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Sticking together without stickiness

10.27.22 | Max Planck Institute for Dynamics and Self-Organization

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Traditionally, cellular organelles defined by a membrane have been considered the functional units of a cell. In recent years, it was shown that also molecular droplets formed inside the cell provide a micro-environment for important reactions. Such droplets are not enclosed by a membrane, and arise from phase separation. Hence, they form dynamically and can be regulated according to the needs of the cell.

Nonequilibrium drives can induce droplet formation

In the department of Living Matter Physics, managing director Ramin Golestanian and coworkers aim to reveal the organizational principles of living matter. “The formation of droplets in cells so far was ascribed to attractive, sticky interactions between molecules – similar to how droplets form in non-living, equilibrium systems, such as droplets of oil in a vinaigrette,” explains Jaime Agudo-Canalejo, group leader at the MPI-DS. “We now found that the nonequilibrium drive provided by enzymatic reactions can cause the formation of enzyme-rich droplets, even without any stickiness. Instead, the enzymes are pushed against each other by the chemical fluxes they create” he continues.

The researchers explored this novel mechanism by formulating a model in which the effect of a multicomponent enzymatic reaction on the micro-environment is described. They also considered the underlying feedback mechanism due to which the induced phase separation can in turn affect the initial enzymatic reaction. “When the enzymatic activity gets too intense, phase separation occurs and acts to reduce it, providing a new form of autoregulation”, says Matthew Cotton, first author of the study. This complex interplay of molecular interactions can provide a dynamic environment for cellular processes. Hence, the model adds another piece to the complex puzzle of how life is able to organize itself.

Physical Review Letters

10.1103/PhysRevLett.129.158101

Computational simulation/modeling

Catalysis-Induced Phase Separation and Autoregulation of Enzymatic Activity

3-Oct-2022

Keywords

Article Information

Contact Information

Manuel Maidorn
Max Planck Institute for Dynamics and Self-Organization
manuel.maidorn@ds.mpg.de

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How to Cite This Article

APA:
Max Planck Institute for Dynamics and Self-Organization. (2022, October 27). Sticking together without stickiness. Brightsurf News. https://www.brightsurf.com/news/8J436WYL/sticking-together-without-stickiness.html
MLA:
"Sticking together without stickiness." Brightsurf News, Oct. 27 2022, https://www.brightsurf.com/news/8J436WYL/sticking-together-without-stickiness.html.