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The regenerative potential of bone is strongly impaired in pathological conditions, such as nonunion fractures. To support bone regeneration various scaffolds have been developed in the past, which have been functionalized with osteogenic growth factors such as bone morphogenetic proteins (BMPs). However, most of them required supra-physiological levels of these proteins leading to burst releases, thereby causing severe side effects. Site-specific, covalent coupling of BMP2 to implant materials might be an optimal strategy in order to overcome these problems. Therefore, we created a BMP-2 variant (BMP2-K3Plk) containing a noncanonical amino acid (propargyl-l-lysine) substitution introduced by genetic code expansion that allows for site-specific and covalent immobilization onto polymeric scaffold materials. To directly compare different coupling strategies, we also produced a BMP2 variant containing an additional cysteine residue (BMP2-A2C) allowing covalent coupling by thioether formation. The BMP2-K3Plk mutant was coupled to functionalized beads by a copper-catalyzed azide-alkyne cycloaddition (CuAAC) either directly or via a short biotin-PEG linker both with high specificity. After exposing the BMP-coated beads to C2C12 cells, ALP expression appeared locally restricted in close proximity to these beads, showing that both coupled BMP2 variants trigger cell differentiation. The advantage of our approach over non-site-directed immobilization techniques is the ability to produce fully defined osteogenic surfaces, allowing for lower BMP2 loads and concomitant higher bioactivities, for example, due to controlled orientation toward BMP2 receptors. Such products might provide superior bone healing capabilities with potential safety advantages as of homogeneous product outcome.
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http://dx.doi.org/10.1021/acs.biomac.6b01407 | DOI Listing |
ACS Biomater Sci Eng
September 2025
Materials Engineering, McGill university, Montreal H3A0C5, Canada.
Transcutaneous devices such as dental implants frequently fail due to infections at their interfaces with epithelial tissues. These infections are facilitated by the lack of integration between the devices and the surrounding soft tissues. This study aims to improve epithelial integration through surface modification of a transcutaneous implant material (polyetheretherketone (PEEK)).
View Article and Find Full Text PDFBioorg Med Chem Lett
September 2025
Department of Chemistry, Taras Shevchenko National University of Kyiv, Kyiv 01601, Ukraine. Electronic address:
Phospholipid-derived nanocarriers represent a versatile and chemically customizable class of drug delivery systems that self-assemble into bilayered vesicles due to their intrinsic amphiphilicity. These systems can encapsulate both hydrophilic and hydrophobic drugs through non-covalent interactions and manipulation of lipid phase behavior. This review examines the molecular and supramolecular principles underlying the formation, stability, and functional performance of key phospholipid-based nanocarriers-including liposomes, transferosomes, ethosomes, invasomes, phytosomes, pharmacosomes, and virosomes.
View Article and Find Full Text PDFBioresour Technol
August 2025
State Key Laboratory of Organic-Inorganic Composites, Beijing University of Chemical Technology, Beijing 100029, China; International Joint Bioenergy Laboratory of Ministry of Education, National Energy Research and Development Center for Biorefinery, Beijing Key Laboratory of Green Chemicals Bioman
Designing biomimetic catalytic systems with enhanced activity, stability, and reusability remains a grand challenge in the field of biocatalysis. Here, we report a hierarchical and modular strategy for constructing robust biocatalytic cascade reactors by spatially organizing dual enzymes, -amino acid oxidase (DAAO) and cytochrome c (Cyt c), within defect-engineered covalent organic frameworks (COFs), followed by surface encapsulation with a polydopamine (PDA) shell to mimic cellular compartmentalization. The defective COFs provide highly tunable pore architectures and versatile surface functionalities, enabling site-specific enzyme immobilization via both physical infiltration and covalent conjugation.
View Article and Find Full Text PDFGels
July 2025
National Engineering Laboratory for AIDS Vaccine, School of Life Sciences, Jilin University, Changchun 130012, China.
Recombinant protein hydrogels have emerged as transformative biomaterials that overcome the bioinertness and unpredictable degradation of traditional synthetic systems by leveraging genetically engineered backbones, such as elastin-like polypeptides, SF, and resilin-like polypeptides, to replicate extracellular matrix (ECM) dynamics and enable programmable functionality. Constructed through a hierarchical crosslinking strategy, these hydrogels integrate reversible physical interactions with covalent crosslinking approaches, collectively endowing the system with mechanical strength, environmental responsiveness, and controlled degradation behavior. Critically, molecular engineering strategies serve as the cornerstone for functional precision: domain-directed self-assembly exploits coiled-coil or β-sheet motifs to orchestrate hierarchical organization, while modular fusion of bioactive motifs through genetic encoding or site-specific conjugation enables dynamic control over cellular interactions and therapeutic release.
View Article and Find Full Text PDFInorg Chem
August 2025
Department of Chemistry and Biochemistry, The University of Texas at Arlington, Arlington, Texas 76019, United States.
Heteroanionic materials can provide a powerful platform for tuning the local structure and electronic properties through targeted chemical substitution. Among them, heteroanionic pyrochlores offer exceptional flexibility due to their robust framework and capacity to host both cation and anion disorders. In this study, we investigate the structure-property relationship in sulfur-doped tin niobate SnNbOS, a lone pair-active pyrochlore where substitution of sulfur into the O' site systematically modulates both the electronic structure and local coordination environments.
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