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            <title>A molecular switch syncs fat-burning to the body clock, our diet and the...</title>
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            <description>&lt;p&gt;&lt;p&gt;A protein in the brown fat of mice sits at the intersection of three metabolic controls: the body's 24-hour clock, the temperature outside, and our diet. The discovery helps explain how the body can keep a daily rhythm of energy metabolism, and still respond the moment its energy needs change. The discovery by the Gerhart-Hines Group from the NNF Center for Basic Metabolic Research at the University of Copenhagen and their international collaborators was published in Science.&lt;/p&gt;&lt;/p&gt;&lt;p&gt;&lt;a href="http://video.ku.dk/photo/132569666/a-molecular-switch-syncs"&gt;&lt;img src="http://video.ku.dk/64968558/132569666/02b040f8b23815f1cf86cd32e4f8dcbc/standard/download-24-thumbnail.jpg" width="600" height="338"/&gt;&lt;/a&gt;&lt;/p&gt;</description>
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            <itunes:summary>A protein in the brown fat of mice sits at the intersection of three metabolic controls: the body's 24-hour clock, the temperature outside, and our diet. The discovery helps explain how the body can keep a daily rhythm of energy metabolism, and still respond the moment its energy needs change. The discovery by the Gerhart-Hines Group from the NNF Center for Basic Metabolic Research at the University of Copenhagen and their international collaborators was published in Science.</itunes:summary>
            <itunes:subtitle>A protein in the brown fat of mice sits at the intersection of three metabolic controls: the body's 24-hour clock, the temperature outside, and our diet. The discovery helps explain how the body can keep a daily rhythm of energy metabolism, and...</itunes:subtitle>
            <itunes:author>Københavns Universitets Videoportal</itunes:author>
            <itunes:duration>03:05</itunes:duration>
            <media:description type="html">&lt;p&gt;&lt;p&gt;A protein in the brown fat of mice sits at the intersection of three metabolic controls: the body's 24-hour clock, the temperature outside, and our diet. The discovery helps explain how the body can keep a daily rhythm of energy metabolism, and still respond the moment its energy needs change. The discovery by the Gerhart-Hines Group from the NNF Center for Basic Metabolic Research at the University of Copenhagen and their international collaborators was published in Science.&lt;/p&gt;&lt;/p&gt;&lt;p&gt;&lt;a href="http://video.ku.dk/photo/132569666/a-molecular-switch-syncs"&gt;&lt;img src="http://video.ku.dk/64968558/132569666/02b040f8b23815f1cf86cd32e4f8dcbc/standard/download-24-thumbnail.jpg" width="600" height="338"/&gt;&lt;/a&gt;&lt;/p&gt;</media:description>
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            <title>New research points toward better and longer lasting diabetes treatments</title>
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            <description>&lt;p&gt;Scientists at the University of Copenhagen has deepened our understanding of the brain's role in diabetes.&amp;nbsp;&lt;br&gt;&lt;p&gt;The latest findings, which were published in Nature Communications,&amp;nbsp;build on
research by Professor Michael Schwartz from the University of Washington. Several years ago, he
discovered that injecting a single dose of the protein FGF1 targets the brain
and cures diabetes in mice.&lt;/p&gt;&lt;p&gt;&lt;a href="https://cbmr.ku.dk/research/human-genomics-and-metagenomics-in-metabolism/pers-group/"&gt;Associate Professor Tune H. Pers&lt;/a&gt; from the Novo Nordisk Foundation Center for Basic Metabolic Research teamed up with the Schwartz Lab to better understand how FGF1 affects the brains of mice.&lt;/p&gt;&lt;p&gt;They were able to find
that particular neurons within the hypothalamus are changed in a sustained way
and that this change is critical to induce long lasting diabetes remission. The research could
pave the way for new diabetes treatments that are more effective and long
lasting. It also challenges the
prevailing wisdom and about the cause, and potential cure, for diabetes.&lt;br&gt;&lt;br&gt;Read the full article in Nature Communications here:&amp;nbsp;&lt;a href="https://www.nature.com/articles/s41467-020-17720-5"&gt;Transcriptomic analysis links diverse hypothalamic cell types to fibroblast growth factor 1-induced sustained diabetes remission&lt;/a&gt;&lt;/p&gt;&lt;br&gt;&lt;/p&gt;&lt;p&gt;&lt;a href="http://video.ku.dk/photo/64295295/new-research-points-toward-better"&gt;&lt;img src="http://video.ku.dk/60650861/64295295/86640404e127e98efd4df7d45f9dee28/standard/download-13-thumbnail.jpg" width="600" height="338"/&gt;&lt;/a&gt;&lt;/p&gt;</description>
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            <pubDate>Tue, 08 Sep 2020 09:38:03 GMT</pubDate>
            <media:title>New research points toward better and longer lasting diabetes treatments</media:title>
            <itunes:summary>Scientists at the University of Copenhagen has deepened our understanding of the brain's role in diabetes.The latest findings, which were published in Nature Communications,build on
research by Professor Michael Schwartz from the University of Washington. Several years ago, he
discovered that injecting a single dose of the protein FGF1 targets the brain
and cures diabetes in mice.Associate Professor Tune H. Pers from the Novo Nordisk Foundation Center for Basic Metabolic Research teamed up with the Schwartz Lab to better understand how FGF1 affects the brains of mice.They were able to find
that particular neurons within the hypothalamus are changed in a sustained way
and that this change is critical to induce long lasting diabetes remission. The research could
pave the way for new diabetes treatments that are more effective and long
lasting. It also challenges the
prevailing wisdom and about the cause, and potential cure, for diabetes.Read the full article in Nature Communications here:Transcriptomic analysis links diverse hypothalamic cell types to fibroblast growth factor 1-induced sustained diabetes remission</itunes:summary>
            <itunes:subtitle>Scientists at the University of Copenhagen has deepened our understanding of the brain's role in diabetes.The latest findings, which were published in Nature Communications,build on
research by Professor Michael Schwartz from the University of...</itunes:subtitle>
            <itunes:author>Københavns Universitets Videoportal</itunes:author>
            <itunes:duration>02:27</itunes:duration>
            <media:description type="html">&lt;p&gt;Scientists at the University of Copenhagen has deepened our understanding of the brain's role in diabetes.&amp;nbsp;&lt;br&gt;&lt;p&gt;The latest findings, which were published in Nature Communications,&amp;nbsp;build on
research by Professor Michael Schwartz from the University of Washington. Several years ago, he
discovered that injecting a single dose of the protein FGF1 targets the brain
and cures diabetes in mice.&lt;/p&gt;&lt;p&gt;&lt;a href="https://cbmr.ku.dk/research/human-genomics-and-metagenomics-in-metabolism/pers-group/"&gt;Associate Professor Tune H. Pers&lt;/a&gt; from the Novo Nordisk Foundation Center for Basic Metabolic Research teamed up with the Schwartz Lab to better understand how FGF1 affects the brains of mice.&lt;/p&gt;&lt;p&gt;They were able to find
that particular neurons within the hypothalamus are changed in a sustained way
and that this change is critical to induce long lasting diabetes remission. The research could
pave the way for new diabetes treatments that are more effective and long
lasting. It also challenges the
prevailing wisdom and about the cause, and potential cure, for diabetes.&lt;br&gt;&lt;br&gt;Read the full article in Nature Communications here:&amp;nbsp;&lt;a href="https://www.nature.com/articles/s41467-020-17720-5"&gt;Transcriptomic analysis links diverse hypothalamic cell types to fibroblast growth factor 1-induced sustained diabetes remission&lt;/a&gt;&lt;/p&gt;&lt;br&gt;&lt;/p&gt;&lt;p&gt;&lt;a href="http://video.ku.dk/photo/64295295/new-research-points-toward-better"&gt;&lt;img src="http://video.ku.dk/60650861/64295295/86640404e127e98efd4df7d45f9dee28/standard/download-13-thumbnail.jpg" width="600" height="338"/&gt;&lt;/a&gt;&lt;/p&gt;</media:description>
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