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The presence of macromolecules in cells geometrically restricts the available space for poplypeptide chains. To study the effects of macromolecular crowding on folding thermodynamics and kinetics, we used an off-lattice model of the all-β-sheet WW domain in the presence of large spherical particles whose interaction with the polypeptide chain is purely repulsive. At all volume fractions, ϕ c, of the crowding agents the stability of the native state is enhanced. Remarkably, the refolding rates, which are larger than the value at ϕ c = 0, increase nonmonotonically as ϕ c increases, reaching a maximum at 12ptminimal amsmath wasysym amsfonts amssymb amsbsy mathrsfs -69pt document equation*₂=₂^*equation*document. At high values of ϕ c, the depletion-induced intramolecular attraction produces compact structures with considerable structure in the denatured state. Changes in native state stability and folding kinetics at ϕ c can be quantitatively mapped onto confinement in a volume-fraction-dependent spherical pore with radius R s ≈ (4π/3ϕ c) 1/3 R c (R c is the radius of the crowding particles) as long as 12ptminimal amsmath wasysym amsfonts amssymb amsbsy mathrsfs -69pt document equation*₂₂^*equation*document. We show that the extent of native state stabilization at finite ϕ c is comparable with that in a spherical pore. In both situations, rate enhancement is due to destabilization of the denatured states with respect to ϕ c = 0.
Cheung et al. (Mon,) studied this question.
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