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  50.                <![CDATA[<p>Nature Reviews Immunology, Published online: 24 April 2024; <a href="https://www.nature.com/articles/s41577-024-01037-1">doi:10.1038/s41577-024-01037-1</a></p>Adrian Liston, professor of pathology at the University of Cambridge, UK, has published several illustrated children’s books on the topic of vaccination and has developed a computer game called ‘VirusFighter’. Here, he shares his thoughts on how to become an effective science communicator.]]></content:encoded>
  51.            <dc:title><![CDATA[Harnessing our lived experience for science communication]]></dc:title>
  52.            <dc:creator>Adrian Liston</dc:creator>
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  65.                <![CDATA[<p>Nature Reviews Immunology, Published online: 24 April 2024; <a href="https://www.nature.com/articles/s41577-024-01036-2">doi:10.1038/s41577-024-01036-2</a></p>Sex hormones in male mice negatively regulate type 2 innate lymphoid cells in the skin, impairing the induction and activation of dendritic cells and thereby contributing to differences in immunity in males and females.]]></content:encoded>
  66.            <dc:title><![CDATA[Weaker skin immunity in males due to androgen effects on ILC2s]]></dc:title>
  67.            <dc:creator>Lucy Bird</dc:creator>
  68.            <dc:identifier>doi:10.1038/s41577-024-01036-2</dc:identifier>
  69.            <dc:source>Nature Reviews Immunology, Published online: 2024-04-24; | doi:10.1038/s41577-024-01036-2</dc:source>
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  78.            <link>https://www.nature.com/articles/s41577-024-01022-8</link>
  79.            <content:encoded>
  80.                <![CDATA[<p>Nature Reviews Immunology, Published online: 24 April 2024; <a href="https://www.nature.com/articles/s41577-024-01022-8">doi:10.1038/s41577-024-01022-8</a></p>Genome editing approaches can be used to confer immune-evasive properties to allogeneic cellular immunotherapies, with the aim of achieving persistent responses and efficiencies that are comparable to those of autologous chimeric antigen receptor T cell therapies. This Perspective discusses how current knowledge about viral or tumour immune evasion could be incorporated into the design of off-the-shelf tumour-specific T and NK cells for the production of cost-effective and scalable cancer immunotherapies.]]></content:encoded>
  81.            <dc:title><![CDATA[Engineering immune-evasive allogeneic cellular immunotherapies]]></dc:title>
  82.            <dc:creator>Karen E. Martin</dc:creator><dc:creator>Quirin Hammer</dc:creator><dc:creator>Karlo Perica</dc:creator><dc:creator>Michel Sadelain</dc:creator><dc:creator>Karl-Johan Malmberg</dc:creator>
  83.            <dc:identifier>doi:10.1038/s41577-024-01022-8</dc:identifier>
  84.            <dc:source>Nature Reviews Immunology, Published online: 2024-04-24; | doi:10.1038/s41577-024-01022-8</dc:source>
  85.            <dc:date>2024-04-24</dc:date>
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  92.            <title><![CDATA[Cancer cell metabolism and antitumour immunity]]></title>
  93.            <link>https://www.nature.com/articles/s41577-024-01026-4</link>
  94.            <content:encoded>
  95.                <![CDATA[<p>Nature Reviews Immunology, Published online: 22 April 2024; <a href="https://www.nature.com/articles/s41577-024-01026-4">doi:10.1038/s41577-024-01026-4</a></p>This Review discusses the mechanisms by which common alterations of cancer cell metabolism interfere with immune functions to promote immunoevasion and tumour progression, and avenues to target such alterations for therapeutic purposes.]]></content:encoded>
  96.            <dc:title><![CDATA[Cancer cell metabolism and antitumour immunity]]></dc:title>
  97.            <dc:creator>Mara De Martino</dc:creator><dc:creator>Jeffrey C. Rathmell</dc:creator><dc:creator>Lorenzo Galluzzi</dc:creator><dc:creator>Claire Vanpouille-Box</dc:creator>
  98.            <dc:identifier>doi:10.1038/s41577-024-01026-4</dc:identifier>
  99.            <dc:source>Nature Reviews Immunology, Published online: 2024-04-22; | doi:10.1038/s41577-024-01026-4</dc:source>
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  107.            <title><![CDATA[Neuronal TLR9 signalling crucial for memory formation]]></title>
  108.            <link>https://www.nature.com/articles/s41577-024-01034-4</link>
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  110.                <![CDATA[<p>Nature Reviews Immunology, Published online: 17 April 2024; <a href="https://www.nature.com/articles/s41577-024-01034-4">doi:10.1038/s41577-024-01034-4</a></p>Neuronal TLR9 signalling crucial for memory formation]]></content:encoded>
  111.            <dc:title><![CDATA[Neuronal TLR9 signalling crucial for memory formation]]></dc:title>
  112.            <dc:creator>Alexandra Flemming</dc:creator>
  113.            <dc:identifier>doi:10.1038/s41577-024-01034-4</dc:identifier>
  114.            <dc:source>Nature Reviews Immunology, Published online: 2024-04-17; | doi:10.1038/s41577-024-01034-4</dc:source>
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  122.            <title><![CDATA[Tumour cell consumption of taurine exhausts CD8<sup>+</sup> T cells]]></title>
  123.            <link>https://www.nature.com/articles/s41577-024-01032-6</link>
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  125.                <![CDATA[<p>Nature Reviews Immunology, Published online: 17 April 2024; <a href="https://www.nature.com/articles/s41577-024-01032-6">doi:10.1038/s41577-024-01032-6</a></p>Tumour cell consumption of taurine exhausts CD8<sup>+</sup> T cells]]></content:encoded>
  126.            <dc:title><![CDATA[Tumour cell consumption of taurine exhausts CD8<sup>+</sup> T cells]]></dc:title>
  127.            <dc:creator>Alexandra Flemming</dc:creator>
  128.            <dc:identifier>doi:10.1038/s41577-024-01032-6</dc:identifier>
  129.            <dc:source>Nature Reviews Immunology, Published online: 2024-04-17; | doi:10.1038/s41577-024-01032-6</dc:source>
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  137.            <title><![CDATA[Bacterial serotonin induces T<sub>reg</sub> cells in neonates]]></title>
  138.            <link>https://www.nature.com/articles/s41577-024-01033-5</link>
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  140.                <![CDATA[<p>Nature Reviews Immunology, Published online: 17 April 2024; <a href="https://www.nature.com/articles/s41577-024-01033-5">doi:10.1038/s41577-024-01033-5</a></p>Bacterial serotonin induces T<sub>reg</sub> cells in neonates]]></content:encoded>
  141.            <dc:title><![CDATA[Bacterial serotonin induces T<sub>reg</sub> cells in neonates]]></dc:title>
  142.            <dc:creator>Alexandra Flemming</dc:creator>
  143.            <dc:identifier>doi:10.1038/s41577-024-01033-5</dc:identifier>
  144.            <dc:source>Nature Reviews Immunology, Published online: 2024-04-17; | doi:10.1038/s41577-024-01033-5</dc:source>
  145.            <dc:date>2024-04-17</dc:date>
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  152.            <title><![CDATA[Rejuvenating an old immune system]]></title>
  153.            <link>https://www.nature.com/articles/s41577-024-01031-7</link>
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  155.                <![CDATA[<p>Nature Reviews Immunology, Published online: 09 April 2024; <a href="https://www.nature.com/articles/s41577-024-01031-7">doi:10.1038/s41577-024-01031-7</a></p>Depletion of myeloid-biased haematopoietic stem cells can mitigate age-associated immune dysfunction.]]></content:encoded>
  156.            <dc:title><![CDATA[Rejuvenating an old immune system]]></dc:title>
  157.            <dc:creator>Yvonne Bordon</dc:creator>
  158.            <dc:identifier>doi:10.1038/s41577-024-01031-7</dc:identifier>
  159.            <dc:source>Nature Reviews Immunology, Published online: 2024-04-09; | doi:10.1038/s41577-024-01031-7</dc:source>
  160.            <dc:date>2024-04-09</dc:date>
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