Synthetic biology / en Researchers develop strategy to precisely target subtypes of key protein /news/researchers-develop-strategy-precisely-target-subtypes-key-protein <span class="field field--name-title field--type-string field--label-hidden"><h1>Researchers develop strategy to precisely target subtypes of key protein</h1> </span> <span class="field field--name-uid field--type-entity-reference field--label-hidden"> <span>By Alex Viveros</span> </span> <span class="field field--name-created field--type-created field--label-hidden"><time datetime="2022-09-26T15:10:06-04:00" class="datetime">September 26, 2022</time> </span> <div class="hero-section container"> <div class="hero-section__row row"> <div class="hero-section__content hero-section__content_left col-6"> <div class="hero-section__breadcrumbs"> <div class="block block-layout-builder block-extra-field-blocknodenewsbreadcrumbs"> <nav class="breadcrumb" role="navigation" aria-labelledby="system-breadcrumb"> <h2 id="system-breadcrumb" class="visually-hidden">Breadcrumb</h2> <ol> <li> <a href="/">Home</a> </li> <li> <a href="/news">News</a> </li> </ol> </nav> </div> </div> <div class="hero-section__title"> <div class="block block-layout-builder block-field-blocknodenewstitle"> <span class="field field--name-title field--type-string field--label-hidden"><h1>Researchers develop strategy to precisely target subtypes of key protein</h1> </span> </div> </div> <div class="hero-section__description"> <div class="block block-layout-builder block-field-blocknodenewsbody"> <div class="clearfix text-formatted field field--name-body field--type-text-with-summary field--label-hidden field__item"><div class="summary-only"> <p>New method finds compounds that bind and inhibit individual members of a family of key regulatory proteins, called cyclophilins, that have been difficult to target selectively.</p> </div> </div> </div> </div> <div class="hero-section__author"> <div class="block block-layout-builder block-extra-field-blocknodenewsextra-field-author-custom"> By Alex Viveros </div> </div> <div class="hero-section__date"> <div class="block block-layout-builder block-field-blocknodenewscreated"> <span class="field field--name-created field--type-created field--label-hidden"><time datetime="2022-09-26T15:10:06-04:00" class="datetime">September 26, 2022</time> </span> </div> </div> </div> <div class="hero-section__right col-6"> <div class="hero-section__image"> <div class="block block-layout-builder block-field-blocknodenewsfield-image"> <div class="field field--name-field-image field--type-entity-reference field--label-hidden field__item"> <article class="media media--type-image media--view-mode-multiple-content-types-header"> <div class="field field--name-field-media-image field--type-image field--label-hidden field__item"> <picture> <source srcset="/files/styles/multiple_ct_header_desktop_xl/public/news/images/2022/b52_image.png?h=d3e04ee7&amp;itok=XqjXhip2 1x" media="all and (min-width: 1921px)" type="image/png" width="754" height="503"> <source srcset="/files/styles/multiple_ct_header_desktop_xl/public/news/images/2022/b52_image.png?h=d3e04ee7&amp;itok=XqjXhip2 1x" media="all and (min-width: 1601px) and (max-width: 1920px)" type="image/png" width="754" height="503"> <source srcset="/files/styles/multiple_ct_header_desktop/public/news/images/2022/b52_image.png?h=d3e04ee7&amp;itok=xsg8a2qA 1x" media="all and (min-width: 1340px) and (max-width: 1600px)" type="image/png" width="736" height="520"> <source srcset="/files/styles/multiple_ct_header_laptop/public/news/images/2022/b52_image.png?h=d3e04ee7&amp;itok=rHsuztRG 1x" media="all and (min-width: 800px) and (max-width: 1339px)" type="image/png" width="641" height="451"> <source srcset="/files/styles/multiple_ct_header_tablet/public/news/images/2022/b52_image.png?h=d3e04ee7&amp;itok=tboOncGB 1x" media="all and (min-width: 540px) and (max-width: 799px)" type="image/png" width="706" height="417"> <source srcset="/files/styles/multiple_ct_header_phone/public/news/images/2022/b52_image.png?h=d3e04ee7&amp;itok=-LziFohy 1x" media="all and (max-width: 539px)" type="image/png" width="499" height="294"> <img loading="eager" src="/files/styles/multiple_ct_header_phone/public/news/images/2022/b52_image.png?h=d3e04ee7&amp;itok=-LziFohy" width="499" height="294" alt="X-ray co-crystal structure of B52 compound (cyan) binding and inhibiting Cyclophilin D protein" title="X-ray co-crystal structure of B52 compound (cyan) binding and inhibiting Cyclophilin D protein" typeof="foaf:Image"> </picture> </div> <div class="media-caption"> <div class="media-caption__credit"> Credit: Aziz Rangwala </div> <div class="media-caption__description"> X-ray co-crystal structure of B52 compound (cyan) binding and inhibiting Cyclophilin D protein </div> </div> </article> </div> </div> </div> </div> </div> </div> <div class="content-section content-section_with-sidebars container"> <div class="row"> <div class="content-section__left col-2"> <div class="block block-better-social-sharing-buttons block-social-sharing-buttons-block"> <div style="display: none"><link rel="preload" href="/modules/contrib/better_social_sharing_buttons/assets/dist/sprites/social-icons--no-color.svg" as="image" type="image/svg+xml" crossorigin="anonymous"></div> <div class="social-sharing-buttons"> <a href="https://www.facebook.com/sharer/sharer.php?u=/taxonomy/term/611/feed&amp;title=" target="_blank" title="Share to Facebook" aria-label="Share to Facebook" class="social-sharing-buttons__button share-facebook" rel="noopener"> <svg width="32px" height="32px" style="border-radius:100%;"> <use href="/modules/contrib/better_social_sharing_buttons/assets/dist/sprites/social-icons--no-color.svg#facebook" /> </svg> </a> <a href="https://twitter.com/intent/tweet?text=+/taxonomy/term/611/feed" target="_blank" title="Share to X" aria-label="Share to X" class="social-sharing-buttons__button share-x" rel="noopener"> <svg width="32px" height="32px" style="border-radius:100%;"> <use href="/modules/contrib/better_social_sharing_buttons/assets/dist/sprites/social-icons--no-color.svg#x" /> </svg> </a> <a href="mailto:?subject=&amp;body=/taxonomy/term/611/feed" title="Share to Email" aria-label="Share to Email" class="social-sharing-buttons__button share-email" target="_blank" rel="noopener"> <svg width="32px" height="32px" style="border-radius:100%;"> <use href="/modules/contrib/better_social_sharing_buttons/assets/dist/sprites/social-icons--no-color.svg#email" /> </svg> </a> </div> </div> </div> <div class="content-section__main col-8"> <div class="block block-layout-builder block-field-blocknodenewsbody"> <div class="clearfix text-formatted field field--name-body field--type-text-with-summary field--label-hidden field__item"><p>Cyclosporine is one of the most common and effective immunosuppressant drugs used to treat chronic diseases like arthritis and psoriasis, but it comes with a risk of serious side effects. Scientists think that may be because the drug broadly targets cyclophilins, a family of 17 regulatory proteins that play different roles in promoting cellular health. Although each individual cyclophilin subtype has a unique role, many current immunosuppressive drugs target the entire family, meaning that important unknown pathways may be accidentally turned off or otherwise altered.</p> <p>The problem is complicated by the fact that the active site where molecules bind is almost identical across all 17 cyclophilins, making it tough for drugmakers to target specific subtypes. In a <a href="https://www.nature.com/articles/s41589-022-01116-1" target="_blank">paper published today in <em>Nature Chemical Biology</em></a>, scientists in the lab of ӳý Core Member <a href="/node/8820">David Liu</a>, who is also the director of the <a href="/node/115321">Merkin Institute of Transformative Technologies in Healthcare at ӳý</a>, in collaboration with the labs of Markus Seeliger at SUNY Stony Brook and Institute Member <a href="/node/7027">Vamsi Mootha</a> at Massachusetts General Hospital have proposed a new solution.&nbsp;</p> <p>Rather than targeting the active site of cyclophilin proteins, researchers in Liu’s lab describe a process that finds compounds that bind to the “exo site,” a small pocket next to the active site that varies in size and shape across different cyclophilins. Using isolated proteins in a test tube, the team discovered several compounds that exclusively bind and inhibit Cyclophilin D (CypD), a protein involved in the opening and closing of mitochondrial pores. They also applied similar principles to discover unique, selective inhibitors for Cyclophilin E (CypE). The authors say that their study lays the groundwork for scientists to develop additional subtype-selective cyclophilin inhibitors, some of which may be useful as tools for biology or as leads for therapeutic development.</p> <p>“It’s a new binding mode that takes advantage of a pocket that people haven’t fully explored yet,” lead author Alex Peterson, now a postdoctoral fellow at the Scripps Research Institute, who led the project as a graduate student in Liu’s lab, said. “It’s kind of a blueprint for how people can design selective cyclophilin inhibitors going forward.”</p> <h3>Leveraging new, and old, technologies</h3> <p>CypD regulates the mitochondrial permeability transition pore (mPTP), small pores located on the inner surface of mitochondria (famously known as the powerhouse of the cell). When CypD detects oxidative stress or high calcium levels, it rushes to open the mPTP, allowing water and other ions to rush in and out of the mitochondria.</p> <p>This opening of the mitochondrial floodgates can become a problem with diseases like ischemia reperfusion injury, diabetes, neurodegenerative disorders, liver diseases, and more. Since these conditions can cause abnormally high levels of oxidative stress, CypD holds the mitochondrial pores open for longer than usual, causing mitochondrial dysfunction, rupture, and cell death. It’s been thought that drugs that slow down and inhibit CypD’s reaction to high oxidative stress might be used to treat a host of diseases.</p> <p>To track down compounds that exclusively bind to CypD, the team turned to DNA-encoded small-molecule libraries, a technology developed over twenty years ago as one of the first project’s in Liu’s then-new lab. Researchers can use the libraries, which are filled with hundreds of thousands of synthetic compounds attached to unique DNA barcodes, to scan for molecules that bind to desired proteins. By mixing isolated CypD proteins and a collection of 256,000 unique DNA-encoded compounds in a test tube, the team identified hundreds of promising compounds.&nbsp;</p> <p>Most of the initial compounds still bound in and around the active site, inhibiting multiple cyclophilin subtypes, so the team gradually made small chemical changes to their compounds to make them unique to CypD. Once they discovered that the exo site was the key to developing subtype specific inhibitors, they were able to design a pair of compounds that potently inhibit CypD while minimally affecting other cyclophilins. X-ray co-crystal structures of the CypD protein and the inhibitors during development gave the team a behind-the-scenes look at the precise location where their molecules were binding.</p> <p>The researchers then treated isolated mitochondria with their two leading compounds and observed that they were effective in slowing down CypD’s opening of mitochondrial pores. The mirror images of their compounds, which do not inhibit CypD, did not show activity in mitochondria. To prove that their success wasn’t an isolated incident, they repeated the strategy again for CypE, a cyclophilin responsible for regulating mRNA processing. Once again, they developed a compound that exclusively targeted it and left the remaining 16 cyclophilins unphased.</p> <p>The team hopes their findings can ultimately help chemical biologists and drugmakers build better and more specific cyclophilin targeting drugs. They even gave future scientists a leg up — because the CypD-targeting compounds struggle to enter human cells on their own, the team tweaked them by adding ester derivatives that effectively bypass the plasma membrane and deliver into mitochondria.</p> <p>“Our team’s work eventually allowed us to conquer this long standing problem: how do you selectively inhibit just one cyclophilin subtype out of 17?” said Liu, who is also a Howard Hughes Medical Institute investigator. “In the future, molecules that come from using our strategy will, I hope, prove to be useful both for basic science and potentially for therapeutics.</p> </div> </div> <div class="block block-layout-builder block-field-blocknodenewsfield-news-pappers"> <h2>Paper(s) cited</h2> <div class="clearfix text-formatted field field--name-field-news-pappers field--type-text-long field--label-hidden field__item"><p>Peterson, A&nbsp;et al. <a href="https://www.nature.com/articles/s41589-022-01116-1" target="_blank">Discovery and molecular basis of subtype-selective cyclophilin inhibitors</a>. <em>Nature Chemical Biology</em>. September 26, 2022. DOI:10.1038/s41589-022-01116-1</p> </div> </div> <div class="block-node-broad-tags block block-layout-builder block-field-blocknodenewsfield-broad-tags"> <div class="block-node-broad-tags__row"> <div class="block-node-broad-tags__title">Tags:</div> <div class="field field--name-field-broad-tags field--type-entity-reference field--label-hidden field__items"> <div class="field__item"><a href="/broad-tags/chemical-biology-and-therapeutics-science" hreflang="en">Chemical Biology and Therapeutics Science Program</a></div> <div class="field__item"><a href="/broad-tags/immunological-disease" hreflang="en">Immunological Disease</a></div> <div class="field__item"><a href="/broad-tags/high-throughput-screening" hreflang="en">High-Throughput Screening</a></div> <div class="field__item"><a href="/broad-tags/synthetic-biology" hreflang="en">Synthetic biology</a></div> <div class="field__item"><a href="/broad-tags/david-liu" hreflang="en">David Liu</a></div> <div class="field__item"><a href="/broad-tags/news-and-media" hreflang="en">News and Media</a></div> </div> </div> </div> </div> <div class="content-section__right col-2"> <div class="block block-ctools block-entity-viewnode"> <article about="/news/researchers-develop-strategy-precisely-target-subtypes-key-protein" class="node node--type-news node--view-mode-sidebar"> <div class="node__content"> <div class="sidebar-group"> <div class="sidebar-group__content"> <div class="block block-layout-builder block-field-blocknodenewsfield-news-extra-info"> <div class="clearfix text-formatted field field--name-field-news-extra-info field--type-text-long field--label-hidden field__item"><h2>Related People</h2> <p><img alt="David R. Liu" src="/files/styles/ct_biosketch_default_desktop/public/DavidLiu_CaseyAtkins_1-reframe.png?itok=FzMptq0L" style="width: 212px; height: 162px;"></p> <p><a href="/node/8820">David Liu</a></p> <p><img alt="Vamsi Mootha" src="/files/styles/biosketch__413x315_/public/bios/photos/Mootha%20Headshot.jpg?itok=cbV2gN-F" style="width: 212px; height: 162px;"></p> <p><a href="/node/7027">Vamsi Mootha</a></p> </div> </div> </div> </div> </div> </article> </div> </div> </div> </div> Mon, 26 Sep 2022 19:10:06 +0000 aviveros@broadinstitute.org 1202331 at Researchers reveal recipe for engineering ribosomes /news/researchers-reveal-recipe-engineering-ribosomes <span class="field field--name-title field--type-string field--label-hidden"><h1>Researchers develop strategy to precisely target subtypes of key protein</h1> </span> <span class="field field--name-uid field--type-entity-reference field--label-hidden"> <span>By Alex Viveros</span> </span> <span class="field field--name-created field--type-created field--label-hidden"><time datetime="2022-09-26T15:10:06-04:00" class="datetime">September 26, 2022</time> </span> <div class="hero-section container"> <div class="hero-section__row row"> <div class="hero-section__content hero-section__content_left col-6"> <div class="hero-section__breadcrumbs"> <div class="block block-layout-builder block-extra-field-blocknodenewsbreadcrumbs"> <nav class="breadcrumb" role="navigation" aria-labelledby="system-breadcrumb"> <h2 id="system-breadcrumb" class="visually-hidden">Breadcrumb</h2> <ol> <li> <a href="/">Home</a> </li> <li> <a href="/news">News</a> </li> </ol> </nav> </div> </div> <div class="hero-section__title"> <div class="block block-layout-builder block-field-blocknodenewstitle"> <span class="field field--name-title field--type-string field--label-hidden"><h1>Researchers develop strategy to precisely target subtypes of key protein</h1> </span> </div> </div> <div class="hero-section__description"> <div class="block block-layout-builder block-field-blocknodenewsbody"> <div class="clearfix text-formatted field field--name-body field--type-text-with-summary field--label-hidden field__item"><div class="summary-only"> <p>New method finds compounds that bind and inhibit individual members of a family of key regulatory proteins, called cyclophilins, that have been difficult to target selectively.</p> </div> </div> </div> </div> <div class="hero-section__author"> <div class="block block-layout-builder block-extra-field-blocknodenewsextra-field-author-custom"> By Alex Viveros </div> </div> <div class="hero-section__date"> <div class="block block-layout-builder block-field-blocknodenewscreated"> <span class="field field--name-created field--type-created field--label-hidden"><time datetime="2022-09-26T15:10:06-04:00" class="datetime">September 26, 2022</time> </span> </div> </div> </div> <div class="hero-section__right col-6"> <div class="hero-section__image"> <div class="block block-layout-builder block-field-blocknodenewsfield-image"> <div class="field field--name-field-image field--type-entity-reference field--label-hidden field__item"> <article class="media media--type-image media--view-mode-multiple-content-types-header"> <div class="field field--name-field-media-image field--type-image field--label-hidden field__item"> <picture> <source srcset="/files/styles/multiple_ct_header_desktop_xl/public/news/images/2022/b52_image.png?h=d3e04ee7&amp;itok=XqjXhip2 1x" media="all and (min-width: 1921px)" type="image/png" width="754" height="503"> <source srcset="/files/styles/multiple_ct_header_desktop_xl/public/news/images/2022/b52_image.png?h=d3e04ee7&amp;itok=XqjXhip2 1x" media="all and (min-width: 1601px) and (max-width: 1920px)" type="image/png" width="754" height="503"> <source srcset="/files/styles/multiple_ct_header_desktop/public/news/images/2022/b52_image.png?h=d3e04ee7&amp;itok=xsg8a2qA 1x" media="all and (min-width: 1340px) and (max-width: 1600px)" type="image/png" width="736" height="520"> <source srcset="/files/styles/multiple_ct_header_laptop/public/news/images/2022/b52_image.png?h=d3e04ee7&amp;itok=rHsuztRG 1x" media="all and (min-width: 800px) and (max-width: 1339px)" type="image/png" width="641" height="451"> <source srcset="/files/styles/multiple_ct_header_tablet/public/news/images/2022/b52_image.png?h=d3e04ee7&amp;itok=tboOncGB 1x" media="all and (min-width: 540px) and (max-width: 799px)" type="image/png" width="706" height="417"> <source srcset="/files/styles/multiple_ct_header_phone/public/news/images/2022/b52_image.png?h=d3e04ee7&amp;itok=-LziFohy 1x" media="all and (max-width: 539px)" type="image/png" width="499" height="294"> <img loading="eager" src="/files/styles/multiple_ct_header_phone/public/news/images/2022/b52_image.png?h=d3e04ee7&amp;itok=-LziFohy" width="499" height="294" alt="X-ray co-crystal structure of B52 compound (cyan) binding and inhibiting Cyclophilin D protein" title="X-ray co-crystal structure of B52 compound (cyan) binding and inhibiting Cyclophilin D protein" typeof="foaf:Image"> </picture> </div> <div class="media-caption"> <div class="media-caption__credit"> Credit: Aziz Rangwala </div> <div class="media-caption__description"> X-ray co-crystal structure of B52 compound (cyan) binding and inhibiting Cyclophilin D protein </div> </div> </article> </div> </div> </div> </div> </div> </div> <div class="content-section content-section_with-sidebars container"> <div class="row"> <div class="content-section__left col-2"> <div class="block block-better-social-sharing-buttons block-social-sharing-buttons-block"> <div style="display: none"><link rel="preload" href="/modules/contrib/better_social_sharing_buttons/assets/dist/sprites/social-icons--no-color.svg" as="image" type="image/svg+xml" crossorigin="anonymous"></div> <div class="social-sharing-buttons"> <a href="https://www.facebook.com/sharer/sharer.php?u=/taxonomy/term/611/feed&amp;title=" target="_blank" title="Share to Facebook" aria-label="Share to Facebook" class="social-sharing-buttons__button share-facebook" rel="noopener"> <svg width="32px" height="32px" style="border-radius:100%;"> <use href="/modules/contrib/better_social_sharing_buttons/assets/dist/sprites/social-icons--no-color.svg#facebook" /> </svg> </a> <a href="https://twitter.com/intent/tweet?text=+/taxonomy/term/611/feed" target="_blank" title="Share to X" aria-label="Share to X" class="social-sharing-buttons__button share-x" rel="noopener"> <svg width="32px" height="32px" style="border-radius:100%;"> <use href="/modules/contrib/better_social_sharing_buttons/assets/dist/sprites/social-icons--no-color.svg#x" /> </svg> </a> <a href="mailto:?subject=&amp;body=/taxonomy/term/611/feed" title="Share to Email" aria-label="Share to Email" class="social-sharing-buttons__button share-email" target="_blank" rel="noopener"> <svg width="32px" height="32px" style="border-radius:100%;"> <use href="/modules/contrib/better_social_sharing_buttons/assets/dist/sprites/social-icons--no-color.svg#email" /> </svg> </a> </div> </div> </div> <div class="content-section__main col-8"> <div class="block block-layout-builder block-field-blocknodenewsbody"> <div class="clearfix text-formatted field field--name-body field--type-text-with-summary field--label-hidden field__item"><p>Cyclosporine is one of the most common and effective immunosuppressant drugs used to treat chronic diseases like arthritis and psoriasis, but it comes with a risk of serious side effects. Scientists think that may be because the drug broadly targets cyclophilins, a family of 17 regulatory proteins that play different roles in promoting cellular health. Although each individual cyclophilin subtype has a unique role, many current immunosuppressive drugs target the entire family, meaning that important unknown pathways may be accidentally turned off or otherwise altered.</p> <p>The problem is complicated by the fact that the active site where molecules bind is almost identical across all 17 cyclophilins, making it tough for drugmakers to target specific subtypes. In a <a href="https://www.nature.com/articles/s41589-022-01116-1" target="_blank">paper published today in <em>Nature Chemical Biology</em></a>, scientists in the lab of ӳý Core Member <a href="/node/8820">David Liu</a>, who is also the director of the <a href="/node/115321">Merkin Institute of Transformative Technologies in Healthcare at ӳý</a>, in collaboration with the labs of Markus Seeliger at SUNY Stony Brook and Institute Member <a href="/node/7027">Vamsi Mootha</a> at Massachusetts General Hospital have proposed a new solution.&nbsp;</p> <p>Rather than targeting the active site of cyclophilin proteins, researchers in Liu’s lab describe a process that finds compounds that bind to the “exo site,” a small pocket next to the active site that varies in size and shape across different cyclophilins. Using isolated proteins in a test tube, the team discovered several compounds that exclusively bind and inhibit Cyclophilin D (CypD), a protein involved in the opening and closing of mitochondrial pores. They also applied similar principles to discover unique, selective inhibitors for Cyclophilin E (CypE). The authors say that their study lays the groundwork for scientists to develop additional subtype-selective cyclophilin inhibitors, some of which may be useful as tools for biology or as leads for therapeutic development.</p> <p>“It’s a new binding mode that takes advantage of a pocket that people haven’t fully explored yet,” lead author Alex Peterson, now a postdoctoral fellow at the Scripps Research Institute, who led the project as a graduate student in Liu’s lab, said. “It’s kind of a blueprint for how people can design selective cyclophilin inhibitors going forward.”</p> <h3>Leveraging new, and old, technologies</h3> <p>CypD regulates the mitochondrial permeability transition pore (mPTP), small pores located on the inner surface of mitochondria (famously known as the powerhouse of the cell). When CypD detects oxidative stress or high calcium levels, it rushes to open the mPTP, allowing water and other ions to rush in and out of the mitochondria.</p> <p>This opening of the mitochondrial floodgates can become a problem with diseases like ischemia reperfusion injury, diabetes, neurodegenerative disorders, liver diseases, and more. Since these conditions can cause abnormally high levels of oxidative stress, CypD holds the mitochondrial pores open for longer than usual, causing mitochondrial dysfunction, rupture, and cell death. It’s been thought that drugs that slow down and inhibit CypD’s reaction to high oxidative stress might be used to treat a host of diseases.</p> <p>To track down compounds that exclusively bind to CypD, the team turned to DNA-encoded small-molecule libraries, a technology developed over twenty years ago as one of the first project’s in Liu’s then-new lab. Researchers can use the libraries, which are filled with hundreds of thousands of synthetic compounds attached to unique DNA barcodes, to scan for molecules that bind to desired proteins. By mixing isolated CypD proteins and a collection of 256,000 unique DNA-encoded compounds in a test tube, the team identified hundreds of promising compounds.&nbsp;</p> <p>Most of the initial compounds still bound in and around the active site, inhibiting multiple cyclophilin subtypes, so the team gradually made small chemical changes to their compounds to make them unique to CypD. Once they discovered that the exo site was the key to developing subtype specific inhibitors, they were able to design a pair of compounds that potently inhibit CypD while minimally affecting other cyclophilins. X-ray co-crystal structures of the CypD protein and the inhibitors during development gave the team a behind-the-scenes look at the precise location where their molecules were binding.</p> <p>The researchers then treated isolated mitochondria with their two leading compounds and observed that they were effective in slowing down CypD’s opening of mitochondrial pores. The mirror images of their compounds, which do not inhibit CypD, did not show activity in mitochondria. To prove that their success wasn’t an isolated incident, they repeated the strategy again for CypE, a cyclophilin responsible for regulating mRNA processing. Once again, they developed a compound that exclusively targeted it and left the remaining 16 cyclophilins unphased.</p> <p>The team hopes their findings can ultimately help chemical biologists and drugmakers build better and more specific cyclophilin targeting drugs. They even gave future scientists a leg up — because the CypD-targeting compounds struggle to enter human cells on their own, the team tweaked them by adding ester derivatives that effectively bypass the plasma membrane and deliver into mitochondria.</p> <p>“Our team’s work eventually allowed us to conquer this long standing problem: how do you selectively inhibit just one cyclophilin subtype out of 17?” said Liu, who is also a Howard Hughes Medical Institute investigator. “In the future, molecules that come from using our strategy will, I hope, prove to be useful both for basic science and potentially for therapeutics.</p> </div> </div> <div class="block block-layout-builder block-field-blocknodenewsfield-news-pappers"> <h2>Paper(s) cited</h2> <div class="clearfix text-formatted field field--name-field-news-pappers field--type-text-long field--label-hidden field__item"><p>Peterson, A&nbsp;et al. <a href="https://www.nature.com/articles/s41589-022-01116-1" target="_blank">Discovery and molecular basis of subtype-selective cyclophilin inhibitors</a>. <em>Nature Chemical Biology</em>. September 26, 2022. DOI:10.1038/s41589-022-01116-1</p> </div> </div> <div class="block-node-broad-tags block block-layout-builder block-field-blocknodenewsfield-broad-tags"> <div class="block-node-broad-tags__row"> <div class="block-node-broad-tags__title">Tags:</div> <div class="field field--name-field-broad-tags field--type-entity-reference field--label-hidden field__items"> <div class="field__item"><a href="/broad-tags/chemical-biology-and-therapeutics-science" hreflang="en">Chemical Biology and Therapeutics Science Program</a></div> <div class="field__item"><a href="/broad-tags/immunological-disease" hreflang="en">Immunological Disease</a></div> <div class="field__item"><a href="/broad-tags/high-throughput-screening" hreflang="en">High-Throughput Screening</a></div> <div class="field__item"><a href="/broad-tags/synthetic-biology" hreflang="en">Synthetic biology</a></div> <div class="field__item"><a href="/broad-tags/david-liu" hreflang="en">David Liu</a></div> <div class="field__item"><a href="/broad-tags/news-and-media" hreflang="en">News and Media</a></div> </div> </div> </div> </div> <div class="content-section__right col-2"> <div class="block block-ctools block-entity-viewnode"> <article about="/news/researchers-develop-strategy-precisely-target-subtypes-key-protein" class="node node--type-news node--view-mode-sidebar"> <div class="node__content"> <div class="sidebar-group"> <div class="sidebar-group__content"> <div class="block block-layout-builder block-field-blocknodenewsfield-news-extra-info"> <div class="clearfix text-formatted field field--name-field-news-extra-info field--type-text-long field--label-hidden field__item"><h2>Related People</h2> <p><img alt="David R. Liu" src="/files/styles/ct_biosketch_default_desktop/public/DavidLiu_CaseyAtkins_1-reframe.png?itok=FzMptq0L" style="width: 212px; height: 162px;"></p> <p><a href="/node/8820">David Liu</a></p> <p><img alt="Vamsi Mootha" src="/files/styles/biosketch__413x315_/public/bios/photos/Mootha%20Headshot.jpg?itok=cbV2gN-F" style="width: 212px; height: 162px;"></p> <p><a href="/node/7027">Vamsi Mootha</a></p> </div> </div> </div> </div> </div> </article> </div> </div> </div> </div> Tue, 26 Jan 2021 13:28:15 +0000 Corie Lok 742831 at