Curated Optogenetic Publication Database

Search precisely and efficiently by using the advantage of the hand-assigned publication tags that allow you to search for papers involving a specific trait, e.g. a particular optogenetic switch or a host organism.

Showing 1 - 2 of 2 results
1.

Critical capillary waves of biomolecular condensates.

blue iLID U-2 OS Organelle manipulation
bioRxiv, 5 Nov 2023 DOI: 10.1101/2023.10.29.564316 Link to full text
Abstract: Membraneless compartments known as biomolecular condensates are thought to form through liquid-liquid phase separation (LLPS). When forces are applied to the fluid interfaces of these condensates, surface fluctuation are generated, a phenomenon known as capillary waves. The spatiotemporal dynamics of these fluctuations, characterized by the amplitude and velocity, reflect the physical properties of condensates. Moreover, unraveling the nature of fluctuations near the critical point is crucial for understanding the universal physical underpinnings of phase transitions. Although fluid condensate interfaces are ubiquitous within living cells, little is known about their surface fluctuations. Here, we quantify the interface fluctuations of light-induced synthetic and endogenous nuclear condensates, including nucleoli and nuclear speckles, in real and Fourier space. Measured fluctuations align with a theory assuming thermal driving, which enables measurement of surface tension and effective viscosity. The surface tensions fall within the range of 10−6 to 10−5 N/m for all tested condensates; in contrast, we find significant difference of fluctuation velocities, highlighting much higher viscosity of nucleoli ∼ 104 Pa·s, compared to synthetic condensates and nuclear speckles. We further find that the interface fluctuations become enhanced and slower as the system nears the critical point. These findings elucidate key aspects of intracellular condensate properties, and suggest that the critical trend of surface tension is more consistent with theoretical predictions by the mean-field model than those by the 3D Ising model.
2.

Nucleated transcriptional condensates amplify gene expression.

blue CRY2olig NIH/3T3 Endogenous gene expression Organelle manipulation
Nat Cell Biol, 14 Sep 2020 DOI: 10.1038/s41556-020-00578-6 Link to full text
Abstract: Membraneless organelles or condensates form through liquid-liquid phase separation1-4, which is thought to underlie gene transcription through condensation of the large-scale nucleolus5-7 or in smaller assemblies known as transcriptional condensates8-11. Transcriptional condensates have been hypothesized to phase separate at particular genomic loci and locally promote the biomolecular interactions underlying gene expression. However, there have been few quantitative biophysical tests of this model in living cells, and phase separation has not yet been directly linked with dynamic transcriptional outputs12,13. Here, we apply an optogenetic approach to show that FET-family transcriptional regulators exhibit a strong tendency to phase separate within living cells, a process that can drive localized RNA transcription. We find that TAF15 has a unique charge distribution among the FET family members that enhances its interactions with the C-terminal domain of RNA polymerase II. Nascent C-terminal domain clusters at primed genomic loci lower the energetic barrier for nucleation of TAF15 condensates, which in turn further recruit RNA polymerase II to drive transcriptional output. These results suggest that positive feedback between interacting transcriptional components drives localized phase separation to amplify gene expression.
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