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Rauff, A.

Publications and source records attributed to Rauff, A..

2 recordsLinked to original sources

A Multi-Institution Biobanking Pipeline for Primary Human Satellite Cells and Fibro-Adipogenic Progenitors

Satellite Cells (SCs) and Fibro-Adipogenic Progenitors (FAPs) are muscle-resident cell populations crucial for maintaining skeletal muscle homeostasis and coordinating regeneration after injuries. However, primary human SCs and FAPs are difficult to co-isolate, and their broad use in translational research has been limited by a lack of standardized biobanking protocols. Recently, we published a protocol for efficient co-isolation of SCs and FAPs from human skeletal muscle. Here, we extend those efforts to establish a comprehensive pipeline for the cryopreservation, cold-chain transport, and independent-site utilization of human SCs and FAPs. Cells taken through this pipeline maintained lineage-specific markers, including Pax7, MyoD and CD56 for SCs, and PDGFR and TE7 for FAPs, indicating retention of their pre-biobanking phenotype. Furthermore, SCs demonstrate robust myogenic differentiation capacity, and FAPs demonstrate both fibrogenic and adipogenic differentiation capacity post-transport. Finally, previously biobanked SCs were incorporated into in vitro 3D muscle constructs, demonstrating their utility for human-based New Approach Methodologies (NAMs). This framework for multi-site collaboration facilitates broader access to human primary muscle cells, which will improve the scalability and translatability of human-based NAMs for skeletal muscle research.

cell biology↗

Melt Electrowritten Microfiber-Hydrogel Composite Scaffolds for Aligned Muscle Tissue Engineering

Effective regeneration of skeletal muscle with highly aligned fiber architecture remains a significant challenge in tissue engineering. Structural alignment of muscle constructs along with mechanical integrity are crucial for effective engineering of grafts and microphysiological systems. This study engineered a novel composite microfiber-hydrogel platform using melt-electrowriting (MEW) to fabricate high precision microfiber scaffolds from poly({varepsilon}-caprolactone). Three MEW scaffold designs (Isotropic, Aligned T with perpendicular reinforcements, and Aligned X with angled fiber bridges) were developed and fabricated into composite scaffolds with collagen hydrogels and seeded with myoblasts. Aligned X scaffolds with cross-bridge reinforcements exhibited enhanced mechanical strength and continuous alignment without structural interruption that led to highly aligned and multinucleated cellular organization. The incorporation of collagen hydrogel in composite constructs improved cell seeding efficiency, viability, and metabolic activity compared to scaffolds alone. All scaffold designs provided fiber reinforcement that prevented hydrogel contraction over extended culture periods. Critically, the Aligned X composite constructs significantly increased myoblast differentiation and myotube maturation, evidenced by increased myosin heavy chain expression and myotube diameter. Overall, this composite microfiber-hydrogel approach provides a scalable, structurally stable, and highly aligned platform tailored for enhanced muscle tissue engineering applications, representing an advancement towards addressing clinical challenges associated with muscle injuries.

bioengineering↗