PLOS Biology<p><a href="https://fediscience.org/tags/Chlamydia" class="mention hashtag" rel="nofollow noopener noreferrer" target="_blank">#<span>Chlamydia</span></a> cause millions of infections annually, but their obligate intracellular lifestyle makes treatment difficult. This study develops a platform that identified >60 new <a href="https://fediscience.org/tags/antichlamydial" class="mention hashtag" rel="nofollow noopener noreferrer" target="_blank">#<span>antichlamydial</span></a> compounds, including one that inhibits bacterial <a href="https://fediscience.org/tags/FattyAcid" class="mention hashtag" rel="nofollow noopener noreferrer" target="_blank">#<span>FattyAcid</span></a> synthesis <span class="h-card" translate="no"><a href="https://fediscience.org/@PLOSBiology" class="u-url mention" rel="nofollow noopener noreferrer" target="_blank">@<span>PLOSBiology</span></a></span> <a href="https://plos.io/4jycCuT" rel="nofollow noopener noreferrer" translate="no" target="_blank"><span class="invisible">https://</span><span class="">plos.io/4jycCuT</span><span class="invisible"></span></a></p>