Search bioRxiv⌕ Search

Biology subjects

Nai, M. H.

Publications and source records attributed to Nai, M. H..

3 recordsLinked to original sources

Theca cell mechanosensing and regulation of follicular extracellular matrix during ovarian follicle development

Mammalian folliculogenesis is essential for female hormonal regulation and successful reproduction. While the steroidogenic functions of theca cells (TCs) have been implicated in ovarian diseases and infertility, the physico-structural properties of TCs and their associated extracellular matrix (ECM), or theca matrix, remain poorly understood. Using murine ovaries, we show that a stiff basement membrane (BM) and theca matrix constitute a mechanically instructive niche that modulates TC proliferation and Yes-associated protein (YAP) signalling in secondary follicles. We identify hyaluronic acid (HA) as a key matrix component that is actively secreted by contractile TCs. The HA scaffold, in turn, regulates TC proliferation, YAP signalling and motility, and is required for overall follicle growth. We showed that stiffer substrates enhance YAP nuclear transport in TCs, while mechanical stretch, cell packing, and curvature affect TC proliferation. In addition, TCs exhibit directed migration towards regions of positive curvature. Together, this study reveals a mechanochemical feedback mechanism that establishes TC mechanics and HA as key regulators of theca matrix formation that is essential for mammalian folliculogenesis. SIGNIFICANCEThe structural properties and mechanical functions of the basement membrane and theca cell-matrix encapsulating mammalian ovarian follicles are poorly understood. Our findings reveal that during early stage of follicle development, the basement membrane remains thin and stiff, while the theca cells actively secrete hyaluronic acid in a contractility-dependent manner. The hyaluronic acid scaffold, in turn, regulates theca cell YAP signalling, proliferation and motility that are required for functional growth of follicles. We further showed that the theca cells are mechanosensitive and fine-tune their proliferative capacity and Hippo pathways in response to substrate stiffness, stretch and curvature. Together, our study uncovers mechanoregulatory feedback between theca cells and associated extracellular matrix, offering new insights into environmental control of folliculogenesis in female reproduction.

developmental biology↗

Fibrillar adhesions are the primary integrin complexes shaped by matrix topography

Mechanisms of matrix topography recognition are poorly understood. Here, we show that 5{beta}1-integrin mediated fibrillar adhesions serve this function. While on planar substrates, their formation requires fibronectin secretion, tensins, and actomyosin contractility, these requirements are bypassed on nanotopographical features. While focal adhesions avoid these features, fibrillar adhesions rapidly align along pre-existing fibrous cell-derived matrix or electrospun nanofibers where they can then template fibronectin fibrils. Topography-induced fibrillar adhesions depend primarily on 5{beta}1-integrin clustering and disassemble upon cortical stiffening driven by myosin-II overactivation or increased membrane tension. We propose a generic theoretical model where the adhesion receptor favours the membrane and substrate planes to be tilted relative to each other. This model matches experimental observations of preferential 5{beta}1-integrin clustering along nanofibers and concave edges of large negative curvature along micro-ridges. These findings establish fibrillar adhesions as primary adhesion complexes that form independently of focal adhesions in response to matrix topography.

cell biology↗

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

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.

bioengineering↗