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GuckLab

@gucklab.bsky.social
55 followers 26 following 0 posts

The GuckLab at the MPI for the Science of Light and the Max Planck Zentrum für Physik und Medizin - Physics of the cell with an eye on medical applications; Tweets by JG, not views of Max Planck Society

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Simone Reber @simonereber.bsky.social · 15/08/2025
FINALLY! Challenging to publish but we believe it is an important discovery: rdcu.be/eATFz 💚 Thanks to the team ‪@biswashere.bsky.social‬, Omar Muñoz, ✨Q✨ C. Hoege, B. Lorton, R. Nikolay ‪@matthewkraushar.bsky.social‬ @dshechter.bsky.social @gucklab.bsky.social @vasilyzaburdaev.bsky.social‬ 💚
rdcu.be
Conserved nucleocytoplasmic density homeostasis drives cellular organization across eukaryotes
Nature Communications - Cells can regulate their mass density. Here, the authors demonstrate how eukaryotes establish and maintain a lower density in the nucleus than in the cytoplasm via pressure...
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Reposted by GuckLab
International BioBrillouin Society @biobrillouinsoc.bsky.social · 12/09/2025
Don't forget to submit your abstract until October 1, 2025 to join this amazing lineup of speakers at the 9th International BioBrillouin Conference from Nov 25-27 in Berlin! Looking forward to seeing you there 🤩
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Reposted by GuckLab
Simone Reber @simonereber.bsky.social · 12/05/2025
New insights in to the physical properties of the 🐸 #Xenopus cytoplasm! Great work @mctwo.bsky.social & @biswashere.bsky.social! Together with @gucklab.bsky.social & @vasilyzaburdaev.bsky.social 😍 @mpi-scienceoflight.bsky.social @mpiib-berlin.mpg.de www.biorxiv.org/content/10.1...
biorxiv.org
Hierarchical Heterogeneities in Spatio-Temporal Dynamics of the Cytoplasm
Understanding of the dynamics inherent to biological matter is crucial for illuminating the physical mechanisms underlying cellular processes. In this study, we employ bright-field differential dynamic microscopy (DDM) to investigate density fluctuations inherent in a cell-free model of eukaryotic cytoplasm. Our measurements reveal subdiffusive fractional Brownian motion and non-Gaussian displacement distributions, highlighting cytoplasmic heterogeneity. We introduce an empirical model that combines fractional Brownian motion with an inverse Gaussian distribution of diffusivities to describe the observed non-Gaussianity. Validated through Monte Carlo simulations, this model allows us to estimate the fractional diffusivity and exponent effectively. By altering macromolecular composition, the addition of energy, and assembly of a cytoskeleton, we identify three independent mechanisms that result in similar fractional exponents yet distinct diffusivities. We find that energy addition leads to non-stationary dynamics, in contrast to the stationary behavior observed under passive conditions. Presence of microtubules introduces a secondary dynamical timescale, which we describe using a two-state fractional Brownian motion model to differentiate between cytosolic and microtubule network associated contributions. Our findings demonstrate the effectiveness of DDM as a label-free tool for quantifying viscoelastic and heterogeneous properties of the cytoplasm and provide insights into how physical and biochemical factors, including cytoskeletal organization, govern subcellular dynamics. ### Competing Interest Statement The authors have declared no competing interest.
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Reposted by GuckLab
Max Planck Institute for the Science of Light (MPL) @mpi-scienceoflight.bsky.social · 09/05/2025
Only one week to go until the #DayofLight! On May 16, join #MPL and the #DeutschesMuseumNürnberg to celebrate light and quantum science! With hands-on experiments, talks, and lab tours. 📍12–4 PM | Hugenottenplatz Erlangen 📍5–7 PM | MPL 👉 mpl.mpg.de/events/event...
On the left side there is a colorful lightbulb and on the right side our program for the Day of Light.
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Reposted by GuckLab
Abin Biswas @biswashere.bsky.social · 10/05/2025
Beautiful work by @mctwo.bsky.social investigating the spatio-temporal dynamics of the cytoplasm using label-free tools and 🐸 extracts! 🐸 + 🔬 + 📈 = ✨ w. @gucklab.bsky.social , @simonereber.bsky.social , @vasilyzaburdaev.bsky.social www.biorxiv.org/content/10.1...
biorxiv.org
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