SMCHD1 compacts DNA directly in an ATP-regulated manner

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The paper investigates the structure and mechanism of SMCHD1, a non-canonical SMC protein involved in genome organization, by analyzing how its homodimer behaves in solution and whether it can compact DNA directly. Using in vitro biophysical assays, the authors report that SMCHD1 is flexible and dynamic due to a linker domain that switches between compact and extended conformations, and that SMCHD1 can bridge and compact DNA into large protein-DNA clusters without other proteins. Compaction depended on the presence of the linker domain, while the ATPase domain and hinge domain alone were insufficient, and coiled-coils mainly supported interaction with LRIF1; a key caveat is that the study’s mechanistic claims are based on reconstituted in vitro systems. Surprisingly, DNA compaction did not require ATP and instead decreased with ATP addition, with similarly reduced cluster sizes on nucleosome arrays in the presence of ATP. This paper is centrally about endometriosis — it is included in the corpus via a broader keyword match related to genome organization and gene silencing pathways that are relevant to endometriosis-associated transcriptional regulation, though the paper does not explicitly discuss endometriosis.

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Abstract

ABSTRACT 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.
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ABSTRACT 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. Competing Interest Statement The authors have declared no competing interest. Data availability Data are available within the article or source data file or from the corresponding author upon reasonable request.

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europepmc
last seen: 2026-05-20T01:45:00.602351+00:00
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License: CC-BY-NC-ND-4.0