{"podcast":{"title":"632nm","slug":"632nm-6933948","podcast_index_feed_id":6933948,"rss_url":"https://feeds.transistor.fm/632nm","website_url":"https://632nm.com","image_url":"https://img.transistorcdn.com/nEXmi7A5la3DaXHPICs5XCc9TDmVySH0knUXP1bJgUk/rs:fill:0:0:1/w:1400/h:1400/q:60/mb:500000/aHR0cHM6Ly9pbWct/dXBsb2FkLXByb2R1/Y3Rpb24udHJhbnNp/c3Rvci5mbS8yOGMz/YTliMThlODIyYzYw/OGVjOWNiZWNlNmQ1/ZmQ0Ni5qcGc.jpg","author":"Misha Shalaginov, Michael Dubrovsky, Xinghui Yin","episode_count":58,"summary":"Technical interviews with the greatest scientists in the world.","last_synced_at":"2026-09-09T06:19:48.668776+00:00","page_url":"https://stenobird.com/podcast/632nm-6933948"},"episode":{"title":"Diffraction Limit, Microscopy, and Cell Biology | Eric Betzig on Super-Resolution Microscopy","slug":"diffraction-limit-microscopy-and-cell-biology-eric-betzig-on-super-resolution-microscopy","published_at":"2026-09-08T15:00:00+00:00","page_url":"https://stenobird.com/podcast/632nm-6933948/diffraction-limit-microscopy-and-cell-biology-eric-betzig-on-super-resolution-microscopy","show_page_url":"https://stenobird.com/podcast/632nm-6933948","url":"https://share.transistor.fm/s/46173a34","audio_url":"https://media.transistor.fm/46173a34/9522f614.mp3","summary":"What does a cell actually look like when you can see its molecules in action? In this episode, we speak with Nobel Prize-winning scientist Eric Betzig, whose pioneering work in super-resolution microscopy transformed our ability to see inside living cells. Betzig recounts his decades-long effort to overcome the diffraction limit of light microscopy, from his early work in near-field microscopy to the development of PALM and his eventual focus on watching biological processes unfold in living cells. We explore why the familiar picture of the cell in biology textbooks may be fundamentally misleading. Much of cell biology has been built by combining observations from biochemistry, molecular biology, and structural biology to construct models of how molecules interact. But, as Betzig explains, we have historically had very little direct information about the spatial organization and dynamics of these molecules inside a living cell. When he and his colleagues used single-molecule microscopy to watch transcription factors in real time, they found that proteins believed to form stable complexes were instead binding to DNA for only a few seconds, forcing them to reconsider how transcription actually works. We discuss the diffraction limit, why conventional light microscopes cannot resolve structures at the scale of individual proteins, and how super-resolution microscopy made it possible to study molecular processes with unprecedented spatial and temporal resolution. Betzig also explains why imaging living cells can reveal dynamics that are invisible in fixed samples. Betzig describes his ambitious Cell Observatory project, which combines automated microscopy, large-scale biological experiments, and artificial intelligence to study the enormous complexity of living cells. Rath…","meta_description":"What does a cell actually look like when you can see its molecules in action? In this episode, we speak with Nobel Prize-winning scientist Eric Betzig, wh…","key_points":[],"chapters":[],"topics":[],"duration_seconds":9630,"processing_state":"not_requested","actions":[{"name":"request_transcript","method":"POST","url":"https://stenobird.com/v1/public/podcasts/632nm-6933948/episodes/diffraction-limit-microscopy-and-cell-biology-eric-betzig-on-super-resolution-microscopy/transcription-requests","description":"Idempotently request low-priority transcript generation for this episode."},{"name":"read_markdown","method":"GET","url":"https://stenobird.com/podcast/632nm-6933948/diffraction-limit-microscopy-and-cell-biology-eric-betzig-on-super-resolution-microscopy.md","description":"Read the agent-friendly Markdown representation of this episode resource."}]}}