Bisphosphonate-functionalized poly(β-amino ester) network polymers.
Melek Naz Guven1, Merve Seckin Altuncu1, Fatma Demir Duman2
1Department of Chemistry, Bogazici University, 34342 Bebek, Istanbul, Turkey.
Novel bisphosphonate-functionalized poly(β-amino ester)s (PBAEs) demonstrate rapid biodegradation and low toxicity. These new biomaterials show potential for use in medical applications due to their tunable degradation and biocompatibility.
Area of Science:
- Polymer Chemistry
- Biomaterials Science
- Organic Synthesis
Background:
- Poly(β-amino ester)s (PBAEs) are a class of biodegradable polymers with potential biomedical applications.
- Bisphosphonates are known for their bone-targeting and mineralization properties.
- Developing novel PBAEs with controlled degradation and low toxicity is crucial for biomaterial development.
Purpose of the Study:
- To synthesize and characterize novel bisphosphonate-functionalized secondary diamines.
- To incorporate these amines into PBAE networks and investigate their effect on biodegradation and toxicity.
- To evaluate the potential of these PBAE materials as nontoxic degradable biomaterials.
Main Methods:
- Synthesis of three novel bisphosphonate-functionalized diamines (BPA1, BPA2, BPA3).
- Aza-Michael addition of diamines to diacrylate monomers (HDDA, PEGDA) to form PBAE macromers.
- Photopolymerization of PBAE macromers to create biodegradable gels.
- In vitro degradation studies and cytotoxicity assays using NIH 3T3 cells.
Main Results:
- The synthesized bisphosphonate-functionalized PBAE gels showed rapid degradation (53-73% mass loss in 24 h).
- Degradation rate was primarily governed by the bisphosphonate group.
- In vitro cytotoxicity tests indicated low toxicity of the degradation products.
- PBAE macromers were successfully used as cross-linkers for HEMA hydrogels, allowing for tunable degradation rates.
Conclusions:
- Bisphosphonate incorporation into PBAEs significantly influences their degradation properties.
- The resulting PBAE materials exhibit rapid and tunable biodegradation with minimal toxicity.
- These novel bisphosphonate-functionalized PBAEs hold promise as versatile, nontoxic, and degradable biomaterials for various applications.
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