Curvature-mediated prewetting organize mitochondrial nucleoid
Hu, X.; Shu, L.; Zhang, G.; Jiang, Y.; Yin, Y.; Xu, Y.; Wang, Y.; Shang, Y.; Cao, J.; Li, T.; Fang, S.; Guo, S.; Li, D.; Jiang, D.; Weber, C. A.; Liu, C.; Chen, Z.; Zhao, X.; Ge, Y.
Show abstract
The emergence of spatiotemporal order in diffusive cellular environments requires physical mechanisms to overcome the entropic drive toward disorder. While the organizing role of chemical signaling is well characterized, how complex membrane curvature regulate soluble molecular organization remains a fundamental open question. Here, we establish membrane curvature as a thermodynamic control parameter for the condensation of soluble proteins through prewetting. Using the mitochondrial transcription factor TFAM, we demonstrate that intrinsic membrane curvature locally drives a prewetting transitiona surface-mediated phase separation distinct from bulk condensation. By combining in vitro reconstitution, live-cell super-resolution imaging, cryo-electron tomography, and thermodynamic theory, we show that negatively high-curvature regions lower the nucleation energy barrier of Tfam, driving localized protein condensation at physiological concentrations. These results reveal that membrane curvature does not merely scaffold cellular machinery but manipulates the local free energy landscape, establishing a geometric principle for the spatial control of biological processes.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Human ESCRT-III Polymers Assemble on Positively Curved Membranes and Induce Helical Membrane Tube Formation 97%
- DeFrND: detergent-free reconstitution into native nanodiscs with designer membrane scaffold peptides 96%
- A modular platform for engineering function ofnatural and synthetic biomolecular condensates 96%
Similar papers in this journal
- High-speed AFM reveals fluctuations and dimer splitting of the N-terminal domain of GluA2-γ2 96%
- A synthetic membrane shaper for controlled liposome deformation 95%
- Mechanical counterbalance of kinesin and dynein motors in microtubular network regulates cell mechanics, 3D architecture, and mechanosensing 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.