It is found that affinity governs the phase boundary, resistance to chemical perturbation, and molecular mobility of condensates in vitro and in human cells and is shown to be a quantitative determinant of condensate phase behavior, internal dynamics and biochemical output.
Abstract
Biomolecular condensates (BMCs) organize cellular biochemistry by concentrating selected molecules into dynamic membrane-free compartments. Yet the molecular parameters that determine not only whether condensates form, but also how they behave and what they do, remain poorly defined. Here we show that scaffold binding affinity (Kd) is a quantitative determinant of condensate phase behavior, internal dynamics and biochemical output. Using a modular SUMO-SIM system in which scaffold valency was held constant while binding affinity was systematically varied, we found that affinity governs the phase boundary, resistance to chemical perturbation, and molecular mobility of condensates in vitro and in human cells. In multicomponent mixtures, the highest-affinity scaffold dominated dense-phase composition and dynamics, revealing a hierarchical rule for condensate organization. Finally, affinity-dependent changes in condensate dynamics translated into tunable enzyme activity, establishing binding energetics as an engineerable parameter for programming condensate biochemistry.
Biomolecular condensates spatiotemporally regulate cellular biochemistry through liquid-liquid phase separation. In this Perspective, we refine the Condensate Code as a testable thermodynamic state map that integrates continuous cellular inputs, intrinsic molecular grammar and boundary conditions to govern measurable m...
Yao-Yao Hou, Ling-Yun Jing, Kan Sun et al.· Communications Biology· 0 citations
The ability of proteins to form scaffolds of biomolecular condensates through phase separation has emerged as an important physicochemical mechanism in cell biology, involved in a myriad of biological functions. Condensates contain highly concentrated biomolecules that function as hubs for nucleic acid storage and pr...
A. R. Passos, A. Costa-Filho, Carolina G. Oliveira et al.· Biophysical Reviews· 0 citations
Abstract Biomolecular condensates are membrane-less compartments formed through phase separation that concentrate and organize biomolecules within cells. Far from being static droplets, they are dynamic molecular assemblies whose internal dynamics, structure, mechanics, and composition can evolve over time during cellu...
Jia-Xing Xie, Benedict Tai, Tian-Chen Li et al.· Biochemical Journal· 0 citations
This work investigates how protein folding landscapes are altered inside condensates, using the protein α-helix as a model folded domain and develops a chemically specific, residue-resolution model for quantification of α-helical folding and applies it to characterize diverse helices within condensates of varying physi...
Nathaniel Hess, Jerelle A. Joseph· Journal of the American Chem...· 0 citations
Biomolecular condensates, formed by proteins, nucleic acids, and other macromolecules through liquid-liquid phase separation, enable molecular enrichment and reaction regulation within membraneless microenvironments. As their physical principles have become better understood, condensates are increasingly being incorpor...