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Campbell, P. G.

Publications and source records attributed to Campbell, P. G..

2 recordsLinked to original sources

Glycosylation-enabled Site-specific Growth Factor Engineering for Biomaterial Functionalization

In native tissue environments, growth factors (GFs) are often physically associated with the extracellular matrix (ECM) framework. Despite the enormous potential of the chemoselective click chemistry for GF functionalization of biomaterials to recapitulate such GF-ECM association, its application is limited by the lack of a universal strategy for reliable production of clickable GFs. Here we present a novel platform technology that leverages intrinsic post-translational protein glycosylation to enable site-specific metabolic engineering of GFs with azido tags for subsequent ECM hydrogel conjugation. Using Vascular Endothelial Growth Factor as a model, we demonstrated efficient, glycosylation-dependent azido incorporation during its recombinant expression with preserved bioactivity. We further expanded the utility of this strategy to non-glycosylated proteins through engineered N-linked glycosylation via the incorporation of a signal peptide that directs newly synthesized proteins to the secretory pathway where glycosylation takes place along with a sequon for glycan attachment. The resulting GF with site-specific azido incorporation can be effectively immobilized within dibenzocyclooctyne-bearing ECM hydrogel via the copper-free click chemistry, exhibiting sustained GF retention and delivering augmented angiogenic responses. Our approach thereby offers an unprecedented opportunity to streamline recombinant protein engineering for biomaterial functionalization in tissue engineering and regenerative medicine applications.

bioengineering↗

Engineering 3D Skeletal Muscle Tissue with Complex Multipennate Myofiber Architectures

The hierarchical architecture of skeletal muscle spans from microscale sarcomeres to macroscale myofibers and is integral to its contractile functionality. Pathologies such as volumetric muscle loss (VML) compromise this structure and destroy the native extracellular matrix (ECM), exceeding the regenerative capacity of endogenous repair mechanisms. Here, we present a novel method for tissue engineering biomimetic three-dimensional (3D) skeletal muscle with complex architectures by leveraging freeform reversible embedding of suspended hydrogels (FRESH) 3D bioprinting of the ECM. Collagen type I scaffolds mimicking diverse muscle architectures-- including parallel, unipennate, bipennate, multipennate, and convergent--were designed, FRESH printed, and seeded with C2C12 myoblasts to guide myogenesis. Engineered muscle tissues demonstrated scaffold-mediated alignment and fusion into functional myotubes, exhibiting contractile responses to electrical stimulation with architecture-dependent specific force of [~]1 kN/m2 and a positive force-frequency relationship. In vivo implantation further revealed scaffold-directed cellular and vascular organization, underscoring the translational potential of this approach. In summary, this study demonstrates the capability to use FRESH 3D bioprinting to engineer physiologically relevant muscle architectures, significantly advancing the design of functional muscle tissues for regenerative medicine and in vitro modeling applications.

bioengineering↗