Back

Tissue Engineering Part A

SAGE Publications

All preprints, ranked by how well they match Tissue Engineering Part A's content profile, based on 15 papers previously published here. The average preprint has a 0.01% match score for this journal, so anything above that is already an above-average fit. Older preprints may already have been published elsewhere.

1
Open spaced ridged hydrogel scaffolds containing TiSAMP surface chemistry promotes regeneration and recovery following spinal cord injury.

Siddiqui, A. M.; Thiele, F.; Stewart, R. N.; Rangnick, S.; Weiss, G. J.; Chen, B. K.; Silvernail, J. L.; Strickland, T.; Nesbitt, J. J.; Lim, K.; Schwarzbauer, J. E.; Schwartz, J.; Yaszemski, M. J.; Windebank, A. J.; Madigan, N. N.

2022-09-09 neuroscience 10.1101/2022.09.07.506969 medRxiv
Top 0.1%
19.2%
Show abstract

The spinal cord has poor ability to regenerate after injury, which may be due to cell loss, cyst formation, inflammation, and scarring. A promising approach to treat spinal cord injury (SCI) is the use of biomaterials. We have developed a novel hydrogel scaffold fabricated from oligo(poly(ethylene glycol) fumarate) (OPF) as a 0.08 mm thick sheet containing polymer ridges and a cell-attractive surface chemistry on the other side. When the cells are cultured on OPF with the chemical patterning, the cells attach, align, and deposit ECM along the direction of the pattern. Animals implanted with the rolled scaffold sheets had greater hindlimb recovery compared to the multichannel scaffold control, likely due to the greater number of axons growing across. Inflammation, scarring, and ECM deposits were equal across conditions. Overall, the results suggest that the scaffold sheets promote axon outgrowth that can be guided across the scaffold, thereby promoting hindlimb recovery.

2
Dynamic Compression of Spheroid-Laden Alginate Granular Composites Induces Hypertrophic Chondrocyte Phenotype

Ramos-Rodriguez, D.; Filler, A. C.; Palle, S. R.; Fok, S. W.; Wheeler, E. E.; Leach, K.

2026-03-17 bioengineering 10.64898/2026.03.14.711819 medRxiv
Top 0.1%
17.0%
Show abstract

Hypertrophic cartilage is a promising bone repair strategy by producing a mineralizable matrix that transitions to bone through endochondral ossification. Current approaches require large cell numbers and costly recombinant factors to induce chondrogenesis. Here, we developed a composite granular scaffold using photocrosslinkable alginate microgels, cell-secreted decellularized extracellular matrix (dECM), and mesenchymal stromal cell (MSC) spheroids under dynamic compressive loading for hypertrophic cartilage formation. Incorporation of dECM into MSC spheroids enhanced expression of chondrogenic markers and supported the hypertrophic phenotype, evidenced by increased VEGFA and SPP1 expression and ALP activity. Dynamic loading further increased spheroid sprouting and scaffold mineralization. Histology confirmed mature hypertrophic cartilage conducive to bone formation. Upregulation of hypertrophic and osteogenic markers was associated with YAP1 activation, linking compressive loading to mechanotransduction to drive hypertrophic cartilage formation. These results demonstrate that dynamic compressive loading, cell aggregates, and scaffold granular macroporosity synergistically yield hypertrophic cartilage.

3
Epigenetic Priming Enhances Chondrogenic Potential of Expanded Chondrocytes for Cartilage Repair

Scott, A. K.; Gallagher, K. M.; Schneider, S. E.; Kurse, A.; Neu, C. P.

2022-10-24 bioengineering 10.1101/2022.10.23.513439 medRxiv
Top 0.1%
15.1%
Show abstract

Expansion of chondrocytes presents a major obstacle in the cartilage regeneration procedure matrix-induced autologous chondrocyte implantation (MACI). Dedifferentiation of chondrocytes during the expansion process leads to the emergence of a fibrotic (chondrofibrotic) phenotype that decreases the chondrogenic potential of the implanted cells. We aim to 1) determine the extent that chromatin architecture of H3K27me3 and H3K9me3 remodels during dedifferentiation and persists when expanded chondrocytes are transferred to a 3D culture; and 2) to prevent this persistent remodeling to enhance the chondrogenic potential of expanded chondrocytes. Chromatin architecture remodeling of H3K27me3 and H3K9me3 was observed at 0, 8 and 16 population doublings in a two-dimensional (2D) culture and after encapsulation of the expanded chondrocytes in a three-dimensional (3D) hydrogel culture. Chondrocytes were treated with inhibitors of epigenetic modifiers (epigenetic priming) for 16 population doublings and then encapsulated in 3D hydrogels. Chromatin architecture of chondrocytes and gene expression were evaluated before and after encapsulation. We observed a change in chromatin architecture of epigenetic modifications H3K27me3 and H3K9me3 during chondrocyte dedifferentiation. Although inhibiting enzymes that modify H3K27me3 and H3K9me3 did not alter the dedifferentiation process in 2D culture, applying these treatments during the 2D expansion did increase the expression of select chondrogenic genes and protein deposition of type II collagen when transferred to a 3D environment. Overall, we found that epigenetic priming of expanded chondrocytes alters the cell fate when chondrocytes are later encapsulated into a 3D environment, providing a potential method to enhance the success of cartilage regeneration procedures.

4
Regenerative MRL/MpJ Tendon Cells Exhibit Sex Differences in Morphology, Proliferation, Mechanosensitivity, and Cell-Matrix Remodeling

Marvin, J. C.; Brakewood, M. E.; Poon, M. L. S.; Andarawis-Puri, N.

2022-09-16 bioengineering 10.1101/2022.09.13.507820 medRxiv
Top 0.1%
14.8%
Show abstract

Clinical and animal studies have reported the influence of sex on the incidence and progression of tendinopathy, which results in disparate structural and biomechanical outcomes. However, there remains a paucity in our understanding of the sex-specific biological mechanisms underlying effective tendon healing. To overcome this hurdle, our group has investigated the impact of sex on tendon regeneration using the super-healer Murphy Roths Large (MRL/MpJ) mouse strain. Despite a shared scarless healing capacity, we have shown that MRL/MpJ patellar tendons exhibit sexually dimorphic regulation of gene expression for pathways involved in fibrosis, cell migration, and extracellular matrix (ECM) remodeling following an acute midsubstance injury. Moreover, we previously found decreased matrix metalloproteinase-2 (MMP-2) activity in female MRL/MpJ tendons after injury. Thus, we hypothesized that MRL/MpJ scarless tendon healing is mediated by sex-specific and temporally distinct orchestration of cell-ECM interactions. Accordingly, the present study comparatively evaluated MRL/MpJ tendon cells under two-dimensional (glass) and three-dimensional (nanofiber scaffolds) culture platforms to examine cell behavior under biochemical and biophysical cues associated with tendon homeostasis and healing. Female MRL/MpJ cells showed reduced 2D migration and spreading area accompanied with enhanced mechanosensing, 2D ECM alignment, and fibronectin-dependent cell proliferation. Interestingly, female MRL/MpJ cells cultured on 3D isotropic scaffolds showed diminished ECM deposition and alignment. Regardless of culture condition and sex, MRL/MpJ cells outperformed B6 cells and elicited a universal regenerative cellular phenotype. These results illustrate the utility of these in vitro systems for elucidating regenerative tendon cell biology, which will facilitate the long-term development of more equitable therapeutics.

5
Human cartilage progenitor cells from ear, nose, rib, and joint have a robust, stable phenotype for cartilage repair

Ghavimi, S. A. A.; Gehret, P. M.; Giordano, T.; Smith, K. W. Y.; Gottardi, R.

2022-07-02 bioengineering 10.1101/2022.06.30.498323 medRxiv
Top 0.1%
12.2%
Show abstract

BackgroundCartilage progenitor cells (CPCs) are a small but highly proliferative cell population that resides within cartilage. Joint cartilage CPCs have a high chondrogenic potential and superior cartilage formation characteristics; however, CPCs from other cartilage sources more accessible for translation such as ear, nose, and rib are broadly unexplored. Our study illuminates the differences between CPCs from these four cartilages, their corresponding tissue chondrocyte (CC), and bone marrow-derived mesenchymal stem cell (MSC). MethodsCPCs subtypes were isolated from pediatric cartilage via fibronectin selection, immunophenotyped by flow cytometry and compared to MSCs. Trilineage differentiation capacity was assessed via histology and qRT-PCR. Next, triiodothyronine was used to hypertrophically challenge each CPC subset and their corresponding chondrocyte population. After 28 days cartilage pellets were assessed via histology, immunohistochemistry, and qRT-PCR. FindingsEach CPC subset possessed a specific immunophenotypic signature with CD56 as a potential common marker. All CPC subsets proliferated 2-fold faster than MSCs and 4-fold faster than CCs. Additionally, CPCs had a substantially reduced propensity for osteogenic differentiation and very limited adipogenic capacity by histology and gene expression. Finally, all CPC subsets resisted the hypertrophic challenge more than the corresponding chondrocyte population marked by less collagen X secretion and downregulation of hypertrophy associated genes. InterpretationCPCs represent a promising cell type for cartilage regeneration. The ease of accessibility of the ear and nose CPCs present opportunities for new translational approaches and reduced clinical timelines. FundingCHOP Research Institute, Frontier Program in Airway Disorders of CHOP, NIH (R21HL159521), NSF-GRFP (DGE-1845298)

6
Tendon-like cellular and matrix maturation in scaffold-free three-dimensional tendon cell culture using mouse tendon cells

Lee, Y.; Park, N. R.; Heo, S.-J.; Mauck, R. L.; Corr, D. T.; Dyment, N. A.; Joeng, K. S.

2022-06-11 bioengineering 10.1101/2022.06.08.495368 medRxiv
Top 0.1%
12.0%
Show abstract

Tendons transmit mechanical forces between muscle and bone. Their biomechanical function requires high tensile strength provided by highly organized collagen fibers. Tenocytes mainly drive tendon growth via extracellular matrix (ECM) production and organization. The biological mechanisms regulating tenocyte differentiation and morphological maturation have not been well-established, partly due to the lack of reliable in vitro systems that produce highly aligned collagenous tissues. In this study, we developed a scaffold-free, three-dimensional (3D) tendon culture system using mouse tendon cells and a differentially adherent growth channel. TGF{beta} treatment promoted tendon-like structure in the peripheral layer of the constructs with decreased cell density, decreased cell proliferation, increased thickness, and more elongated cells within highly aligned extracellular matrix. The constructs were used to understand the function of TGF{beta} signaling in tenogenic differentiation, collagen fibrillogenesis, and biomechanical properties. This scaffold-free 3D constructs system can serve as a reliable in vitro system to study underlying biological mechanisms that regulate cellular and matrix maturation in tendon development and growth.

7
Poly-L-Ornithine Coated Plant Scaffolds Support Motor Recovery in Rats after Traumatic Spinal Cord Injury

Couvrette, L.; Walker, K.; Bayat, A.; Modulevsky, D.; Laliberte, A.; Cuerrier, C.; Leblanc Latour, M.; Hickey, R.; Boudria, R.; Monty, R.; Obhi, R.-J.; Shore, I.; Galuta, A.; Tsai, E.; Bui, T.; Pelling, A. E.

2025-02-08 bioengineering 10.1101/2025.02.05.636658 medRxiv
Top 0.1%
11.7%
Show abstract

Spinal cord injury (SCI) is a debilitating neurological condition with far-reaching consequences for patients, including loss of motor function and significant limitations to quality of life. Implantable biomaterials have emerged as a therapeutic strategy to modulate the SCI microenvironment and facilitate regeneration of axons. In this study, plant-derived lignocellulosic scaffolds coated with poly-L-ornithine (PLO) are shown to support locomotor recovery and neural tissue repair in a rat model of spinal cord injury. Upon complete transection of the spinal cord, animals were implanted with a plant-derived scaffold coated in poly-L-ornithine, a positively charged amino acid chain that is known to promote neural stem cell differentiation into neurons and enhance myelin regeneration. Recovery of motor function was evaluated by the Basso, Beattie and Bresnahan (BBB) locomotor scale as well as the Karolinska Institutet Swim Assessment Tool (KSAT). Retrograde tracing of ascending sensory tracts revealed enhanced regeneration in animals that received the PLO-coated scaffold. Numerous {beta}-III tubulin and neurofilament 200 positive fibers may indicate axonal sprouting within the lignocellulosic scaffold and LFB staining highlights myelination around the PLO-coated scaffold. These results demonstrate the potential of plant-based biomaterials in a rat model of acute spinal cord injury and highlight their enhancement after PLO functionalization.

8
Detergent-Free Decellularization Preserves the Structural and Biological Integrity of Murine Tendon

Marvin, J. C.; Mochida, A.; Paredes, J.; Vaughn, B.; Andarawis-Puri, N.

2022-07-13 bioengineering 10.1101/2022.07.11.499615 medRxiv
Top 0.1%
11.1%
Show abstract

Tissue decellularization has demonstrated widespread applications across numerous organ systems for tissue engineering and regenerative medicine applications. Decellularized tissues are expected to retain structural and/or compositional features of the natural extracellular matrix (ECM), enabling investigation of biochemical factors and cell-ECM interactions that drive tissue homeostasis, healing, and disease. However, the dense collagenous tendon matrix has limited the efficacy of traditional decellularization strategies without the aid of harsh chemical detergents and/or physical agitation that disrupt tissue integrity and denature proteins involved in regulating cell behavior. Here, we adapted and established the advantages of a detergent-free decellularization method that relies on Latrunculin B actin destabilization, alternating hypertonic-hypotonic salt and water incubations, nuclease-assisted elimination of cellular material, and protease inhibitor supplementation under aseptic conditions. Compared with previous tendon decellularization studies, our method minimized collagen denaturation while adequately removing cells and preserving bulk tissue alignment and mechanical properties. Furthermore, we demonstrated that decellularized tendon ECM-derived coatings isolated from different mouse strains, injury states (i.e., naive and acutely injured/provisional), and anatomical sites harness distinct biochemical cues and robustly maintain tendon cell viability in vitro. Together, our work provides a simple and scalable decellularization method to facilitate mechanistic studies that will expand our fundamental understanding of tendon ECM and cell biology. Impact StatementIn this study, we present a decellularization method for tendon that does not rely on any detergents or physical processing techniques. We assessed the impact of detergent-free decellularization using tissue, cellular, and molecular level analyses and validated the preservation of tendon structural organization, collagen molecular integrity, and ECM-associated biological cues that are essential for studying physiological cell-ECM interactions. Lastly, we demonstrated the success of this method on healthy and injured tendon environments, across mouse strains, and for different types of tendons, illustrating the utility of this approach for isolating the contributions of biochemical cues within unique tendon ECM microenvironments.

9
Decellularized Meniscus (MEND) as a biomaterial that supports stem cell invasion and chondrogenesis

Bonelli, H. M.; Klessel, S. E.; Barbella, C.; Smith, K. W. Y.; Gottardi, R.

2025-10-17 bioengineering 10.1101/2025.10.16.682874 medRxiv
Top 0.1%
10.8%
Show abstract

BACKGROUNDCartilage damage affects 25 million people globally each year. Tissue engineering strategies such as microfracture and matrix induced autologous chondrocyte implantation (MACI) are currently being used in the clinic; however, they are accompanied by their own limitations such as donor site morbidity, rapid clearance from the injury site, and extensive cost. To overcome these limitations, the tissue engineering field has shown increasing interest in the use of decellularized extracellular matrix (dECM) biomaterials due to their heightened integration with native tissue and regeneration rates. METHODSThe Gottardi Lab has developed a new dECM material sourced from porcine meniscus decellularization (MEND), in which elastin fibers are removed via enzymatic digestion, resulting in channels that can be easily recellularized. RESULTSIn this work we demonstrate that MEND can be seeded with bone-marrow derived mesenchymal stem cells (MSCs), achieving a uniform distribution of cell nuclei throughout the cross section of the scaffold. We also show that MEND retains its native structure in the presence of MSCs and can support chondrogenesis comparably to other commonly used tissue engineering materials such as methacrylated type I collagen and gelatin/hyaluronic acid hydrogels. CONCLUSIONOverall, MEND is a promising new dECM biomaterial for cartilage regeneration.

10
mini-MEndR: A miniaturized 96-well predictive assay to evaluate muscle stem cell mediated repair

Gulati, N.; Davoudi, S.; Xu, B.; Rjaibi, S. T.; Jacques, E.; Pham, J.; Fard, A.; McGuigan, A. P.; Gilbert, P. M.

2023-01-21 bioengineering 10.1101/2023.01.20.524941 medRxiv
Top 0.1%
10.6%
Show abstract

Functional evaluation of molecules that are predicted to promote stem cell mediated endogenous repair often requires in vivo transplant studies that are low throughput and hinder the rate of discovery. Here, we offer a strategy to rapidly test and prioritize molecules for functional validation studies. We miniaturized, simplified and expanded the functionality of a previously developed muscle endogenous repair (MEndR) in vitro assay that was shown to capture significant events of the first week of the in vivo muscle endogenous repair process. The new "mini-MEndR assay" consists of miniaturized cellulose scaffolds designed to fit in 96-well plates. The scaffold pores are infiltrated with myoblasts encapsulated in a fibrin-based hydrogel to form thin, engineered skeletal muscle tissues. By evaluating multiple commercially available human primary myoblast lines in 2D and 3D culture, we establish quality assurance metrics for cell line selection that standardize myotube template quality. Pre-adsorbing thrombin to the cellulose scaffolds facilitates in situ tissue polymerization, a critical modification that enables users proficient in myoblast culture to rapidly acquire myotube template fabrication expertise. Following the generation of the 3D myotube template, muscle stem cells (MuSCs), enriched from digested mouse skeletal muscle tissue using an improved magnetic-activated cell sorting protocol, are engrafted onto the engineered human muscle template. A regenerative milieu is then introduced by injuring the muscle tissue with a myotoxin. Addition of a known modulator of MuSC mediated repair recapitulates the in vivo outcomes (enhanced muscle production and Pax7+ cell expansion), but only in the presence of both the stem cells and the regenerative milieu. By fluorescently labeling the mouse MuSCs, we demonstrate the feasibility of co-evaluating human and mouse Pax7+ cell responses to drug treatment, thereby expanding the utility of the assay. Importantly, phenotypic data is collected with a high-content imaging system and is analyzed using CellProfiler-based image analysis pipelines. The miniaturized predictive assay offers a simple, scaled platform with which to co-investigate human and mouse skeletal muscle endogenous repair molecular modulators, and thus is a promising strategy to accelerate the muscle endogenous repair discovery pipeline.

11
Unravelling the distinct phenotype and mechanosensitive properties of different tendon cell populations.

Grossemy, S. E.; Zamboulis, D. E.; Khatib, N. S.; Fazal, M. R.; Gains, C.; Giannopoulous, A.; Hopkins, T.; Bevan, C.; Aggarwal, Y.; Knight, M.; Screen, H. R.

2026-01-09 bioengineering 10.64898/2026.01.08.698354 medRxiv
Top 0.1%
9.8%
Show abstract

Tendinopathy arises from maladaptive cellular responses, though the drivers remain unclear. Here we identify and characterise a previously undescribed tendon cell population residing within interfascicular matrix (IFM), demonstrating its importance as the primary mechanosensitive cell in tendon. We describe the first successful isolation and long-term culture of primary IFM and fascicular matrix (FM) cells, enabling direct comparison of their phenotypes and mechanosensitivity. IFM cells exhibited a potent response to stiff substrates, displaying cytoskeletal remodelling, rapid drifting of tenogenic and ECM gene expression, and proliferative decline, while FM cells remained largely unaltered. Crucially, transferring IFM cells to compliant, IFM-like substrates recovered their proliferative capacity, morphology, gene expression. This work defines IFM cells as the primary mechanosensitive tendon cell population, with implications for tendon ageing, injury, and regeneration. Importantly, it also enables identification of cell surface markers to isolate this population from other tendons, opening new avenues to explore mechanobiology-guided tendon therapeutics.

12
Reciprocal macrophage-MSC crosstalk drives immunomodulatory and regenerative phenotypes in a mineralized collagen scaffold

Kolliopoulos, V.; Polanek, M.; Vidana Gamage, H.; Wong Yan Ling, M.; Tiffany, A.; Nelson, E. R.; Spiller, K.; Harley, B.

2026-03-12 bioengineering 10.64898/2026.03.10.710803 medRxiv
Top 0.1%
9.5%
Show abstract

Critical sized craniomaxillofacial bone defects do not heal naturally and often exhibit chronic inflammatory responses that restrict regeneration. It is increasingly apparent that biomaterials must facilitate dynamic crosstalk between immune cells, such as macrophages, and osteoprogenitors to resolve inflammation and accelerate regeneration. Here, we evaluate interactions between macrophages in a neutral (M0) or pro-inflammatory (M1) state with mesenchymal stem cells (MSCs) in a basal or licensed state within a mineralized collagen scaffold. We reveal that MSC-macrophage crosstalk influences significant changes in osteoprogenitor cell differentiation and immune cell polarization. Notably, crosstalk between MSCs and macrophages drives an early-stage inflammatory response, which enhances the immunomodulatory activity of MSCs via secretion of IL-6, an effect that is heightened for already licensed MSCs. The presence of macrophages in the co-cultures upregulated osteogenic (ALPL, BMP2, COL1A2, and RUNX2) and angiogenic genes (ANGPT1) in basal MSC groups. Further, MSC-macrophage interactions subsequently drive increased M2-like macrophage polarization as early as 7 days of culture, as indicated by surface marker expression. These findings show that biomaterial scaffolds can be leveraged as mediators of MSC-mediated immunomodulation with an emphasis on achieving early-stage pro-inflammatory phenotypes that drive subsequent macrophage polarization and markers of increased regenerative potency.

13
Osteoblasts Exert a Pro-Tumorigenic Effect on Breast Cancer Spheroids Through CXCL5/CXCR2 Signaling In 2D And 3D Bone Mimetic Cultures

Nano, S.; Naqvi, S. M.; Weiner, I.; Volz, N.; Kumar, V.; Littlepage, L. E.; McNamara, L. M.; Niebur, G. L.

2025-12-01 bioengineering 10.1101/2025.11.26.690859 medRxiv
Top 0.1%
9.4%
Show abstract

Bone provides a favorable niche for breast cancer colonization and metastatic progression. Breast cancer cells are attracted to the bone microenvironment where they induce bone cells to resorb bone, which enhances tumor cell proliferation in a positive feedback loop often referred to as the vicious cycle. While this phenomenon is established, the molecular interactions between cancer cells and bone cells are not well defined. CXCL5/CXCR2 signaling has recently been shown to promote breast cancer colonization to the bone. Here, we investigate the effects of osteoblasts and osteocytes on breast cancer cell proliferation in engineered two- and three-dimensional models. We observed that osteoblasts and osteocytes induce proliferative effects on cancer cells. Specifically, bone cells increase cancer proliferation in 2D culture and osteoblasts increase cancer growth more than osteocytes in 3D models. Moreover, osteocyte interaction with cancer cells in 3D models are stiffness dependent. We show that these effects depend on the CXCL5/CXCR2 signaling axis. Taken together, we demonstrate that osteoblasts drive cancer growth in a bone metastatic niche and that this effect can be rescued with CXCL5/CXCR2 inhibition.

14
Integrating vascular and hypertrophic cartilage microtissues to fabricatescaled-up grafts for endochondral bone tissue engineering

Kronemberger, G. S.; Burdis, R.; Correia, C.; Baptista, L.; Kelly, D. J.

2026-07-15 bioengineering 10.64898/2026.07.13.738124 medRxiv
Top 0.1%
8.9%
Show abstract

ABSTRACTThe repair of large bone defects remains a major clinical challenge, in part due to inadequate vascularization and poor integration of graft materials. Tissue engineering strategies that recapitulate the developmental process of endochondral ossification, whereby a cartilage template remodels into bone, have shown significant potential in pre-clinical models of large bone defect healing. However, successfully scaling these approaches to clinically relevant sizes will require the development of strategies to support the rapid vascularization of the graft following implantation in vivo. Here, mechanically reinforced templates were first fabricated by integrating hypertrophic cartilage microtissues derived from human mesenchymal stem/stromal cells (MSCs) within an osteoconductive 3D-printed polycaprolactone (PCL) framework coated with nano-hydroxyapatite (nanoHA). In vitro the cartilage microtissues fused and generated an extracellular matrix rich in sulphated glycosaminoglycans and collagen. To prevascularize these constructs, vascular microtissues derived from a co-culture of endothelial cells and MSCs were incorporated into a central channel within the construct, which generated a microvascular network within the graft in vitro. Following subcutaneous implantation, hypertrophic cartilage templates with ( vascular-channel group) and without ( empty-channel group) this central vascularized channel supported endochondral bone formation. Quantitative microCT and histological analyses revealed significantly greater remaining bone in the empty-channel group, whereas the vascular-channel group supported enhanced vascularization and remodeling of the graft in vivo. These findings support the continued development and testing of a modular biofabrication strategy that combine self-organizing hypertrophic cartilage and vascular microtissues with osteoconductive 3D-printed architectures to generate scalable, prevascularised hypertrophic cartilage templates for endochondral bone repair. Key-words: spheroids, microtissues, hypertrophic cartilage, vascularization, endochondral ossification, bone tissue engineering.

15
Zebrafish skeletal muscle cell cultures: Monolayer to three-dimensional tissue-engineered collagen constructs

Vishnolia, K. K.; Martin, N. R. W.; Player, D. J.; Spikings, E.; Lewis, M. P.

2020-12-11 bioengineering 10.1101/2020.12.10.419168 medRxiv
Top 0.1%
7.9%
Show abstract

Zebrafish (Danio rerio) are a commonly used model organism to study human muscular myopathies and dystrophies. To date, much of the work has been conducted in vivo due to limitations surrounding the consistent isolation and culture of zebrafish muscle progenitor cells (MPCs) in vitro and the lack of physiologically relevant models. Here we report a robust, repeatable, and cost-effective protocol for the isolation and culture of zebrafish MPCs in conventional monolayer (2D) and have successfully transferred these cells to 3D culture in collagen based three-dimensional (3D) tissue-engineered constructs. Zebrafish MPCs cultured in 2D were consistently reported to be Desmin positive reflecting their muscle specificity, with those demonstrating Desmin positivity in the 3D cultures. In addition, mRNA expression of muscle markers specific for proliferation, differentiation and maturation measured from both monolayer and 3D cultures at appropriate developmental stages were found consistent with previously published from other species in vitro and in vivo muscle data. Collagen constructs seeded with zebrafish MPCs were initially characterised for optimal seeding density, followed by macroscopic characterisation (three-fold contraction) of the matrix. Direct comparison between the morphological characteristics (proportion of cells) and gene expression profiles of cells cultured in collagen constructs revealed higher maturation and differentiation compared to monolayer cultures. In this regard, cells embedded in 3D collagen constructs revealed higher fusion index, Desmin positivity, hypertrophic growth, myotube maturity and myogenic mRNA expression when compared to in monolayer. In conclusion, these methods and models developed herein will facilitate in vitro experiments, which would complement in vivo zebrafish studies used to investigate the basic developmental, myopathies and dystrophies in skeletal muscle cells.

16
A Bio-inspired Latent TGF-β Conjugated Scaffold Improves Neocartilage Development

Wang, T.; Maldonado, C. C.; Huang, B.-L.; Budbazar, E.; Martin, A.; Layne, M. D.; Murphy-Ullrich, J. E.; Grinstaff, M. W.; Albro, M. B.

2025-02-08 bioengineering 10.1101/2025.02.03.636279 medRxiv
Top 0.1%
7.9%
Show abstract

In cartilage tissue engineering, active TGF-{beta} is conventionally supplemented in culture medium at highly supraphysiologic doses to accelerate neocartilage development. While this approach enhances cartilage extracellular matrix (ECM) biosynthesis, it further promotes tissue features detrimental to hyaline cartilage function, including the induction of tissue swelling, hyperplasia, hypertrophy, and ECM heterogeneities. In contrast, during native cartilage development, chondrocytes are surrounded by TGF-{beta} configured in a latent complex (LTGF-{beta}), which undergoes cell-mediated activation, giving rise to moderated, physiologic dosing regimens that enhance ECM biosynthesis while avoiding detrimental features associated with TGF-{beta} excesses. Here, we explore a bio-inspired strategy, consisting of LTGF-{beta}-conjugated scaffolds, providing TGF-{beta} exposure regimens that are moderated and uniformly administered throughout the construct. Specifically, we evaluate the performance of LTGF-{beta} scaffolds to improve neocartilage development with bovine chondrocyte-seeded agarose constructs compared to outcomes from active TGF-{beta} media supplementation (MS) at a physiologic 0.3 ng/mL dose (MS-0.3), supraphysiologic 10 ng/mL dose (MS-10), or TGF-{beta} free. For small-size constructs ({emptyset}3x2 mm), LTGF-{beta} scaffolds yield neocartilage that achieves native-matched mechanical properties (800-925 kPa) and sGAG content (6.6%-7.1%), while providing a cell morphology and collagen distribution more reminiscent of hyaline cartilage. LTGF-{beta} scaffolds further afford an optimal chondrogenic phenotype, marked by a 12-to 28-fold reduction of COL-I expression relative to TGF-{beta}-free and a 7-to 17-fold reduction of COL-X expression relative to MS-10. Further, for large-size constructs, which approach the dimensions needed for clinical cartilage repair, LTGF-{beta} scaffolds significantly reduce mechanical and biochemical heterogeneities relative to MS-0.3 and MS-10. Overall, the use of LTGF-{beta} scaffolds improves the composition, structure, material properties, and cell phenotype of neocartilage.

17
Differential myoblast and tenoblast affinity to collagen, fibrin and mixed threads in the prospect of muscle-tendon junction modelisation

Rieu, C.; Rose, N.; Taleb, A.; Mosser, G.; Haye, B.; Coradin, T.; Le Grand, F.; Trichet, L.

2020-05-14 bioengineering 10.1101/2020.05.12.091868 medRxiv
Top 0.1%
7.9%
Show abstract

The myotendinous junction transfers forces from muscle to tendon. As such, it must hold two tissues of completely different biological and cellular compositions as well as mechanical properties (kPa-MPa to MPa-GPa) and is subject to frequent stresses of high amplitude. This region remains a weak point of the muscle-tendon unit and is involved in frequent injuries. We here produce fibrin (40 mg/mL, E0 =0.10 {+/-} 0.02 MPa) and collagen (60 mg/mL, E0=0.57 {+/-} 0.05 MPa) threads as well as mixed collagen:fibrin threads (3:2 in mass, E0 = 0.33 {+/-} 0.05 MPa) and investigate the difference of affinity between primary murine myoblasts and tenoblasts. We demonstrate a similar behavior of cells on mixed and fibrin threads with high adherence of tenoblasts and myoblasts, in comparison to collagen threads that promote high adherence and proliferation of tenoblasts but not of myoblasts. Besides, we show that myoblasts on threads differentiate but do not fuse, on the contrary to 2D control substrates, raising the question of the effect of substrate curvature on the ability of myoblasts to fuse in vitro.

18
Spatiotemporal bioprinting of microtissues and growth factors within a support bath to engineer anisotropic, zonally defined meniscal grafts

Spagnuolo, F. D.; Soares Kronemberger, G.; Kelly, D.

2026-07-23 bioengineering 10.64898/2026.07.22.740001 medRxiv
Top 0.1%
7.9%
Show abstract

Current clinical treatments for meniscal injuries remain limited and are associated with an increased risk of developing osteoarthritis (OA). This has motivated the development of tissue engineering (TE) strategies to engineer more biomimetic meniscal grafts capable of promoting functional joint regeneration. Existing approaches typically fail to recapitulate the zonal heterogeneity of the native meniscus, which contains distinct inner and outer regions with unique extracellular matrix (ECM) composition and organization. Here, we introduce a novel bioprinting strategy using spatially patterned growth factors and mesenchymal stromal/stem cell (MSC)-derived microtissues ({micro}Ts) to engineer meniscal constructs with zonally defined structure and composition. We first investigated the effects of different growth factor regimes, specifically connective tissue growth factor (CTGF) and transforming growth factor-{beta}3 (TGF-{beta}3), on fibrochondrogenesis of MSC-derived {micro}Ts. While TGF-{beta}3 alone promoted a more inner-zone meniscus phenotype, stimulation of {micro}Ts with a combination of TGF-{beta}3 and CTGF supported the development of tissues that more closely mimicked the outer zone of the meniscus. Using laponite to control the release of these growth factors, it was also possible to bioprint zonally defined meniscal tissue within a methacrylate xanthan gum (XG-MA) support bath. A fibro-ink containing {micro}Ts, CTGF and TGF-{beta}3 supported higher collagen type I deposition and lower collagen type II deposition, while a chondro-ink containing {micro}Ts and TGF-{beta}3 promoted higher collagen type II deposition. Based on these findings, dual-cartridge bioprinting was next used to spatially pattern {micro}Ts with CTGF + TGF-{beta}3 (fibro-ink) or TGF-{beta}3 (chondro-ink) to generate regionally defined, meniscal-like engineered tissues. This approach enabled the bioprinting of scaffold-free constructs with aligned collagen and zone-specific ECM depositions, with an inner region consisting of sGAG and collagen types I and II, and an outer region rich in sGAG and collagen type I. These findings highlight the potential of co-printing both growth factors and MSC-derived {micro}Ts for engineering scaffold-free, zonally defined meniscal tissues.

19
Lyophilized Cell-Secreted Matrix as a Bioactive Substrate for Chondrocyte Expansion and Redifferentiation

Hammad, M.; Domin, B.; Veyssiere, A.; Bernay, B.; Bauge, C.; Boumediene, K.

2026-02-16 bioengineering 10.64898/2026.02.13.705752 medRxiv
Top 0.1%
7.9%
Show abstract

Articular cartilage repair is limited by the poor regenerative capacity of chondrocytes and their rapid dedifferentiation during in vitro expansion. This study investigated whether a decellularized and lyophilized cell-secreted matrix (CSM) could function as a bioactive material to regulate cell behavior, promote chondrogenic differentiation, and attenuate or reverse chondrocyte dedifferentiation without exogenous growth factor supplementation. CSM was generated from rabbit auricular perichondrial cells, decellularized, lyophilized, and characterized by histology, biochemical assays, and proteomic analysis. The resulting matrix was enriched in structurally and functionally relevant extracellular matrix proteins, including collagens, fibronectin, fibrillin, proteoglycans, and matricellular regulators, with minimal intracellular contamination and good batch-to-batch reproducibility. Functionally, CSM supported robust adhesion and proliferation of allogeneic and xenogeneic cells. Human articular chondrocytes cultured on CSM exhibited enhanced proliferation, sustained expression of cartilage-specific markers, and preserved type II collagen production over serial passages compared with standard plastic culture. CSM also promoted chondrogenic differentiation of human progenitor cells and partially reversed established chondrocyte dedifferentiation, as evidenced by increased expression of COL2A1, ACAN, SOX9, and COMP, with reduced COL1 expression and no induction of hypertrophic markers. These findings demonstrate that lyophilized CSM is a stable, off-the-shelf biomaterial capable of directing chondrocyte fate through intrinsic matrix-derived cues, highlighting its potential for cartilage tissue engineering and cell manufacturing applications.

20
Biosponges Embedded With Gdnf Enhance Neuromuscular Recovery Following Volumetric Muscle Loss

Tadiwala, J.; Tobo, C.; Sekerak, K.; Sheetz, R.; Ridolfo, A.; Gamage, M. E.; Ertugral, E. G.; Jelliss, P.; Wood, M. D.; Kothapalli, C. R.; Garg, K.

2025-12-13 bioengineering 10.64898/2025.12.10.693478 medRxiv
Top 0.1%
7.9%
Show abstract

Skeletal muscle cannot regenerate after volumetric muscle loss (VML), a traumatic injury defined as the loss of > 20% of a muscles mass. VML directly reduces the number of myofibers and causes axonal degeneration of nerves, resulting in reduced muscle function and impaired neuromuscular junctions (NMJs). Biosponge (BSG) scaffolds, composed of gelatin, collagen, and laminin-111, have been shown to improve muscle mass, cross-sectional area, and myofiber number following VML. However, improvements in NMJ quantity were not observed. Glial cell line-derived neurotrophic factor (GDNF) is a growth factor that enhances motor unit survival and neurite outgrowth. In this work, BSG scaffolds were electrostatically coupled with GDNF via gelatin nanoparticles (GNPs) to support myofiber regeneration and preserve NMJs post-VML in a rodent model. In vitro determination of release kinetics revealed an initial burst release of surface bound GDNF with almost an equivalent amount of electrostatically bound GDNF retained within the BSG post 1 week of incubation at 37{degrees}C in phosphate buffered saline (PBS). To create the VML injury in male Lewis rats (10-12 weeks old), [~]20% of the muscle mass was removed from the tibialis anterior (TA) muscle of both hindlimbs. Relative to BSG+GNP alone, treatment with BSG+GNP+GDNF showed a significant increase ([~]25%) in peak isometric torque at 6 weeks post-injury. Qualitative and quantitative histological analysis of NMJs revealed an enhanced overlap between pre- and post-synaptic structures in the BSG+GNP+GDNF group. Additionally, the incorporation of GDNF slowed BSG remodeling and degradation. Overall, these results suggest that the BSG-mediated delivery of GDNF is an effective strategy for mitigating NMJ loss and enhancing muscle recovery following VML. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=96 SRC="FIGDIR/small/693478v1_ufig1.gif" ALT="Figure 1"> View larger version (30K): org.highwire.dtl.DTLVardef@1719d84org.highwire.dtl.DTLVardef@1c6bceorg.highwire.dtl.DTLVardef@1e9a9a5org.highwire.dtl.DTLVardef@180ad57_HPS_FORMAT_FIGEXP M_FIG C_FIG Graphical Abstract Tadiwala et al., 2025 Biosponges embedded with GDNF promote neuromuscular recovery following volumetric muscle loss.