Protein coacervation-driven active forces power protocell dynamics
Haiyang Jia1, Huan Sun2,3, Weijie Zhang4
1Key Laboratory of Medical Molecule Science and Pharmaceutical Engineering, Institute of Biochemical Engineering, School of Chemistry and Chemical Engineering, Beijing Institute of Technology, Beijing, PR China. haiyangjia@bit.edu.cn.
None:
Protein coacervates formed by liquid-liquid phase separation are emerging as active force generators, independent of ATP-driven motors. Nevertheless, the coordination and force scaling of protein coacervates remain largely unexplored. Here, we engineer a temperature-responsive elastin-based protocell model displaying temperature-modulated contractility and attendant force harnessing. By leveraging the phase separation properties, we modulate the protocell dynamics associated with volume contraction and membrane budding. Crosslinking of the elastin-based membrane influences the contraction dynamics such that the accumulation of mechanical forces in the protocells results in the spontaneous expulsion of internally trapped protein liquid-liquid phase separation (LLPS) complexes. We use a simple mathematically model to show how protein coacervation can amplify small piconewton-scale forces to perform large-scale mechanical work, highlighting the mechanical potential of protein coacervation dynamics. Taken together, our results provide a model framework for harnessing protein coacervates-driven forces and offer a step to future applications in synthetic biology, biomaterials and next-generation soft robotics.
Related Concept Videos
Protein Dynamics in Living Cells
Fluorescent recovery after photobleaching (FRAP) is a fluorescent-protein-based detection technique used to quantify protein movement rates within the cell. This method exposes a small portion of the cell to an intense laser beam. The laser beam causes permanent photobleaching of the fluorophore-tagged proteins in the exposed region. As the bleached...
Mechanical Protein Functions
Mechanisms of Membrane Domain Formation
Another mechanism for membrane domain formation involves membrane proteins interacting with...
ATP Driven Pumps I: An Overview
There are four main types of ATP-driven pumps - P-type, V-type, F-type, and ABC transporter. All these pumps are of varying complexities and...
Protein Diffusion in the Membrane
ATP Driven Pumps II: P-type Pumps
A typical P-type pump has three cytosolic domains: nucleotide-binding (N), phosphorylation (P), and activator (A) domains. These domains are connected to the membrane-spanning helices by short amino acid segments. ATP hydrolysis and covalent phosphoenzyme intermediate formation are crucial parts of the catalytic cycle. At the highly...


