Search bioRxiv⌕ Search

Biology subjects

Erisken, C.

Publications and source records attributed to Erisken, C..

3 recordsLinked to original sources

Microgradients in porosity and canal diameter in femur bone

Bone exhibits hierarchical structural gradients that optimize mechanical performance and regenerative potential. Longitudinal and radial variations in cortical porosity and canal architecture influence load distribution, vascularization, and remodeling. Understanding these gradients is essential for designing scaffolds and implants that mimic native bone structure and function. This study quantified longitudinal and radial microgradients in cortical porosity and canal diameter along the rabbit femur and explored their implications for bone regeneration and repair implant design. Rabbit femora were divided into proximal, mid-shaft, and distal regions. High-resolution micro-computed tomography quantified cortical thickness, porosity, and canal diameter along radial and longitudinal axes in micron-scale resolutions. Compressive mechanical testing of cortical slices determined local moduli, which were correlated with microstructural parameters to establish structure-function relationships. Cortical thickness peaked at the mid-shaft and decreased toward both ends. Porosity and canal diameter increased radially toward the medullary cavity and longitudinally toward the bone ends. Upto 500 micron cortical thickness from the outer surface toward modullary cavity, porosity and canal diameter ranged, respectively, from ~5% and 40 {micro}m at the mid-shaft to ~40% and 110 {micro}m at the ends. At 750 micron cortical thickness, porosity and canal diameter ranged, respectively, from ~5% and 50 {micro}m at the mid-shaft to ~80% and 200 {micro}m at the ends. As expected, compressive moduli declined linearly with increasing porosity and canal size. The mid-shaft, with the lowest porosity and smallest canals, exhibited the highest modulus of around 15{square}MPa, which decreased to 5{square}MPa toward the ends. The rabbit femur displays distinct longitudinal and radial microgradients in porosity and canal architecture that govern local stiffness. These gradients define structural benchmarks for designing functionally graded tissue engineering scaffolds and bone implants that replicate native tissue structure and stiffness transitions to promote osteoconduction, osteoinduction, osteogenesis in bone regeneration and improve osseointegration of bone implants.

bioengineering↗

Advanced Bioprinting of Hydrogels with Controlled Mineral Gradients for Regenerative Engineering of the Osteochondral Interface

The osteochondral (OC) interface exhibits a mineral gradient in the subchondral bone and articular cartilage interface, varying in thickness by several hundred micrometers across different species. Disruptions to this interface can cause severe damage to OC tissues, leading to osteoarthritis (OA), a debilitating and irreversible condition. Regenerative engineering approaches hold promise for addressing this issue by replicating the natural architecture and composition of native OC interface within a biomaterial scaffold. This study introduces a novel one-step bioprinting process using a twin-screw extruder that facilitates the fabrication of a unitary synthetic graft (USG), which mimics the native OC interfaces mineral concentration gradient. The newly developed USG is composed of an agarose-based cartilage layer and a bone layer, which consists of agarose enriched with 20% hydroxyapatite (w/vol). The USG features a gradient interface with the mineral concentration seamlessly transitioning from 0 to 20wt% from the cartilage to the bone layer. The mineral gradients in the USG and the native tissue were documented using thermogravimetric analysis (TGA), micro-CT, and energy dispersive x-ray (EDX). TGA revealed that the gradient transition length in the graft (647{+/-}21m) compared well to that of native OC tissue (633{+/-}124m) harvested from bovine knee. The strain sweep and frequency sweep tests in oscillatory shear evaluated the linear viscoelastic properties of the grafts, indicating a dominant storage modulus over loss modulus similar to that of native OC tissues. Additionally, the compressive and stress relaxation behaviors of the USGs were quantified using multi-extensional tests, highlighting the grafts ability to maintain structural integrity under mechanical stress. Furthermore, viability assays performed after bioprinting showed that chondrocytes and human fetal osteoblast cells successfully integrated and survived within their designated regions of the graft. The USGs engineered in this study exhibit properties that make them promising candidates for regenerating OC defects and restoring knee joint functionality.

bioengineering↗

Rabbit Heart Bioartificial Tissue: Perfusion Decellularization and Characterization

Despite new approaches in the treatment of cardiovascular disease (CVD) such as percutaneous coronary intervention, coronary artery bypass graft, and left ventricular assist devices, which cannot fully compensate for the effectiveness of the original heart, heart transplantation still remains as the most effective solution. A growing body of literature recognizes the importance of developing a whole heart constructed from living tissues to provide an alternative option for patients suffering from diseases of the cardiovascular system. A potential solution that shows a promise is to generate cell-free, i.e., decellularized, scaffolds using native heart tissue to be later cellularized and transplanted. This study reports the decellularization process and efficiency in an effort to create a whole heart scaffold. The hearts harvested from rabbits were perfused and the final bioartificial scaffolds were characterized for the efficiency of decellularization in terms of DNA content, collagen, and glycosaminoglycan. The compressive biomechanical properties of decellularized and native hearts were also determined and compared. Findings revealed that the DNA content of decellularized hearts was significantly reduced while keeping collagen and GAG content unchanged. Biomechanical properties of the hearth became inferior upon removal of the nuclear material. Decellularized hearts have significant importance in treating CVD as they serve as bioartificial hearts, providing a more clinically relevant model for potential human use. Future work will focus on the recellularization of the heart using induced pluripotent or embryonic stem cells to test its functionality.

bioengineering↗