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  184.                <![CDATA[<p>Nature, Published online: 17 May 2024; <a href="https://www.nature.com/articles/s41586-024-07565-z">doi:10.1038/s41586-024-07565-z</a></p>Author Correction: Quantum control of a cat qubit with bit-flip times exceeding ten seconds]]></content:encoded>
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  189.            <dc:date>2024-05-17</dc:date>
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  200.            <dc:title><![CDATA[Author Correction: A small and vigorous black hole in the early Universe]]></dc:title>
  201.            <dc:creator>Roberto Maiolino</dc:creator><dc:creator>Jan Scholtz</dc:creator><dc:creator>Joris Witstok</dc:creator><dc:creator>Stefano Carniani</dc:creator><dc:creator>Francesco D’Eugenio</dc:creator><dc:creator>Anna de Graaff</dc:creator><dc:creator>Hannah Übler</dc:creator><dc:creator>Sandro Tacchella</dc:creator><dc:creator>Emma Curtis-Lake</dc:creator><dc:creator>Santiago Arribas</dc:creator><dc:creator>Andrew Bunker</dc:creator><dc:creator>Stéphane Charlot</dc:creator><dc:creator>Jacopo Chevallard</dc:creator><dc:creator>Mirko Curti</dc:creator><dc:creator>Tobias J. Looser</dc:creator><dc:creator>Michael V. Maseda</dc:creator><dc:creator>Timothy D. Rawle</dc:creator><dc:creator>Bruno Rodríguez del Pino</dc:creator><dc:creator>Chris J. Willott</dc:creator><dc:creator>Eiichi Egami</dc:creator><dc:creator>Daniel J. Eisenstein</dc:creator><dc:creator>Kevin N. Hainline</dc:creator><dc:creator>Brant Robertson</dc:creator><dc:creator>Christina C. Williams</dc:creator><dc:creator>Christopher N. A. Willmer</dc:creator><dc:creator>William M. Baker</dc:creator><dc:creator>Kristan Boyett</dc:creator><dc:creator>Christa DeCoursey</dc:creator><dc:creator>Andrew C. Fabian</dc:creator><dc:creator>Jakob M. Helton</dc:creator><dc:creator>Zhiyuan Ji</dc:creator><dc:creator>Gareth C. Jones</dc:creator><dc:creator>Nimisha Kumari</dc:creator><dc:creator>Nicolas Laporte</dc:creator><dc:creator>Erica J. Nelson</dc:creator><dc:creator>Michele Perna</dc:creator><dc:creator>Lester Sandles</dc:creator><dc:creator>Irene Shivaei</dc:creator><dc:creator>Fengwu Sun</dc:creator>
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  221.            <prism:doi>10.1038/d41586-024-01398-6</prism:doi>
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  439.                <![CDATA[<p>Nature, Published online: 15 May 2024; <a href="https://www.nature.com/articles/s41586-024-07423-y">doi:10.1038/s41586-024-07423-y</a></p>The adrenal gland of the oldfield mouse (Peromyscus polionotus) has a recently evolved cell type that promotes monogamous-typical parenting behaviour and is not present in closely related species.]]></content:encoded>
  440.            <dc:title><![CDATA[Evolution of a novel adrenal cell type that promotes parental care]]></dc:title>
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  442.            <dc:identifier>doi:10.1038/s41586-024-07423-y</dc:identifier>
  443.            <dc:source>Nature, Published online: 2024-05-15; | doi:10.1038/s41586-024-07423-y</dc:source>
  444.            <dc:date>2024-05-15</dc:date>
  445.            <prism:publicationName>Nature</prism:publicationName>
  446.            <prism:doi>10.1038/s41586-024-07423-y</prism:doi>
  447.            <prism:url>https://www.nature.com/articles/s41586-024-07423-y</prism:url>
  448.        </item>
  449.    
  450.        <item rdf:about="https://www.nature.com/articles/s41586-024-07390-4">
  451.            <title><![CDATA[Suppressed thermal transport in silicon nanoribbons by inhomogeneous strain]]></title>
  452.            <link>https://www.nature.com/articles/s41586-024-07390-4</link>
  453.            <content:encoded>
  454.                <![CDATA[<p>Nature, Published online: 15 May 2024; <a href="https://www.nature.com/articles/s41586-024-07390-4">doi:10.1038/s41586-024-07390-4</a></p>We report on a method for inducing uncontaminated and precise inhomogeneous strain in nanoscale silicon ribbons and its use for determining physical effects in these strained materials, in particular, an increase in the range and control of thermal conductivity.]]></content:encoded>
  455.            <dc:title><![CDATA[Suppressed thermal transport in silicon nanoribbons by inhomogeneous strain]]></dc:title>
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  457.            <dc:identifier>doi:10.1038/s41586-024-07390-4</dc:identifier>
  458.            <dc:source>Nature, Published online: 2024-05-15; | doi:10.1038/s41586-024-07390-4</dc:source>
  459.            <dc:date>2024-05-15</dc:date>
  460.            <prism:publicationName>Nature</prism:publicationName>
  461.            <prism:doi>10.1038/s41586-024-07390-4</prism:doi>
  462.            <prism:url>https://www.nature.com/articles/s41586-024-07390-4</prism:url>
  463.        </item>
  464.    
  465.        <item rdf:about="https://www.nature.com/articles/s41586-024-07447-4">
  466.            <title><![CDATA[The rise of baobab trees in Madagascar]]></title>
  467.            <link>https://www.nature.com/articles/s41586-024-07447-4</link>
  468.            <content:encoded>
  469.                <![CDATA[<p>Nature, Published online: 15 May 2024; <a href="https://www.nature.com/articles/s41586-024-07447-4">doi:10.1038/s41586-024-07447-4</a></p>We carried out genomic and ecological analyses of all eight extant baobab species, providing insights into their evolutionary history and recommendations for conservation efforts.]]></content:encoded>
  470.            <dc:title><![CDATA[The rise of baobab trees in Madagascar]]></dc:title>
  471.            <dc:creator>Jun-Nan Wan</dc:creator><dc:creator>Sheng-Wei Wang</dc:creator><dc:creator>Andrew R. Leitch</dc:creator><dc:creator>Ilia J. Leitch</dc:creator><dc:creator>Jian-Bo Jian</dc:creator><dc:creator>Zhang-Yan Wu</dc:creator><dc:creator>Hai-Ping Xin</dc:creator><dc:creator>Mijoro Rakotoarinivo</dc:creator><dc:creator>Guy Eric Onjalalaina</dc:creator><dc:creator>Robert Wahiti Gituru</dc:creator><dc:creator>Can Dai</dc:creator><dc:creator>Geoffrey Mwachala</dc:creator><dc:creator>Ming-Zhou Bai</dc:creator><dc:creator>Chen-Xi Zhao</dc:creator><dc:creator>Hong-Qi Wang</dc:creator><dc:creator>Sheng-Lan Du</dc:creator><dc:creator>Neng Wei</dc:creator><dc:creator>Guang-Wan Hu</dc:creator><dc:creator>Si-Chong Chen</dc:creator><dc:creator>Xiao-Ya Chen</dc:creator><dc:creator>Tao Wan</dc:creator><dc:creator>Qing-Feng Wang</dc:creator>
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  473.            <dc:source>Nature, Published online: 2024-05-15; | doi:10.1038/s41586-024-07447-4</dc:source>
  474.            <dc:date>2024-05-15</dc:date>
  475.            <prism:publicationName>Nature</prism:publicationName>
  476.            <prism:doi>10.1038/s41586-024-07447-4</prism:doi>
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  479.    
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  481.            <title><![CDATA[Arresting failure propagation in buildings through collapse isolation]]></title>
  482.            <link>https://www.nature.com/articles/s41586-024-07268-5</link>
  483.            <content:encoded>
  484.                <![CDATA[<p>Nature, Published online: 15 May 2024; <a href="https://www.nature.com/articles/s41586-024-07268-5">doi:10.1038/s41586-024-07268-5</a></p>A design approach arrests collapse propagation in buildings after major initial failures by ensuring that specific elements fail before the failure of the most important components for global stability.]]></content:encoded>
  485.            <dc:title><![CDATA[Arresting failure propagation in buildings through collapse isolation]]></dc:title>
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  488.            <dc:source>Nature, Published online: 2024-05-15; | doi:10.1038/s41586-024-07268-5</dc:source>
  489.            <dc:date>2024-05-15</dc:date>
  490.            <prism:publicationName>Nature</prism:publicationName>
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  496.            <title><![CDATA[Dispersion-assisted high-dimensional photodetector]]></title>
  497.            <link>https://www.nature.com/articles/s41586-024-07398-w</link>
  498.            <content:encoded>
  499.                <![CDATA[<p>Nature, Published online: 15 May 2024; <a href="https://www.nature.com/articles/s41586-024-07398-w">doi:10.1038/s41586-024-07398-w</a></p>By combining spatial and frequency dispersive thin-film interfaces with deep residual learning, a miniature photodetector allowing the acquisition of high-dimensional information on light in a single-shot fashion is described.]]></content:encoded>
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  503.            <dc:source>Nature, Published online: 2024-05-15; | doi:10.1038/s41586-024-07398-w</dc:source>
  504.            <dc:date>2024-05-15</dc:date>
  505.            <prism:publicationName>Nature</prism:publicationName>
  506.            <prism:doi>10.1038/s41586-024-07398-w</prism:doi>
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  509.    
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  511.            <title><![CDATA[GLP-1-directed NMDA receptor antagonism for obesity treatment]]></title>
  512.            <link>https://www.nature.com/articles/s41586-024-07419-8</link>
  513.            <content:encoded>
  514.                <![CDATA[<p>Nature, Published online: 15 May 2024; <a href="https://www.nature.com/articles/s41586-024-07419-8">doi:10.1038/s41586-024-07419-8</a></p>Unimolecular integration of NMDA receptor antagonism with GLP-1 receptor agonism effectively reverses obesity, hyperglycaemia and dyslipidaemia in rodent models of metabolic disease.]]></content:encoded>
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  518.            <dc:source>Nature, Published online: 2024-05-15; | doi:10.1038/s41586-024-07419-8</dc:source>
  519.            <dc:date>2024-05-15</dc:date>
  520.            <prism:publicationName>Nature</prism:publicationName>
  521.            <prism:doi>10.1038/s41586-024-07419-8</prism:doi>
  522.            <prism:url>https://www.nature.com/articles/s41586-024-07419-8</prism:url>
  523.        </item>
  524.    
  525.        <item rdf:about="https://www.nature.com/articles/s41586-024-07400-5">
  526.            <title><![CDATA[Photocatalytic doping of organic semiconductors]]></title>
  527.            <link>https://www.nature.com/articles/s41586-024-07400-5</link>
  528.            <content:encoded>
  529.                <![CDATA[<p>Nature, Published online: 15 May 2024; <a href="https://www.nature.com/articles/s41586-024-07400-5">doi:10.1038/s41586-024-07400-5</a></p>A previously undescribed photocatalytic approach enables the effective p-type and n-type doping of organic semiconductors at room temperature using only widely available weak dopants such as oxygen and triethylamine.]]></content:encoded>
  530.            <dc:title><![CDATA[Photocatalytic doping of organic semiconductors]]></dc:title>
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  533.            <dc:source>Nature, Published online: 2024-05-15; | doi:10.1038/s41586-024-07400-5</dc:source>
  534.            <dc:date>2024-05-15</dc:date>
  535.            <prism:publicationName>Nature</prism:publicationName>
  536.            <prism:doi>10.1038/s41586-024-07400-5</prism:doi>
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  541.            <title><![CDATA[The temperature sensor TWA1 is required for thermotolerance in <i>Arabidopsis</i>]]></title>
  542.            <link>https://www.nature.com/articles/s41586-024-07424-x</link>
  543.            <content:encoded>
  544.                <![CDATA[<p>Nature, Published online: 15 May 2024; <a href="https://www.nature.com/articles/s41586-024-07424-x">doi:10.1038/s41586-024-07424-x</a></p>TWA1 is a temperature-sensing transcriptional co-regulator that is needed for basal and acquired thermotolerance in Arabidopsis thaliana.]]></content:encoded>
  545.            <dc:title><![CDATA[The temperature sensor TWA1 is required for thermotolerance in <i>Arabidopsis</i>]]></dc:title>
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  547.            <dc:identifier>doi:10.1038/s41586-024-07424-x</dc:identifier>
  548.            <dc:source>Nature, Published online: 2024-05-15; | doi:10.1038/s41586-024-07424-x</dc:source>
  549.            <dc:date>2024-05-15</dc:date>
  550.            <prism:publicationName>Nature</prism:publicationName>
  551.            <prism:doi>10.1038/s41586-024-07424-x</prism:doi>
  552.            <prism:url>https://www.nature.com/articles/s41586-024-07424-x</prism:url>
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  554.    
  555.        <item rdf:about="https://www.nature.com/articles/s41586-024-07349-5">
  556.            <title><![CDATA[Temporal multiplexing of perception and memory codes in IT cortex]]></title>
  557.            <link>https://www.nature.com/articles/s41586-024-07349-5</link>
  558.            <content:encoded>
  559.                <![CDATA[<p>Nature, Published online: 15 May 2024; <a href="https://www.nature.com/articles/s41586-024-07349-5">doi:10.1038/s41586-024-07349-5</a></p>We examined how familiar faces are encoded in inferotemporal, perirhinal and temporal pole face patches, and found that relative response magnitude to familiar versus unfamiliar faces was not a stable indicator of familiarity in any patch.]]></content:encoded>
  560.            <dc:title><![CDATA[Temporal multiplexing of perception and memory codes in IT cortex]]></dc:title>
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  563.            <dc:source>Nature, Published online: 2024-05-15; | doi:10.1038/s41586-024-07349-5</dc:source>
  564.            <dc:date>2024-05-15</dc:date>
  565.            <prism:publicationName>Nature</prism:publicationName>
  566.            <prism:doi>10.1038/s41586-024-07349-5</prism:doi>
  567.            <prism:url>https://www.nature.com/articles/s41586-024-07349-5</prism:url>
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  571.            <title><![CDATA[Superconducting diode effect and interference patterns in kagome CsV<sub>3</sub>Sb<sub>5</sub>]]></title>
  572.            <link>https://www.nature.com/articles/s41586-024-07431-y</link>
  573.            <content:encoded>
  574.                <![CDATA[<p>Nature, Published online: 15 May 2024; <a href="https://www.nature.com/articles/s41586-024-07431-y">doi:10.1038/s41586-024-07431-y</a></p>We observe the superconducting diode effect and interference patterns in CsV3Sb5, implying a time-reversal symmetry-breaking superconducting order in kagome superconductors.]]></content:encoded>
  575.            <dc:title><![CDATA[Superconducting diode effect and interference patterns in kagome CsV<sub>3</sub>Sb<sub>5</sub>]]></dc:title>
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  577.            <dc:identifier>doi:10.1038/s41586-024-07431-y</dc:identifier>
  578.            <dc:source>Nature, Published online: 2024-05-15; | doi:10.1038/s41586-024-07431-y</dc:source>
  579.            <dc:date>2024-05-15</dc:date>
  580.            <prism:publicationName>Nature</prism:publicationName>
  581.            <prism:doi>10.1038/s41586-024-07431-y</prism:doi>
  582.            <prism:url>https://www.nature.com/articles/s41586-024-07431-y</prism:url>
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  586.            <title><![CDATA[Physiological temperature drives TRPM4 ligand recognition and gating]]></title>
  587.            <link>https://www.nature.com/articles/s41586-024-07436-7</link>
  588.            <content:encoded>
  589.                <![CDATA[<p>Nature, Published online: 15 May 2024; <a href="https://www.nature.com/articles/s41586-024-07436-7">doi:10.1038/s41586-024-07436-7</a></p>A temperature-dependent Ca2+-binding site in the intracellular domain of TRPM4 is essential for TRPM4 function in physiological contexts.]]></content:encoded>
  590.            <dc:title><![CDATA[Physiological temperature drives TRPM4 ligand recognition and gating]]></dc:title>
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  1171.            <title><![CDATA[Publisher Correction: Network-level encoding of local neurotransmitters in cortical astrocytes]]></title>
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  1173.            <content:encoded>
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  1176.            <dc:creator>Michelle K. Cahill</dc:creator><dc:creator>Max Collard</dc:creator><dc:creator>Vincent Tse</dc:creator><dc:creator>Michael E. Reitman</dc:creator><dc:creator>Roberto Etchenique</dc:creator><dc:creator>Christoph Kirst</dc:creator><dc:creator>Kira E. Poskanzer</dc:creator>
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  1180.            <prism:publicationName>Nature</prism:publicationName>
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  1182.            <prism:url>https://www.nature.com/articles/s41586-024-07468-z</prism:url>
  1183.        </item>
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  1188.            <content:encoded>
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  1190.            <dc:title><![CDATA[Plasmid targeting and destruction by the DdmDE bacterial defence system]]></dc:title>
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  1195.            <prism:publicationName>Nature</prism:publicationName>
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  1197.            <prism:url>https://www.nature.com/articles/s41586-024-07515-9</prism:url>
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  1203.            <content:encoded>
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  1234.                <![CDATA[<p>Nature, Published online: 13 May 2024; <a href="https://www.nature.com/articles/d41586-024-01434-5">doi:10.1038/d41586-024-01434-5</a></p>A survey of people in 168 countries finds that Internet use might boost life satisfaction and sense of purpose. Plus, what a Neanderthal’s Mona-Lisa smile tells us about ourselves and how the cauliflower got its whorls.]]></content:encoded>
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  1250.            <dc:title><![CDATA[Dazzling auroras are just a warm-up as more solar storms are likely, scientists say]]></dc:title>
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  1265.            <dc:title><![CDATA[Decent work for all: why multinationals need a helping hand]]></dc:title>
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  1293.            <content:encoded>
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  1301.            <prism:doi>10.1038/d41586-024-01424-7</prism:doi>
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