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Biology subjects

Sha, R.

Publications and source records attributed to Sha, R..

2 recordsLinked to original sources

Symmetry and force response of cohesin loop extrusion are determined by diffusion of its motor and anchor domains

Cohesin, a Structural Maintenance of Chromosomes (SMC) complex is thought to organize genomes by generating DNA loops, yet the molecular basis of loop extrusion remains incompletely understood. Here, we show that a single S. pombe cohesin complex extrudes DNA loops both symmetrically or asymmetrically, depending on the external force applied to DNA and that the mode and speed are controlled by stochastic switching of the cohesin motor between driving and diffusive states. We directly measured the weak forces generated during cohesin-mediated loop extrusion while simultaneously visualizing DNA loops and found that forces as low as 0.05 pN pull DNA out of cohesin loop without disrupting cohesin-DNA interaction. We further identified the Scc3 subunit as a diffusive DNA anchor required for loop extrusion and showed that its physical separation from the motor domain by unstructured regions of Scc1 promotes loop-extrusion initiation. Together, our results support a model in which cohesin loop extrusion is limited and tuned by diffusive motion of both anchor and motor modules, providing a mechanistic framework for how weak and diffusive cohesin-DNA interactions could modulate cohesin function in chromatin organization.

biophysics↗

SRSF2 is a key player in orchestrating the directional migration and differentiation of MyoD progenitors during skeletal muscle development

SRSF2 plays a dual role, functioning both as a transcriptional regulator and a key player in alternative splicing. The absence of SRSF2 in MyoD+ progenitors resulted in perinatal mortality in mice, accompanied by severe skeletal muscle defects. SRSF2 deficiency disrupts the directional migration of MyoD progenitors, causing them to disperse into both muscle and non-muscle regions. Single-cell RNA-sequencing analysis revealed significant alterations in SRSF2-deficient myoblasts, including a reduction in extracellular matrix components, diminished expression of genes involved in ameboid-type cell migration and cytoskeleton organization, mitosis irregularities, and premature differentiation. Notably, one of the targets regulated by SRSF2 is the serine/threonine kinase Aurka. Knockdown of Aurka led to reduced cell proliferation, disrupted cytoskeleton, and impaired differentiation, reflecting the effects seen with SRSF2 knockdown. Crucially, the introduction of exogenous Aurka in SRSF2-knockdown cells markedly alleviated the differentiation defects caused by SRSF2 knockdown. Furthermore, our research unveiled the role of SRSF2 in controlling alternative splicing within genes associated with human skeletal muscle diseases, such as BIN1, DMPK, FHL1, and LDB3. Specifically, the precise knockdown of the Bin1 exon17-containing variant, which is excluded following SRSF2 depletion, profoundly disrupted C2C12 cell differentiation. In summary, our study offers valuable insights into the role of SRSF2 in governing MyoD progenitors to specific muscle regions, thereby controlling their differentiation through the regulation of targeted genes and alternative splicing during skeletal muscle development.

developmental biology↗