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Biology subjects

Maung, M.

Publications and source records attributed to Maung, M..

2 recordsLinked to original sources

Nanovibrational stimulation preferentially enhances osteogenic responses in zebrafish

Mechanical cues are key regulators of bone formation, yet their potential as therapeutic stimuli remains incompletely explored in vivo. Nanovibrational stimulation, which delivers low-amplitude, high-frequency mechanical input, has been shown to promote osteogenic differentiation in vitro, and rodent studies have similarly demonstrated osteogenic effects. However, its impact on other cellular systems at the whole-organism level remains poorly understood. Here, we demonstrate that nanovibrational stimulation enhances myogenic differentiation in vitro before investigating its effects on skeletal development and tissue specificity in zebrafish. Larval zebrafish exposed to nanovibrational stimulation exhibited increased osteoblast numbers and enhanced bone formation relative to controls. In adult zebrafish, nanovibration increased the osteoblast response to a fracture-like injury, indicating enhanced osteogenic activity during repair. To assess tissue specificity, we examined additional cell types and systems relevant to skeletal regeneration, including cartilage, muscle, vasculature and innate immune cells. Although nanovibrational stimulation promoted myogenic differentiation of C2C12 cells in vitro, its effects on muscle and other non-skeletal tissues in zebrafish larvae were comparatively limited. These findings suggest that nanovibrational stimulation exerts a preferential effect on osteogenic processes in vivo. These findings demonstrate that nanovibrational stimulation preferentially enhances osteoblast-mediated bone formation and skeletal injury responses in zebrafish, without causing significant perturbations in other tissues. Our results establish zebrafish as a tractable in vivo model for investigating vibration-induced mechanobiological processes, providing a more physiologically relevant representation of tissue-level mechanotransduction than conventional two-dimensional culture systems. Furthermore, these findings highlight the potential of nanovibrational stimulation as a non-invasive strategy to promote bone regeneration and fracture repair.

physiology↗

3-Dimensional Piezoelectric Fibrous Constructs for Muscle Regeneration

Poly(3-hydroxybutyrate-co-3-hydroxyvalerate) (PHBV), a biocompatible and biodegradable polymer with inherent piezoelectricity, holds promise for developing biomimetic scaffolds for tissue regeneration. Its ability to generate electrical charges in response to mechanical stimulation, mimicking the electromechanical environment in native tissues like muscle, makes it attractive. This study focuses on harnessing PHBV properties to engineer electrospun fibrous scaffolds for muscle regeneration. We investigated processing parameters, such as solvent combinations, polymer concentrations, and tip-to-collector distances on fiber morphology, porosity, and piezoelectric properties. We observed a 25-fold increase in the quasi-static piezoelectric coefficient (d33 from 0.117 to 2.9 pC/N) for scaffolds with controlled porosity. This piezoelectric activity was corroborated by dynamic Vector Network Analyzer (VNA) measurements, which identified an electromechanical coupling factor (kt) of 13.86%. This enhanced electromechanical response highlights their potential for stimulating cellular responses for tissue regeneration. The mechanical properties of these scaffolds demonstrated their ability to undergo strain up to 40%, within the optimal range for muscle tissue engineering and compatibility with muscle functionality. Cytocompatibility of PHBV scaffolds was confirmed, and preliminary studies suggest their potential to support myogenic differentiation. This research highlights PHBV-based biomimetic scaffolds potential for muscle regeneration and sets groundwork for developing advanced therapies addressing muscle injury and disease.

bioengineering↗