The cell establishes heritable patterns of active and silenced chromatin via interacting factors
that set, remove, and read epigenetic marks. To understand how the underlying networks operate, we
have dissected transcriptional silencing in pericentric heterochromatin (PCH) of mouse fibroblasts.
We assembled a quantitative map for the abundance and interactions of 16 factors related to PCH in
living cells and found that stably bound complexes of the histone methyltransferase SUV39H1/2
demarcate the PCH state. From the experimental data, we developed a predictive mathematical model
that explains how chromatin-bound SUV39H1/2 complexes act as nucleation sites and propagate a
spatially confined PCH domain with elevated histone H3 lysine 9 trimethylation levels via chromatin
dynamics. This “nucleation and looping” mechanism is particularly robust toward
transient perturbations and stably maintains the PCH state. These features make it an attractive
model for establishing functional epigenetic domains throughout the genome based on the localized
immobilization of chromatin-modifying enzymes.
Transport of precursor proteins across chloroplast membranes involves the GTPases Toc33/34 and Toc159 at the outer chloroplast envelope. The small GTPase Toc33/34 can homodimerize, but the regulation of this interaction has remained elusive. We show that dimerization is independent of nucleotide loading state, based on crystal structures of dimeric Pisum sativum Toc34 and monomeric Arabidopsis thaliana Toc33. An arginine residue is--in the dimer--positioned to resemble a GAP arginine finger. However, GTPase activation by dimerization is sparse and active site features do not explain catalysis, suggesting that the homodimer requires an additional factor as coGAP. Access to the catalytic center and an unusual switch I movement in the dimeric structure support this finding. Potential binding sites for interactions within the Toc translocon or with precursor proteins can be derived from the structures.
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