{"version":"1.0","provider_name":"Inside Salk | Fall 2026","provider_url":"https:\/\/inside.salk.edu\/fall-2026","author_name":"Salk Institute","author_url":"https:\/\/inside.salk.edu\/fall-2026\/author\/salk\/","title":"Visualizing cellular life with greater precision - Inside Salk | Fall 2026","type":"rich","width":600,"height":338,"html":"<blockquote class=\"wp-embedded-content\" data-secret=\"oG0dKDxIIM\"><a href=\"https:\/\/inside.salk.edu\/fall-2026\/visualizing-cellular-life-with-greater-precision\/\">Visualizing cellular life with greater precision<\/a><\/blockquote><iframe sandbox=\"allow-scripts\" security=\"restricted\" src=\"https:\/\/inside.salk.edu\/fall-2026\/visualizing-cellular-life-with-greater-precision\/embed\/#?secret=oG0dKDxIIM\" width=\"600\" height=\"338\" title=\"&#8220;Visualizing cellular life with greater precision&#8221; &#8212; Inside Salk | Fall 2026\" data-secret=\"oG0dKDxIIM\" frameborder=\"0\" marginwidth=\"0\" marginheight=\"0\" scrolling=\"no\" class=\"wp-embedded-content\"><\/iframe><script>\n\/*! This file is auto-generated *\/\n!function(d,l){\"use strict\";l.querySelector&&d.addEventListener&&\"undefined\"!=typeof URL&&(d.wp=d.wp||{},d.wp.receiveEmbedMessage||(d.wp.receiveEmbedMessage=function(e){var t=e.data;if((t||t.secret||t.message||t.value)&&!\/[^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<o.length;i++)o[i].style.display=\"none\";for(i=0;i<a.length;i++)s=a[i],e.source===s.contentWindow&&(s.removeAttribute(\"style\"),\"height\"===t.message?(1e3<(r=parseInt(t.value,10))?r=1e3:~~r<200&&(r=200),s.height=r):\"link\"===t.message&&(r=new URL(s.getAttribute(\"src\")),n=new URL(t.value),c.test(n.protocol))&&n.host===r.host&&l.activeElement===s&&(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<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);\n\/\/# sourceURL=https:\/\/inside.salk.edu\/fall-2026\/wp-includes\/js\/wp-embed.min.js\n<\/script>\n","thumbnail_url":"https:\/\/inside.salk.edu\/fall-2026\/wp-content\/uploads\/sites\/6\/2026\/08\/2026-inside-salk-fall-discoveries-biochemistry.jpg","thumbnail_width":900,"thumbnail_height":450,"description":"Fluorescent proteins have revolutionized science, enabling researchers to tag and visualize individual molecules in living cells, tissues, and animals. Using these tools, researchers have watched viruses infect cells in real time, observed cellular waste collection, and tracked the signaling that spurs tumor growth. Axel Nimmerjahn, PhD, worked with collaborators at Albert Einstein College of Medicine [&hellip;]"}