Protein-based therapeutics such as enzymes, antibodies, cytokines, hormones, and growth factors have been shown to be highly effective in the treatment of several diseases1. If we improve our understanding of how to provide these therapeutic agents, we could significantly advance the biotechnology for applying these substances as medicines/medical treatments1. The efficacy of protein therapeutics is limited by their biodistribution, cost, and off-target effects. Several approaches have been attempted to improve the pharmacokinetics and pharmacodynamics of protein therapeutics, including PEGylation, glycosylation, lipidation, and fusion of other proteins2. 'Targetability' is another concern because most of the current protein therapeutics have multiple sites of action, resulting in off-target effects. Specifically, targeting these drugs to desired sites could lower the required therapeutic dose and reduce side effects2. If one could restrict drug delivery to the intended site of action, it might be possible to radically improve treatment while also limiting the undesirable 'off-target' side effects of these drugs.
Multiple medical devices are currently being used that contain therapeutics, such as drug-eluting stents with an antiproliferative drug coating containing clopidogrel, vincristine, and vinblastine to help prevent restenosis and the need for repeat revascularization after cardiac catheterization3. Additionally, biodegradable drug-eluting ureteral stents bearing paclitaxel, doxorubicin, gemcitabine, and other antiproliferative agents have been created to help treat upper tract urothelial carcinoma4. As these stents degrade, the anti-tumor drugs are released locally in a controlled manner, prolonging the drug delivery without the need for additional dosing4. This methodology allows for the long-term effect of the anti-tumor drugs at the intended site of action while also preventing the need for systemic exposure, limiting the drug action on non-tumor cells, and reducing drug toxicity. Also, the biodegradable nature of the stent can also prevent the need for a stent removal procedure4.
Short bowel syndrome (SBS) is another condition where the use of protein-based therapeutics has shown significant improvement in patients5. SBS can occur through various mechanisms but results in inadequate intestinal length, causing malabsorption and malnutrition. Therapies, such as glucagon-like peptide 2 (GLP-2) analogs, can be used before moving to surgical management of this condition5. Human GLP-2, a systemic nutrient peptide hormone, is produced in the distal small intestine and colon by L-type endocrine cells. GLP-2 induces proliferation of intestinal crypt cells, promotes repair of damaged mucosa, inhibits apoptosis of intestinal epithelial cells, and improves intestinal bloody supply5. GLP-2 analogs, such as teduglutide, have been approved for patients 1 year or older for treatment of SBS to help augment the natural intestinal adaptation6. Naturally, intestinal adaptation can take years and results in delayed gastric emptying to increase absorptive time and increased diameter by intestinal dilation to increase the surface area for absorption7. GLP-2 analogs have the same pharmacological activity as the natural GLP-2 while having a more stable structure, allowing a longer half-life and stronger affinity to targets5. Currently, the annual cost of teduglutide is $295,000, and patient dosing is 0.05 mg/kg per day5. Teduglutide side effects include nausea, vomiting, diarrhea, abdominal pain, weight loss, gastrointestinal polyps, and increased growth of existing tumors5.
Previously, our lab has shown that deployment of an intestinal expansion sleeve (IES) (Figure 1) was able to produce an immediate 36.2% elongation of small bowel ex vivo and a 30.2% elongation of small bowel after a one-month deployment in vivo6,8. This device could become a therapy for SBS patients that could shorten parenteral nutrition dependence. The ability to bioconjugate therapeutics to the IES device could further improve the distraction enterogenesis capacity by adding the intestinal mucosal growth agonist GLP-2 to the device. Polyvinyl alcohol (PVA) membranes are hydrophilic polymers that can be prepared by dissolving PVA into water, casting it onto a structural support, and then crosslinking with glutaraldehyde using sulfuric acid as a catalyst9. These hydrogel nanoparticles have been shown to have potential as drug delivery systems through drug diffusion, hydrogel matrix swelling, and chemical reactivity of the drug/matrix10. PVA has been FDA-approved for clinical use in humans due to its excellent biocompatibility and safety11. PVA polymerization results in terminal groups that allow for bioconjugation12.
IES/VES devices are 3 cm in length with an external surface area of 9.425 cm2 that is capable of casting with PVA membranes. These PVA membranes can be bioconjugated with GLP-2 to allow for localized and concentrated delivery of therapeutic agents. Lowering the required dose of the drug and bypassing the need for systemic administration, avoiding negative off-site effects of treatment. This can help mitigate the cost of these expensive drugs by requiring less dosage, and the delayed release of the drug can decrease the frequency of dosing, further lowering costs. Coating the IES device with GLP-2 could lower required dosages, save patients money, avoid systemic administration, prevent negative effects of treatment, and maintain a continuous delivery of the drug to the target site. This report evaluates the extent to which a therapeutic protein, like GLP-2, can be covalently bound to medical devices such as IES/VES devices in physiologically meaningful quantities to provide the local benefit of these drugs while avoiding off-target effects.