bioRxiv Science⌕ Search

bioRxiv · 10.1101/2025.03.06.641794

Acute chromatin decompaction stiffens the nucleus as revealed by nanopillar-induced nuclear deformation in cells

Abstract

Chromatin architecture is critical in determining nuclear mechanics. Most studies focus on the mechanical rigidity conferred by chromatin compaction from densely packed heterochromatin, but less is known on how transient changes in chromatin decompaction state impinge on nucleus stiffness. Here, we used an array of vertically aligned nanopillars to study nuclear deformability in situ after chromatin decompaction in cells. The nucleus significantly stiffened within 4 hours of chromatin decompaction but softened at longer timescales. This acute nucleus stiffening was predominantly underlied by an increase in nucleus volume, nuclear import and partially enhanced by lamin protein recruitment to the nuclear periphery. The coupling between nucleus stiffening and acute chromatin decompaction was observed in cancer cell lines with lower malignancy (e.g. MCF7, PEO1, A549) but weakened in those with higher metastatic potential (e.g. MDA-MB-231, HEYA8, HT1080), which was found to be associated with the capacity to efficiently compact heterochromatin into foci that sustains nucleus deformability required for confined migration. Our work signals how a rapid chromatin remodeling is a physiologically relevant pathway to modulate nucleus mechanics and cell migration behavior. STATEMENT OF SIGNIFICANCEMany cell processes such as wound healing, immune activation and DNA damage repair require a decompact and accessible chromatin structure. Whether such short-term remodeling of the chromatin impacts nucleus mechanics and function is poorly defined. Using nanopillars that allow interrogation of nucleus rigidity within intact cells, we showed that contrary to conventional knowledge the nucleus becomes less deformable and more rigid when chromatin is acutely decompacted due to enhanced nuclear import and swelling of the nucleus. In cancer cells, the coupling of transient chromatin decompaction to nucleus rigidity is weakened and appears to be countered by heterochromatin formation and compaction. We demonstrate here how short-term chromatin remodeling can impact nucleus and cellular properties in a time-dependent and non-genetic manner.

Source connections

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Mitra, A., Cutiongco, M. F., Burla, R., Zeng, Y., Qin, N., Kong, M., Vinod, B., Nai, M. H., Hübner, B., Ludwig, A., Lim, C. T., Shivashankar, G., Saggio, I., ZHAO, W.. 2025-03-11. Acute chromatin decompaction stiffens the nucleus as revealed by nanopillar-induced nuclear deformation in cells. https://doi.org/10.1101/2025.03.06.641794

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

Surfactant-Assisted Colorimetric Signal Enhancement in Paper-Based Glucose Sensing

Paper-based colorimetric sensors offer a low-cost and accessible platform for point-of-care (POC) analysis, but enzyme activity loss during coating and drying can weaken analytical signals and require high enzyme loadings or complex immobilization procedures. Although surfactants are widely used to improve wettability in paper-based assays, their potential contribution to colorimetric performance beyond these effects remains unclear. Here, we investigated surfactant-assisted colorimetric signal enhancement in a glucose assay implemented on a 96-puddle paper plate (96-PPP) and identified Tween 20 as the most effective surfactant. Its effect on detection performance became more pronounced as glucose oxidase (GOx) loading decreased; at 0.1 mg/mL GOx, Tween 20 lowered the limit of detection (LoD) from 0.113 to 0.034 mg/mL (approximately 3.3-fold) over a working range of 0-5 mg/mL, despite no statistically significant change in the measured contact angle at this loading. Tween 20 had no appreciable effect on the reaction in solution but preserved 95% of the apparent reaction rate constant after drying, compared with 11% without it, and atomic force microscopy (AFM) revealed a more dispersed dried enzyme morphology on mica. Tween 20-containing sensors also showed slower signal decay during repeated wetting-drying cycles and thermal stress, retained 77% (vs 26%) of the response at 400 mM NaCl, and exhibited within-PPP and between-batch coefficients of variation (CVs) below 10% (vs 12.3-19.5%), while maintaining glucose selectivity over potentially interfering molecules. These results indicate that Tween 20 enhances paper-based glucose sensing beyond wettability, in part by retaining enzyme cascade activity during drying, although the contributions of the individual enzymes and the underlying mechanism remain to be established.

bioengineering↗

Engineering CAR-T cells to remodel the mucin-rich cancer cell glycocalyx

The dense glycocalyx of cancer cells can restrict immune-cell access to surface antigens and limit CAR-T cell activity. Here, we show that mucin density and epitope position determine how glycocalyx remodeling affects CAR-T cell recognition and killing. We identify KLK5 as a human protease that cleaves tumor-associated mucins, increases access to membrane-proximal antigens, and enhances CAR-T cell function. We then engineer CAR-T cells to display or secrete KLK5, enabling remodeling of the tumor glycocalyx during antigen recognition. KLK5-engineered CAR-T cells improved tumor control across multiple xenograft models, and KLK5-secreting MUC17 CAR-T cells produced the strongest in vivo benefit, prolonging survival compared with conventional MUC17 CAR-T cells. These findings show that CAR-T cells can be engineered to breach the mucin-rich glycocalyx while preserving accessible target epitopes.

bioengineering↗

Wall stiffening is a primary contributor to motility loss in Crohn's disease: an electromechanical modeling study

Fibrotic strictures are among the most disabling complications of Crohn's disease, permanently narrowing the bowel and impairing motility, yet no approved therapy reverses them. Chronic inflammation alters pacemaker-network coupling, smooth-muscle excitability, and calcium-dependent contractility, while fibrosis thickens the bowel wall, narrows the lumen, and changes tissue mechanics. The relative contributions of these coupled electrical, contractile, and structural alterations to motility loss remain unclear. To address this gap, we develop an integrated electromechanical finite-element framework for fibrostenosing Crohn's disease that couples a fibrosis-driven growth model with a FitzHugh-Nagumo electromechanical model. A full-factorial 25 design of experiments is used to quantify the relative effects of electrical diffusivity, excitation threshold, peak active stress, wall stiffness, and hypertrophic remodeling on cyclic lumen-volume deformation. Motility is quantified by the standard deviation of lumen volume over one contraction cycle. Within the parameter ranges examined, increased wall stiffness emerged as the dominant contributor to motility loss, followed by impaired smooth-muscle contractility. Changes in excitation threshold, hypertrophic remodeling, and electrical diffusivity produced substantially smaller effects. Pairwise interactions were small relative to the dominant main effects, indicating that the mechanisms contributed largely through their individual effects. Our findings suggest that limiting wall stiffening while preserving smooth-muscle contractile function may provide a therapeutic strategy for maintaining intestinal motility in fibrostenosing Crohn's disease.

bioengineering↗