Search bioRxiv⌕ Search

Biology subjects

Goodyear, C. S.

Publications and source records attributed to Goodyear, C. S..

3 recordsLinked to original sources

iPSC-Derived Chondroprogenitors as a Promising Cell Source for Cartilage Engineering: A Comparison with MSCs in Unmodified and Peptide-Functionalized Alginate Hydrogels

Articular cartilage degeneration is a hallmark of degenerative joint diseases, yet its limited regenerative capacity poses significant challenges for tissue engineering. While mesenchymal stem cells (MSCs) are the most commonly employed cell type in cartilage tissue engineering, they exhibit donor variability, restricted expansion capacity, and tendencies toward fibrocartilage formation and hypertrophic differentiation. Human induced pluripotent stem cell-derived chondroprogenitors (iCPs) represent a promising alternative, offering scalable production of developmentally relevant cells with intrinsic chondrogenic commitment. However, their performance within three-dimensional biomaterial scaffolds remains largely unexplored. Here, we compared chondrogenic differentiation of iCPs and MSCs within alginate hydrogels of varying stiffness (0.37 - 4.55 kPa) exhibiting physiologically relevant stress relaxation properties. Intermediate stiffness (2% alginate, ~2.17 kPa) optimally supported chondrogenesis for both cell types. While MSCs differentiated as single cells, iCPs spontaneously self-organized into cartilaginous aggregates without requiring a separate pellet pre-culture step, showing significantly higher hyaline indices and reduced COL10 expression, despite initial low viability in hydrogels. To further enhance chondrogenesis, we functionalized 2% alginate gels with RGD and HAVDI peptides mimicking integrin- and cadherin-mediated signaling. HAVDI/RGD functionalization significantly enhanced hyaline cartilage marker expression in both cell types, with iCPs exhibiting superior matrix composition characterized by elevated aggrecan and SOX9 expression and reduced COL10 and MMP13 compared to MSCs. These findings establish iCPs as a promising cell source for cartilage tissue engineering and disease modeling, particularly within biomaterials integrating mechanical and bioactive cues that recapitulate the native cartilage microenvironment.

cell biology↗

Beyond mean trabecular separation: decomposing metaphyseal marrow space into local trabecular spacing and marrow cavity expansion

Micro-computed tomography ({micro}CT) is widely used to assess trabecular bone microarchitecture, with trabecular separation (Tb.Sp) among the core parameters recommended for reporting. Tb.Sp is typically expressed as a single volume-weighted mean derived from maximal sphere fitting, although the underlying distribution of local separation values is rarely examined. Here, we show that Tb.Sp distributions in metaphyseal trabecular bone are frequently non-Gaussian and bimodal or multimodal. Using {micro}CT datasets from three established models of osteoporosis, spinal cord injury (SCI), ovariectomy (OVX), and ageing, we demonstrate that this behaviour is most evident in metaphyseal trabecular bone and is less apparent in epiphyseal trabecular bone or trabecular thickness distributions. We further show that multimodal metaphyseal Tb.Sp distributions correspond to two spatially distinct contributions within the marrow space: lower-diameter local separation within the residual trabecular network, and higher-diameter regions associated with larger contiguous marrow cavities. Based on this observation, we introduce a simple extension to standard morphometric analysis in which Tb.Sp is decomposed into local trabecular separation (Tb.SpL) and marrow cavity separation (Tb.SpM). Tb.Sp decomposition revealed model-specific patterns of trabecular deterioration. SCI was characterised predominantly by increased Tb.SpM, consistent with expansion of larger marrow cavities, whereas OVX showed a more subtle or distributed alteration. Ageing showed changes in both Tb.SpL and Tb.SpM, with the higher-diameter component becoming most prominent in older animals. Together, these findings demonstrate that mean Tb.Sp can mask structurally distinct forms of metaphyseal marrow-space organisation and support reporting distributional descriptors, and where appropriate Tb.SpL and Tb.SpM, alongside conventional Tb.Sp.

bioengineering↗

LIMK Inhibition and Metformin Block Mitochondrial Transfer Overcoming Macrophage Driven Therapy Resistance in Acute Myeloid Leukaemia

Chemoresistance is a major contributor to poor clinical outcomes in AML patients and can arise from interactions between AML cells and the bone marrow microenvironment (BME). How immune cells, particularly macrophages (M{varphi}s), facilitate this process requires better clarification. This study shows that M2-like M{varphi}s protect AML cells from apoptosis induced by daunorubicin (DNR) and cytarabine (Ara-C). This protection occurs via co-culture and is linked to enhanced mitochondrial transfer from M{varphi}s to AML cells. M{varphi}s interacted with AML cells via tunneling nanotube (TNT)-like structures. Furthermore, inhibition of mitochondrial transfer using cytochalasin B reduced the protective effect, indicating that mitochondria mediate this process. M{varphi}s transferred functional mitochondria to AML cells as evidenced by enhanced metabolic capacity and reduced reactive oxygen species levels in AML cells under chemotherapy stress. TH-257 (LIMK inhibitor) and metformin blocked mitochondrial transfer and M{varphi}-driven chemoprotection. Moreover, increased transcript expression levels of RhoC and cofilin correlate with inferior overall survival in AML patients. These findings suggest that M2-like M{varphi}s contribute to chemoresistance through TNT-mediated mitochondrial transfer and the LIMK-Cofilin pathway, identifying potential therapeutic targets to circumvent chemoresistance in AML.

cancer biology↗