supaporn  Muchimapura</dc:creator><dc:creator>Sitthichai  Iamsa-ard</dc:creator><dc:creator>Jintanaporn  Wattanathorn</dc:creator><dc:creator>Thawatchai  Prabsattroo</dc:creator><dc:identifier>doi:10.3844/amjnsp.2012.17.24</dc:identifier>
    <dc:source>Neuroscience International, Published online: 2012-09-01; | doi:10.3844/amjnsp.2012.17.24</dc:source>
    <dc:date>2012-09-01</dc:date>
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    <prism:doi>10.3844/amjnsp.2012.17.24</prism:doi>
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    </item><item rdf:about="https://thescipub/abstract/amjnsp.2021.4.7">
    <title><![CDATA[Astrocytes Store for Memory and Cognition]]></title>
    <link>https://thescipub/abstract/amjnsp.2021.4.7</link>
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        <![CDATA[<p>Neuroscience International, Published online: 21 April 2021; <a href="https://thescipub.com/abstract/amjnsp.2021.4.7">doi:10.3844/amjnsp.2021.4.7</a></p>In humans, protoplasmic astrocytes are found with high density in the cortex and hippocampus (both parts responsible for memory and cognition) and each astrocyte is in contact with two million of syna...]]></content:encoded>
    <dc:title><![CDATA[Astrocytes Store for Memory and Cognition]]></dc:title><dc:creator>Majid Karimi Baghmaleki</dc:creator><dc:identifier>doi:10.3844/amjnsp.2021.4.7</dc:identifier>
    <dc:source>Neuroscience International, Published online: 2021-04-21; | doi:10.3844/amjnsp.2021.4.7</dc:source>
    <dc:date>2021-04-21</dc:date>
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    <prism:doi>10.3844/amjnsp.2021.4.7</prism:doi>
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    </item><item rdf:about="https://thescipub/abstract/amjnsp.2013.1.12">
    <title><![CDATA[Spinal Cord Injury: Current Mammalian Models]]></title>
    <link>https://thescipub/abstract/amjnsp.2013.1.12</link>
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        <![CDATA[<p>Neuroscience International, Published online: 27 March 2013; <a href="https://thescipub.com/abstract/amjnsp.2013.1.12">doi:10.3844/amjnsp.2013.1.12</a></p>It is estimated that approximately 2.5 million people are affected by Spinal Cord Injury (SCI), with more than 130,000 new cases reported each year (International Campaign for Cures of Spinal Cord Inj...]]></content:encoded>
    <dc:title><![CDATA[Spinal Cord Injury: Current Mammalian Models]]></dc:title><dc:creator>Sarina  Kundi</dc:creator><dc:creator>Roy  Bicknell</dc:creator><dc:creator>Zubair  Ahmed</dc:creator><dc:identifier>doi:10.3844/amjnsp.2013.1.12</dc:identifier>
    <dc:source>Neuroscience International, Published online: 2013-03-27; | doi:10.3844/amjnsp.2013.1.12</dc:source>
    <dc:date>2013-03-27</dc:date>
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    <prism:doi>10.3844/amjnsp.2013.1.12</prism:doi>
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    </item><item rdf:about="https://thescipub/abstract/amjnsp.2011.17.27">
    <title><![CDATA[Improved Application of Paraconsistent Artificial Neural Networks in Diagnosis of Alzheimer's Disease]]></title>
    <link>https://thescipub/abstract/amjnsp.2011.17.27</link>
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        <![CDATA[<p>Neuroscience International, Published online: 6 October 2011; <a href="https://thescipub.com/abstract/amjnsp.2011.17.27">doi:10.3844/amjnsp.2011.17.27</a></p>Problem statement: The visual analysis of Electroencephalogram (EEG) activity has shown useful as a complementary tool in Alzheimer Disease (AD diagnosis) when the diagnosis remains uncertain, in addi...]]></content:encoded>
    <dc:title><![CDATA[Improved Application of Paraconsistent Artificial Neural Networks in Diagnosis of Alzheimer's Disease]]></dc:title><dc:creator>Helder F.S. Lopes</dc:creator><dc:creator>Jair M. Abe</dc:creator><dc:creator>Paulo A.M. Kanda</dc:creator><dc:creator>Sergio  Machado</dc:creator><dc:creator>Bruna  Velasques</dc:creator><dc:creator>Pedro  Ribeiro</dc:creator><dc:creator>Luis F.H. Basile</dc:creator><dc:creator>Ricardo  Nitrini</dc:creator><dc:creator>Renato  Anghinah</dc:creator><dc:identifier>doi:10.3844/amjnsp.2011.17.27</dc:identifier>
    <dc:source>Neuroscience International, Published online: 2011-10-06; | doi:10.3844/amjnsp.2011.17.27</dc:source>
    <dc:date>2011-10-06</dc:date>
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    <prism:doi>10.3844/amjnsp.2011.17.27</prism:doi>
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    <title><![CDATA[Potential Effects of Adropin in Subarachnoid Hemorrhage]]></title>
    <link>https://thescipub/abstract/amjnsp.2023.12.19</link>
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        <![CDATA[<p>Neuroscience International, Published online: 21 July 2023; <a href="https://thescipub.com/abstract/amjnsp.2023.12.19">doi:10.3844/amjnsp.2023.12.19</a></p>Subarachnoid Hemorrhage (SAH) typically, occurs in patients over 55 years of age and can cause a significant loss of productivity. SAH also has a high mortality rate and those who survive often suffer...]]></content:encoded>
    <dc:title><![CDATA[Potential Effects of Adropin in Subarachnoid Hemorrhage]]></dc:title><dc:creator>Zahra Hasanpour Segherlou</dc:creator><dc:creator>Mohammad Reza  Hosseini Siyanaki</dc:creator><dc:creator>Brandon  Lucke-Wold</dc:creator><dc:identifier>doi:10.3844/amjnsp.2023.12.19</dc:identifier>
    <dc:source>Neuroscience International, Published online: 2023-07-21; | doi:10.3844/amjnsp.2023.12.19</dc:source>
    <dc:date>2023-07-21</dc:date>
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