<?xml version="1.0"?>
<oembed><version>1.0</version><provider_name>The Vermulst Lab</provider_name><provider_url>https://gero.usc.edu/labs/vermulstlab</provider_url><author_name>admin</author_name><author_url>https://gero.usc.edu/labs/vermulstlab/author/admin/</author_url><title>Mitochondrial protein heterogeneity - The Vermulst Lab</title><type>rich</type><width>600</width><height>338</height><html>&lt;blockquote class="wp-embedded-content" data-secret="kxgefXiKD2"&gt;&lt;a href="https://gero.usc.edu/labs/vermulstlab/mitochondrial-protein-heterogeneity/"&gt;Mitochondrial protein heterogeneity&lt;/a&gt;&lt;/blockquote&gt;&lt;iframe sandbox="allow-scripts" security="restricted" src="https://gero.usc.edu/labs/vermulstlab/mitochondrial-protein-heterogeneity/embed/#?secret=kxgefXiKD2" width="600" height="338" title="&#x201C;Mitochondrial protein heterogeneity&#x201D; &#x2014; The Vermulst Lab" data-secret="kxgefXiKD2" frameborder="0" marginwidth="0" marginheight="0" scrolling="no" class="wp-embedded-content"&gt;&lt;/iframe&gt;&lt;script type="text/javascript"&gt;
/* &lt;![CDATA[ */
/*! This file is auto-generated */
!function(d,l){"use strict";l.querySelector&amp;&amp;d.addEventListener&amp;&amp;"undefined"!=typeof URL&amp;&amp;(d.wp=d.wp||{},d.wp.receiveEmbedMessage||(d.wp.receiveEmbedMessage=function(e){var t=e.data;if((t||t.secret||t.message||t.value)&amp;&amp;!/[^a-zA-Z0-9]/.test(t.secret)){for(var s,r,n,a=l.querySelectorAll('iframe[data-secret="'+t.secret+'"]'),o=l.querySelectorAll('blockquote[data-secret="'+t.secret+'"]'),c=new RegExp("^https?:$","i"),i=0;i&lt;o.length;i++)o[i].style.display="none";for(i=0;i&lt;a.length;i++)s=a[i],e.source===s.contentWindow&amp;&amp;(s.removeAttribute("style"),"height"===t.message?(1e3&lt;(r=parseInt(t.value,10))?r=1e3:~~r&lt;200&amp;&amp;(r=200),s.height=r):"link"===t.message&amp;&amp;(r=new URL(s.getAttribute("src")),n=new URL(t.value),c.test(n.protocol))&amp;&amp;n.host===r.host&amp;&amp;l.activeElement===s&amp;&amp;(d.top.location.href=t.value))}},d.addEventListener("message",d.wp.receiveEmbedMessage,!1),l.addEventListener("DOMContentLoaded",function(){for(var e,t,s=l.querySelectorAll("iframe.wp-embedded-content"),r=0;r&lt;s.length;r++)(t=(e=s[r]).getAttribute("data-secret"))||(t=Math.random().toString(36).substring(2,12),e.src+="#?secret="+t,e.setAttribute("data-secret",t)),e.contentWindow.postMessage({message:"ready",secret:t},"*")},!1)))}(window,document);
//# sourceURL=https://gero.usc.edu/labs/vermulstlab/wp-includes/js/wp-embed.min.js
/* ]]&gt; */
&lt;/script&gt;
</html><description>[vc_row][vc_column][vc_single_image image=&#x201D;144&#x2033; img_size=&#x201D;1800X450&#x2033; css=&#x201D;.vc_custom_1562099363215{padding-bottom: 15px !important;}&#x201D;][vc_column_text]Our cells are addicted to energy. Whether it is protein synthesis, DNA replication, autophagy or signal transduction, almost every biological process is driven by the consumption of energy. To meet this demand, our cells contain hundreds, or even thousands of mitochondria that fuel our cells with ATP. Since every compartment [&hellip;]</description></oembed>
