Uploaded March 2026 | Updated September 2026, 2 weeks ago
Intrinsically disordered proteins (IDPs) lack stable folded structures and are enriched in charged and polar residues. IDPs form condensates whose material properties emerge from the interplay between long-range electrostatics and residue-specific short-range interactions.
Condensate behavior arises from the superposition of charge-pattern–driven electrostatic cohesion and residue-specific local properties. When charges are scrambled, electrostatic forces decrease, whereas charge block formation enhances electrostatic forces. However, amino acid properties must also be taken into account, as they determine short-range interactions. Together, these two perspectives provide a better understanding of the viscoelastic and structural properties of condensates.
Mara-Héloïse Picot is a student in the Cell Physics Master at the University of Strasbourg, France.
Find the original scientific papers described in this video below
- Short-range interactions (curious about microrheology?) : I. Alshareedah, M. M. Moosa, M. Pham, D. A. Potoyan, and P. R. Banerjee, Programmable viscoelasticity in protein-RNA condensates with disordered sticker-spacer polypeptides, Nat Commun 12, 6620 (2021). pubmed.ncbi.nlm.nih.gov/34785657
- Long-range interactions : Y.-H. Lin, J. D. Forman-Kay, and H. S. Chan, Sequence-Specific Polyampholyte Phase Separation in Membraneless Organelles, Phys. Rev. Lett. 117, 178101 (2016). pubmed.ncbi.nlm.nih.gov/27824447
Intrinsically disordered proteins (IDPs) lack stable folded structures and are enriched in charged and polar residues. IDPs form condensates whose material properties emerge from the interplay between long-range electrostatics and residue-specific short-range interactions.
Condensate behavior arises from the superposition of charge-pattern–driven electrostatic cohesion and residue-specific local properties. When charges are scrambled, electrostatic forces decrease, whereas charge block formation enhances electrostatic forces. However, amino acid properties must also be taken into account, as they determine short-range interactions. Together, these two perspectives provide a better understanding of the viscoelastic and structural properties of condensates.
Mara-Héloïse Picot is a student in the Cell Physics Master at the University of Strasbourg, France.
Find the original scientific papers described in this video below
- Short-range interactions (curious about microrheology?) : I. Alshareedah, M. M. Moosa, M. Pham, D. A. Potoyan, and P. R. Banerjee, Programmable viscoelasticity in protein-RNA condensates with disordered sticker-spacer polypeptides, Nat Commun 12, 6620 (2021). pubmed.ncbi.nlm.nih.gov/34785657
- Long-range interactions : Y.-H. Lin, J. D. Forman-Kay, and H. S. Chan, Sequence-Specific Polyampholyte Phase Separation in Membraneless Organelles, Phys. Rev. Lett. 117, 178101 (2016). pubmed.ncbi.nlm.nih.gov/27824447





![Fluorescence: a tool to study molecular dynamics in biology
Fluorescence is used in Biology as a tool to study the internal of cells. In this video, Rémi Berthoz explains the basics of interactions between light and matter to schematically describe how fluorescent molecules can be used to monitor the flow of calcium ions in living cells. Watch Rémis video to learn more.
Rémi Berthoz is a student in the Cell Physics Master at the University of Strasbourg, France.
https://www.cellphysics-master.com
Related Resources :
Roger Y. Tsien et al. Nature Chemical Biology [Nat Chem Biol. 2007 Jul; 3(7): 423–431.].
https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2909385/ Fluorescence: a tool to study molecular dynamics in biology](https://i.ytimg.com/vi/KQhAS7OYu94/mqdefault.jpg)



![Gyrification: how the brain folds
Gyrification is the process occurring during the fetal stage that leads to the formation of the folds that appear on the surface of our brain. Because it can shed light on the functioning of the brain and some neurological diseases, understanding how and why these structures form is important. This led us to distinguish two complementary mechanisms that rule this phenomenon: biomechanics and genetically determined cellular processes. In this video, Thomas Perros summarizes these works and explanations to give a quick overview of the research on gyrification.
Thomas Perros is a student in the Cell Physics Master at the University of Strasbourg, France.
References:
[1]: Essen, D. A tension-based theory of morphogenesis and compact wiring in the central nervous system.https://www.nature.com/articles/385313a0
[2]: K roenke CD, Bayly PV. How Forces Fold the Cerebral Cortex. https://www.jneurosci.org/content/38/4/767
[3]: Van Essen DC. A 2020 view of tension-based cortical morphogenesis. https://pubmed.ncbi.nlm.nih.gov/33323481/
[4]: Tallinen T., Chung J., Rousseau F. et al. On the growth and form of cortical convolutions. https://www.nature.com/articles/nphys3632
[5]: Borrell V. How Cells Fold the Cerebral Cortex. https://www.jneurosci.org/content/38/4/776 Gyrification: how the brain folds](https://i.ytimg.com/vi/Mrm8a8wt9vQ/mqdefault.jpg)
