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Nordenskiöld, L.

Publications and source records attributed to Nordenskiöld, L..

3 recordsLinked to original sources

SMCHD1 compacts DNA directly in an ATP-regulated manner

Structural maintenance of chromosome (SMC) complexes play crucial roles in genome organization by DNA loop extrusion. SMCHD1 is a non-canonical SMC protein important for X-inactivation, imprinting and the silencing of specific autosomal genes. While it is known to be a repressor, little is known about its structure or mechanism of action. Here, we show that the SMCHD1 homodimer is flexible and dynamic in solution. This flexibility is conferred by its yet uncharacterized linker domain, which can alter its length by dynamically switching between compact and extended conformations. Interestingly, we observed that SMCHD1 can directly bridge and compact DNA, independently of other proteins, forming large protein-DNA clusters. SMCHD1 contains a GHKL ATPase domain and SMC hinge domain, however each domain alone is insufficient for DNA compaction. DNA compaction rate decreases when the linker domain is removed. The coiled-coil domain does not affect compaction rate but facilitates interaction with a partner protein LRIF1. Surprisingly, DNA compaction by SMCHD1 does not require ATP and paradoxically, compaction rate is reduced with the addition of ATP. Similarly, SMCHD1 forms clusters with reconstituted nucleosome arrays in the absence of ATP, and the addition of ATP results in a reduction in cluster sizes. Our data provides biophysical and mechanistic insights into the role of SMCHD1 in gene silencing and genome organization.

molecular biology↗

The columnar structure of human telomeric chromatin suggests mechanisms for telomere maintenance

Telomeres, the ends of eukaryotic chromosomes, play pivotal roles in ageing and cancer and are targets of DNA damage and response. However, little is known about the structure and organization of telomeric chromatin at the molecular level. We used electron microscopy and single-molecule magnetic tweezers to characterize well-defined telomeric chromatin fibers of kilobasepair length. The cryo-EM structure of the compact telomeric tetranucleosome revealed a novel columnar folding, unusually short nucleosome repeat length of [~]132bp and the role of the histone N-terminal tails in stabilizing this structure. This is the first near-high resolution structure of chromatin with a native DNA sequence. The columnar structure exposes the DNA, making them susceptible to DNA damage. The telomeric tetranucleosome also exists in an alternative well-defined state, with one nucleosome open, accessible to protein factors. This suggests that protein factors, which plays a role in maintaining telomeres, can bind to telomeric chromatin in its compact heterochromatic form. The features of the telomeric chromatin structure reveals important insights of significant relevance for telomere function in vivo that provides information on mechanisms of nucleosome recognition by chromatin factors

molecular biology↗

The Intrinsically Disordered Region of Coronins Fine-tunes Oligomerization and Actin Polymerization

Coronins are highly conserved actin-binding proteins (ABPs) in the eukaryotic kingdom for polymerizing actin cytoskeleton. The biochemical activity of coronins is primarily mediated by the structural N-terminal {beta}-propeller and the C-terminal helical coiled-coil (CC) domains, but less is known about the function of a middle nonconserved region, the "unique region (UR)". The coronin UR is an intrinsically disordered region (IDR). Herein, we demonstrate that the low complexity of the UR is a conserved signature of the coronin protein family, and the UR/IDR exhibits a striking evolutionary correlated pattern associated with sequence length. By analyzing the role of the IDR in coronins via coarse-grained simulations, we reveal that evolutionary selection of IDR length is coupled with the oligomerization of IDR-containing proteins (IDPs) to provide optimal functional output. By integrating biochemical and cell biology experiments and protein engineering, we found that the IDR regulates Crn1 biochemical activity, both in vivo and in vitro, by fine-tuning CC domain oligomerization and maintaining Crn1 in a tetrameric state. The IDR-guided optimization of Crn1 oligomerization is critical for Arp2/3-mediated actin polymerization.

cell biology↗