Daniel J. Cohen (Princeton)'s Avatar

Daniel J. Cohen (Princeton)

@djcohen.bsky.social

zookeeper to two tiny humans, professor, cell herder, bioelectrician, 'professional' storyteller, and waterbears just because. see us at: cohenlab.princeton.edu

409 Followers  |  591 Following  |  15 Posts  |  Joined: 10.11.2024  |  2.1184

Latest posts by djcohen.bsky.social on Bluesky

Not sure! Hereโ€™s an older paper from Yamada group at UC Davis on self-fusion: www.pnas.org/doi/abs/10.1...

01.10.2025 21:13 โ€” ๐Ÿ‘ 1    ๐Ÿ” 0    ๐Ÿ’ฌ 0    ๐Ÿ“Œ 0
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@manuelthery.bsky.social Oui! We sometimes see that in our bioelectric steering assays, but those self-contacts are transient and quickly result in membrane fusion. Watch the cell when it changes direction. This is electrotaxis โ€”the cell is programmed to go โ€˜leftโ€™/โ€˜rightโ€™/โ€˜leftโ€™ (F-actin)

01.10.2025 11:10 โ€” ๐Ÿ‘ 0    ๐Ÿ” 0    ๐Ÿ’ฌ 1    ๐Ÿ“Œ 0
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And self-adhesions are more than just prettyโ€”they slow migration down and stabilize cells; exactly what you might want at the interface between skin and an implant, for example. This type of adhesion might also help future neural implants, or help fuse living/non-living materials in future machines!

30.09.2025 14:29 โ€” ๐Ÿ‘ 3    ๐Ÿ” 1    ๐Ÿ’ฌ 1    ๐Ÿ“Œ 0
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Itโ€™s really stable tooโ€”we saw self-adhesions last at least 23 hrs in skin cells! This is important if we want to eventually use these to improve how percutaneous implants (dental screws, amputation hubs, drug catheters) adhere to skin over time to reduce infection and improve comfort.

30.09.2025 14:29 โ€” ๐Ÿ‘ 1    ๐Ÿ” 0    ๐Ÿ’ฌ 1    ๐Ÿ“Œ 0
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But it only worked about 2/3 of the time. So we made smaller and pointier archesโ€”about 3% the size of a human hair and got cells to adhere to themselves 93% of the time. Image shows cross-section of cell with tiny arch inside (green top; red hand-shakes; blue arch)!

30.09.2025 14:29 โ€” ๐Ÿ‘ 2    ๐Ÿ” 0    ๐Ÿ’ฌ 1    ๐Ÿ“Œ 0
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Since cells can deform around things, we wondered if a cell could wrap around a support and *hold hands with itself*โ€”just like hugging a small tree! Inspired by Lโ€™Arc de Triomphe, we 3D printed *nano* โ€˜archesโ€™ smaller than cells to make a cell wrap around and stick to itself (pink)! It worked!

30.09.2025 14:29 โ€” ๐Ÿ‘ 2    ๐Ÿ” 0    ๐Ÿ’ฌ 1    ๐Ÿ“Œ 0
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Cells can attach to the world in two waysโ€”with their โ€˜feetโ€™ (integrins; green) and with their โ€˜handsโ€™ (cell-cell adhesion proteins like cadherins; red), and their cadherins are *really* strong. Cell adhesion is *key* for attaching strongly to implants; could we take advantage of โ€˜handsโ€™ here?

30.09.2025 14:29 โ€” ๐Ÿ‘ 2    ๐Ÿ” 0    ๐Ÿ’ฌ 1    ๐Ÿ“Œ 0
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So: can a cell hold hands with itselfโ€ฆand do we care? YES and YES! Read on to learn WHY, HOW, and what this has to do withโ€ฆPARIS (and tree-hugging)? Swansong of Dr. Anamika; Hannah Kim on drums; and fantastic undergrads (Margaret/Lauren) ! 1/n
advanced.onlinelibrary.wiley.com/doi/10.1002/...

30.09.2025 14:29 โ€” ๐Ÿ‘ 25    ๐Ÿ” 11    ๐Ÿ’ฌ 1    ๐Ÿ“Œ 0
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It allows shaping the electric field, from single cells (first video) to sculpting whole tissues (movie below). This was several years of Yubin and Jeremy's lives; it's now changing what we know and do with electricity to control cell behaviors. It's so cool--please use it, we will help/share!

17.09.2025 17:20 โ€” ๐Ÿ‘ 19    ๐Ÿ” 2    ๐Ÿ’ฌ 0    ๐Ÿ“Œ 0
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It really does work for all sorts of model systems and culture set-ups, even transwells. Transmitted light, epifluor, confocal are all good! Here it is driving an electric field perpendicular to small cell colonies cultured on a transwell and causing them to expand and contract.

17.09.2025 17:20 โ€” ๐Ÿ‘ 6    ๐Ÿ” 0    ๐Ÿ’ฌ 1    ๐Ÿ“Œ 1
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SCHEPHERD ctrls electrotaxis--telling cells how to migrate in a DC E-field. It uses 3D printed inserts and custom-designed circuitry to do 8x indep. experiments all in a single platform + GUI; no other stim eq. needed! It's adorable and so much easier to use. Can be adapted for 6-24-well plates.

17.09.2025 17:20 โ€” ๐Ÿ‘ 5    ๐Ÿ” 0    ๐Ÿ’ฌ 1    ๐Ÿ“Œ 0

SCHEPHERD--the bioelectric cell herding platform built for YOU. Single cells, monolayers, organoids--this herds them all + new tricks. Plz try it-- we will *give* you parts! Teaser here of a steering a single cell. GS Yubin Lin's lifeblood with J. Yodh on piano; Celeste R. and Paul K. Thread 1/N

17.09.2025 17:20 โ€” ๐Ÿ‘ 60    ๐Ÿ” 26    ๐Ÿ’ฌ 4    ๐Ÿ“Œ 4
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Best paper title?: โ€œHow to make a new nose for someone when it is off entirely and the dog has eaten itโ€โ€”c.1460 von Pfalzpaint.

I talk noses: @npr.org Shortwave (Regina Barber) tinyurl.com/23dvwzmv

Video of my nightclub version @oddsalon.bsky.social
tinyurl.com/4snnacs3

#storiesmatter
(my art)

17.09.2025 02:25 โ€” ๐Ÿ‘ 6    ๐Ÿ” 3    ๐Ÿ’ฌ 0    ๐Ÿ“Œ 1
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Hโ€™okay; letโ€™s try it here! We use swarm behaviors, bioelectricity, and biomaterials to herd living cells like sheepdogs and sheep. New site live: cohenlab.princeton.edu. I really want to more frequently share my amazing crewโ€™s work ! Starting with an oldie vidโ€”living Escher! More soon, for serious.

16.09.2025 05:00 โ€” ๐Ÿ‘ 37    ๐Ÿ” 8    ๐Ÿ’ฌ 0    ๐Ÿ“Œ 1

Please add me too, thanks!

12.01.2025 14:13 โ€” ๐Ÿ‘ 1    ๐Ÿ” 0    ๐Ÿ’ฌ 0    ๐Ÿ“Œ 0

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