4.7 Article

Ultrasound-Modulated Shape Memory and Payload Release Effects in a Biodegradable Cylindrical Rod Made of Chitosan-Functionalized PLGA Microspheres

期刊

BIOMACROMOLECULES
卷 14, 期 6, 页码 1971-1979

出版社

AMER CHEMICAL SOC
DOI: 10.1021/bm4003464

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资金

  1. Pujiang Talent Program
  2. Science and Technology Commission of Shanghai Municipality [10PJ1400200]
  3. National Natural Science Foundation of China [51073032]
  4. Dissertation of Excellence Funds from the Donghua University [105-06-0019033]
  5. Fundamental Research Funds for the Central Universities [11D10540, 13D110523]
  6. Scientific Research Foundation for Returned Scholars [ZX201106000004]
  7. Ministry of Education of China

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Minimally invasive implants and/or scaffolds integrated with multiple functionalities are of interest in the clinical settings. In this paper, chitosan (CTS) functionalized poly(lactic-co-glycolic acid) (PLGA) microspheres containing a model payload, lysozyme (Lyz), were prepared by a water-in-oil-in-water emulsion method, from which cylindrical shaped rod (5 mm in diameter) was fabricated by sintering the composite microspheres in a mold. High-intensity focused ultrasound (HIFU) was then employed as a unique technique to enable shape memory and payload release effects of the three-dimensional (3-D) structure. It was found that incorporation of CTS into PLGA microspheres could regulate the transition temperature T-trans of the microsphere from 45 to 50 degrees C and affect shape memory ratio of the fabricated cylindrical rod to some extent. Shape memory test and drug release assay proved that HIFU could modulate the shape recovery process and synchronize the release kinetics of the encapsulated Lyz in the rod in a switchable manner. Moreover, the two processes could be manipulated by varying the acoustic power and insonation duration. Mechanical tests of the microspheres-based rod before and after ultrasound irradiation revealed its compressive properties in the range of trabecular bone. Examination of the degradation behavior indicated that the introduction of CTS into the PLGA microspheres also alleviated acidic degradation characteristic of the PLGA-dominant cylindrical rod. With HIFU, this study thus demonstrated the desired capabilities of shape recovery and payload release effects integrated in one microspheres-based biodegradable cylindrical structure.

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