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Induction of ectopic bone formation by site directed immobilized BMP2 variants \(in\) \(vivo\)
(2020)
In contrast to common bone fractures, critical size bone defects are unable to self-regenerate and therefore external sources for bone replacement are needed. Currently, the gold standard to treat critical size bone fractures, resulting from diseases, trauma or surgical interventions, is the use of autologous bone transplantation that is associated with several drawbacks such as postoperative pain, increased loss of blood during surgery and extended operative time.
The field of bone tissue engineering focuses on the combination of biomaterials and growth factors to circumvent these adverse events and thereby to improve critical size bone defects treatment.
To this aim, a promising approach is represented by using a collagen sponge soaked with one of the most powerful osteoinductive proteins, the bone morphogenetic protein 2 (BMP2). After the approval by the Food and Drug Administration (FDA), BMP2 was used to successfully treat several severe bone defects. However, the use of BMP2 delivery systems is associated with severe side effects such as inflammation, swelling, ectopic bone formation outside of the site of implantation and breathing problems if implanted in the area of the cervical spine. The occurrence of severe side effects is related to the supraphysiological amounts of the applied protein at the implantation site. The BMP2 is typically adsorbed into the scaffold and diffuses rapidly after implantation. Therefore, intensive research has been conducted to improve the protein’s retention ability, since a prolonged entrapment of the BMP2 at the implantation site would induce superior bone formation in vivo due to a minimized protein release. By controlling the release from newly designed materials or changing the protein immobilization methods, it seems possible to improve the osteoinductive properties of the resulting BMP2-functionalized scaffolds.
The combination of biocompatible and biodegradable scaffolds functionalized with a covalently immobilized protein such as BMP2 would constitute a new alternative in bone tissue engineering by eliminating the aforementioned severe side effects. One of the most common immobilization techniques is represented by the so-called EDC/NHS chemistry. This coupling technique allows covalent biding of the growth factor but in a non-site direct manner, thus producing an implant with uncontrollable and unpredictable osteogenic activities. Therefore, the generation of BMP2 variants harboring functional groups that allow a site-directed immobilization to the scaffold, would enable the production of implants with reproducible osteogenic activity.
The new BMP2 variants harbor an artificial amino acid at a specific position of the mature polypeptide sequence. The presence of the unnatural amino acid allows to use particular covalent immobilization techniques in a highly specific and site directed manner. The two selected BMP2 variants, BMP2 E83Plk and BMP2 E83Azide, were expressed in E. coli, renatured and purified by cation exchange chromatography. The final products were intensively analyzed in terms of purity and biological activity in vitro. The two BMP2 variants enabled the application of different coupling techniques and verify the possible options for site directed immobilization to the scaffold.
Intensive analyses on the possible side effects caused by the coupling reactions and on the quantification of the coupled protein were performed. Both click chemistry reactions showed high reaction efficacies when the BMP2 variants were coupled to functionalized fluorophores. Quantification by ELISA and scintillation counting of radioactively labeled protein revealed different outcomes. Moreover, the amounts of protein detected for the BMP2 variants coupled to microspheres were similar to that of the wild type protein. Therefore, it was not possible to conclude whether the BMP2 variants were covalently coupled or just adsorbed.
BMP2 variants being immobilized to various microspheres induced osteogenic differentiation of C2C12 cells in vitro, but only in those cells that were located in close proximity to the functionalized beads. This selectivity strongly indicates that the protein is for a great portion covalently coupled and not just adsorbed. Moreover, the difference between the covalently coupled BMP2 variants and the adsorbed BMP2 WT was confirmed in vivo. Injection of the BMP2-functionalized microspheres in a rat model induced subcutaneous bone formation.
The main aim of the animal experiment was to prove whether covalently coupled BMP2 induces bone formation at significant lower doses if compared to the amount being required if the protein is simply adsorbed. To this aim, several BMP2 concentrations were tested in this animal experiment. The BMP2 variants, being covalently immobilized, were hypothesized to be retained and therefore bio-available at the site of implantation for a prolonged time. However, in the animal experiments, lower doses of either coupled or adsorbed protein were unable to induce any bone formation within the 12 weeks.
In contrast, the highest doses induced bone formation that was first detected at week 4. During the 12 weeks of the experiment, an increase in bone density and a steady state bone volume was observed. These results were obtained only for the covalently coupled BMP2 E83Azide but not for BMP2 E83Plk that did not induce bone formation in any condition. The negative outcome after application of BMP2 E83Plk suggested that the coupling reaction might have provoked changes in the protein structure that extremely influenced its osteogenic capabilities in vivo.
However, the histological examination of the different ossicles induced either by BMP2 WT or BMP2 E83Azide, revealed clear morphological differences. BMP2 WT induced a bone shell-like structure, while the covalently coupled protein induced uniform bone formation also throughout the inner part. The differences between the two newly formed bones can be clearly associated with the different protein delivery mechanisms. Thus, the developed functionalized microspheres constitute a new interesting strategy that needs further investigations in order to be able to be used as replacement of the currently used BMP2 WT loaded medical devices.
Despite advancements of modern medicine, the number of patients with the the end-stage kidney disease keeps growing, and surgical procedures to establish and maintain a vascular access for hemodialysis are rising accordingly. Surgical access of choice remains autogenous arteriovenous fistula, whereas approach “fistula first at all costs” leads to failure in certain subgroups of patients. Modern synthetic vascular grafts fail to deliver long-term results comparable with AV fistula. With all that in mind, this work has an aim of developing a new alternative vascular graft, which can be used for hemodialysis access using the methods of TE, especially electrospinning technique. It is hypothesized that electrospun scaffold, made of PCL and collagen type I may assemble mechanical properties similar to native blood vessels. Seeding such electrospun scaffolds with human microvascular endothelial cells (hmvECs) and preconditioning with shear stress and continuous flow might achieve sufficient endothelial lining being able to resist acute thrombosis. One further topic considered on-site infections, which represents one of the most spread complications of dialysis therapy due to continuous needle punctures. The main hypothesis was that during electrospinning process, polymers can be blended with antibiotics with the aim of producing scaffolds with antimicrobial properties, which could lead to reducing the risk of on-site infection on one side, while not affecting the cell viability.