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Dynamic principles of concentration buffering through liquid-liquid phase separation
Logan de Monchaux-Irons1,2, T-Y Dora Tang3, Christoph A Weber4
1Department of Biology, Institute of Biochemistry, ETH Zurich, Zurich 8093, Switzerland.
Biomolecular condensates act as frequency-selective filters, buffering biochemical concentration fluctuations. This study reveals how liquid-liquid phase separation (LLPS) dynamics limit concentration buffering across different timescales.
Area of Science:
- Biophysics
- Cell Biology
- Biochemistry
Background:
- Living systems require stable biochemical function amidst environmental fluctuations.
- Biomolecular condensates, formed via liquid-liquid phase separation (LLPS), are known to buffer concentration changes, but their dynamic regulation is not fully understood.
Purpose of the Study:
- To systematically analyze the frequency-dependent concentration buffering capabilities of biomolecular condensates.
- To elucidate the principles governing the dynamic regulation of LLPS in response to oscillatory perturbations.
Main Methods:
- Frequency-domain analysis of LLPS response to oscillatory perturbations.
- Quantitative assessment of concentration buffering across various timescales.
- Investigation of the influence of LLPS parameters (interaction strength, droplet size, exchange rates) on buffering capacity.
Main Results:
- Biomolecular condensates function as frequency-selective filters.
- The dilute phase acts as a high-pass filter, while the dense phase attenuates both low and high frequencies.
- Established quantitative relationships between LLPS parameters and the effective buffering timescale.
Conclusions:
- LLPS provides fundamental dynamical limits for concentration buffering in biological systems.
- Findings have implications for cellular adaptation to fluctuating environments and the design of synthetic condensates.
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