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Spagnuolo, F. D.

Publications and source records attributed to Spagnuolo, F. D..

2 recordsLinked to original sources

A 4D Bioprinting Platform to Engineer Anisotropic Musculoskeletal Tissues by Spatially Patterning Microtissues into Temporally Adapting Support Baths

Bioprinting is a powerful tool for engineering living tissues, however replicating native composition, structure and function remains a major challenge. During morphogenesis, cellular self-organization and matrix development are strongly influenced by the mechanical constraints provided by surrounding tissues, suggesting that such biophysical cues should be integrated into bioprinting strategies to engineer more biomimetic grafts. Here we introduce a novel 4D bioprinting platform that spatially patterns mesenchymal stem/stromal cell (MSC)-derived microtissues into temporally adapting support baths. By modulating the baths mechanical properties, we can precisely control the physical constraints applied post-printing, directing both filament geometry and cellular behavior. Support bath stiffness regulated mechano-sensitive gene expression and microtissue phenotype, with softer matrices favoring chondrogenesis and stiffer environments promoting (myo)fibrogenic differentiation. In addition, the physical properties of the support bath modulated microtissue fusion and extracellular matrix organization, with increased collagen fiber alignment in stiffer baths. Leveraging these findings, it was possible to engineer either articular cartilage, meniscus, or ligament grafts with user defined collagen architectures by simply varying the physical properties of the support bath. This platform establishes a foundation for bioprinting structurally anisotropic and phenotypically distinct constructs, thereby enabling the scalable engineering of a range of different musculoskeletal tissues.

bioengineering↗

Bioassembly of region-specific fibrocartilage microtissues to engineer zonally defined meniscal grafts

Meniscal injuries are common orthopaedic problems which can impair knee function and lead to the development of osteoarthritis. While recent advances in tissue engineering have enabled the fabrication of meniscus-like grafts, these constructs do not fully replicate the zonal structure and composition of the native meniscus. In this study, we used fibrocartilage microtissues generated from meniscus progenitor cells (MPCs) as biological building blocks to biofabricate zonally defined meniscal grafts. MPCs isolated from the inner (iMPC) and outer (oMPC) regions of caprine menisci were used to engineer region-specific meniscal microtissues in a medium-high throughput manner. Both iMPC and oMPC derived microtissues were rich in glycosaminoglycans (GAGs) and collagen, with iMPC microtissues staining more intensely for type II collagen. These microtissues were assembled into two different physically confining moulds (cylindrical and ring-shaped), where they rapidly fused and generated a fibrocartilaginous graft over six weeks of culture. Both iMPC and oMPC assembled microtissues were rich in sGAG and type I collagen, however only the iMPC assembled microtissues stained strongly for type II collagen. We then explored the impact of the catabolic enzyme chondroitinase-ABC (cABC) on the composition and structural organization of the meniscal grafts. This temporal enzymatic treatment increased collagen fiber thickness without altering tissue phenotype. Finally, iMPC and oMPC microtissues were spatially assembled to biofabricate a scaled-up and zonally defined meniscal graft. This graft was phenotypically similar to the native meniscus, with all regions rich in collagen type I and an inner core rich in collagen type II and sGAG. These findings support the use of MPC derived microtissues as biological building blocks for the engineering of zonally defined meniscal grafts. Table of ContentO_LIZonally defined meniscus grafts were biofabricated using inner and outer meniscus progenitor cells microtissues. C_LIO_LIRegion specific microtissues showed phenotypes similar to the native meniscus and successfully fused into cohesive constructs rich in sGAG and collagen. C_LIO_LIcABC treatment modulated collagen fiber formation and organization in assembled grafts. C_LIO_LIThe assembled grafts maintained shape fidelity and may offer a promising strategy for meniscal repair. C_LI O_FIG O_LINKSMALLFIG WIDTH=132 HEIGHT=200 SRC="FIGDIR/small/650568v1_ufig1.gif" ALT="Figure 1"> View larger version (62K): org.highwire.dtl.DTLVardef@1354a5forg.highwire.dtl.DTLVardef@1a5acd3org.highwire.dtl.DTLVardef@1f558aborg.highwire.dtl.DTLVardef@90666e_HPS_FORMAT_FIGEXP M_FIG O_FLOATNOGraphical Abstract:C_FLOATNO Biofabrication of zonally defined meniscal grafts using meniscus progenitor cell (MPC)-derived microtissues. (A) Meniscus progenitor cells (MPCs) derived from the inner (iMPC), and outer (oMPC) regions of the menisci were aggregated into microtissues by cellular self-assembly process using a high-throughput agarose microwell system developed in-house. (B) The iMPC and oMPC microtissues were then separately fused in cylindrical and ring-shaped moulds to form region-specific assembled microtissues. (C) To enhance structural organization, chondroitinase ABC (cABC) enzymatic treatment was applied to the ring-shaped assembled microtissues. (D) Finally, the matured iMPC and oMPC assembled microtissues were assembled to create a scaled-up and zonally defined meniscal graft. C_FIG

bioengineering↗