bioRxiv Science⌕ Search

bioRxiv · 10.1101/2025.10.20.683556

3D Contractile and Remodeling Behaviors of Functionally Normal and Prolapsed Human Mitral Valve Interstitial Cells

Abstract

Mitral valve prolapse (MVP) can lead to heart failure, arrhythmia, and death. The only treatments available for MVP are replacement or repair; alternative therapies remain elusive due to lack of knowledge of the underlying pathological processes. The goal of the present study was thus to explore how MVP affects human mitral valve interstitial cell (hMVICs) extracellular matrix (ECM) remodeling and basal contractility characteristics. Isolated MVP and physiologically normal hMVICs were embedded in poly(ethylene) glycolbased hydrogels containing fluorescent fiducial markers and 3D traction force microscopy via inverse modeling was employed to determine the local change in hMVIC hydrogels due to enzymatic degradation and collagen deposition. Results indicated pronounced hydrogel softening occurred generally further from the hMVICs, whereas stiffening occurred in close proximity to hMVICs due to collagen deposition as verified by collagen-staining. MVP hMVICs induced greater hydrogel stiffening and less degradation than normal hMVICs. Interestingly, even though MVP hMVICs had higher basal contractile displacements, their corresponding traction forces and hydrogel strain energy densities were significantly lower than those of normal hMVICs. These findings elucidate, for the first time, that MVP hMVICs have significantly altered biophysical contractile and ECM remodeling behaviors compared to normal hMVICs. Simple SummaryWhen a mitral heart valve gets thick, stiffened, and degraded, it can flip backwards (prolapse), causing blood to flow the wrong way. This can cause heart failure, arrhythmia, or even death. The only treatment for mitral valve prolapse (MVP) is surgery. To pave the way for a medication, this study aimed to understand how cells that maintain the mitral valve, mitral valve interstitial cells (MVICs), act on their surrounding tissue. The mechanical properties of the MVICs were tested, including how much they contract and how much they pull on their surroundings. Also, the mechanical properties that the MVICs place on their surroundings were tested, like how much they stiffen and degrade the tissue and how much energy is stored in the tissue as the MVICs contract. Compared to normal MVICs, we found that MVP MVICs stiffen their surroundings more and degrade their surroundings less. We also found that even though MVP MVICs contract more than normal MVICs, the energy that they place on their surroundings is less than that of normal MVICs, indicating that MVP MVICs are less mechanically effective. This is the first time that this ineffectiveness has been seen and may be key to targeting MVP with future medications.

Source connections

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

West, T. M., Peery, G., Chemuturi, S. S., Pham, J. H., Ferrari, G., Sacks, M. S.. 2025-10-21. 3D Contractile and Remodeling Behaviors of Functionally Normal and Prolapsed Human Mitral Valve Interstitial Cells. https://doi.org/10.1101/2025.10.20.683556

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

KEEP EXPLORING

Related preprints

OPN3 mediates retinal-dependent lipofuscin accumulation and its loss sensitizes keratinocytes to blue-light-induced proteomic remodeling

Lipofuscin is a blue-light-absorbing pigment that contributes to oxidative damage. Whether all-trans retinal (atRAL) contributes to its formation in response to light remains unclear. We asked whether blue-light photosensitization of atRAL promotes lipofuscin accumulation in human keratinocytes and whether this depends on Opsin 3 (OPN3). Blue-light excitation of atRAL reduced mitochondrial and lysosomal viability, impaired autophagic flux, and increased lipofuscin. OPN3 knockdown significantly reduced this accumulation. Label-free data-independent acquisition (DIA) proteomics showed that OPN3 acts at three levels. In the dark, OPN3 loss altered proteome networks associated with autophagy, apoptosis, and interferon-related responses. Under blue light, control cells activated a stress-adaptive program spanning inflammatory regulation, lipid metabolism, and mitochondrial function, which atRAL strongly amplified. This molecular signature, including induction of cellular respiration and ATP-production proteins, was largely absent when OPN3 was silenced. Respirometry showed that blue light suppressed oxygen consumption in both lines over the first 24 h, but a faster recovery in OPN3 knockdown cells at 48 and 72 h was observed. Together, these data define three functions of OPN3: maintaining the basal proteome in a blue-light-independent manner, enabling the adaptive blue-light response, and enabling retinal-dependent lipofuscin formation in keratinocytes.

cell biology↗

Uncoupling microtubule lifetime, stability and post-translational modifications.

Microtubules (MTs) undergo continuous cycles of growth and disassembly. Because the transitions between these states are stochastic, MT age varies widely within a population. As MTs age, they are thought to accumulate post-translational modifications (PTMs) that, directly or indirectly, enhance their stability and thereby extend their lifetime. The rare MTs that withstand prolonged exposure to destabilizing drugs such as nocodazole (NZ) are indeed enriched in PTMs; yet the relationships between MT age, PTMs and stability remain unclear. Using microinjection of labelled tubulin, we measured microtubule network turnover in immortalized mouse embryonic fibroblasts. Half of the network was renewed within 3 minutes and 80% within 10 minutes, while approximately 5% of microtubules persisted for more than 20 minutes. These dynamics were comparable in quiescent and senescent cells, although the fraction of slowly renewing or non-renewing microtubules rose to 20% in senescent cells. Unexpectedly, neither the amount of PTMs (acetylation and detyrosination) nor resistance to NZ increased with MT age, and resistance to NZ was independent of these PTMs. Degrees of acetylation and detyrosination should therefore not be taken as readouts of MT age or stability. Because these PTMs do not accumulate on MTs over time, the chemical modification of polymerized tubulin is likely more reversible and dynamic than previously assumed.

cell biology↗

Evidence of complete myofibril remodeling after severe damage in adult Drosophila.

Muscle function depends on the ability of myofibrils to withstand and repair mechanical damage, yet how adult muscles remodel damaged myofibrils remains poorly understood. Here, we establish a Drosophila model that allows the induction and longitudinal visualization of extensive myofibril damage and recovery in intact adult femur muscles. Sustained muscle depolarization caused extensive disruption of myofibrillar organization, with severe damage characterized by near-complete loss of Z-disc structures. Remarkably, myofibril architecture and muscle function were largely restored within days, revealing a substantial capacity for myofibril reconstruction in adult femur muscles. We identified two distinct states of myofibril damage, mild and severe, with mild damage appearing before severe damage during aging, suggesting a progressive process of myofibril deterioration and repair failure. We further show that filamins mechanosignaling is required for efficient myofibril remodeling. Following damage, wild-type filamin redistributes from the Z-disc and accumulates outside the myofibrils, whereas constitutively open filamin remains Z-disc-associated and constitutively closed filamin redistributes but results in increased damage and impaired recovery. These findings suggest that effective repair requires dynamic transitions between filamin conformational states and that filamin redistribution is an active component of the damage response rather than simply a consequence of muscle injury. During aging, filamin progressively redistributes from the Z-disc and muscle damage accumulates, with severe damage increasing after the appearance of mild damage. Together, our findings reveal a previously unappreciated capacity of adult muscle to reassemble damaged myofibrils and identify filamin mechanosignaling as a key component of this repair process, providing a framework for understanding how defective mechanosensing may contribute to age-related muscle decline and muscle disease.

cell biology↗