Your browser doesn't support javascript.
loading
Administration of mRNA-Nanomedicine-Augmented Calvarial Defect Healing via Endochondral Ossification.
Tsou, Hsi-Kai; Wu, Cheng-Hsin; Chan, Long Yi; Kataoka, Kazunori; Itokazu, Nanae; Tsuzuki, Minoru; Hu, Hsuan; Zhuo, Guan-Yu; Itaka, Keiji; Lin, Chin-Yu.
Afiliação
  • Tsou HK; Functional Neurosurgery Division, Neurological Institute, Taichung Veterans General Hospital, Taichung 40705, Taiwan.
  • Wu CH; Department of Rehabilitation, Jen-Teh Junior College of Medicine, Nursing and Management, Miaoli County 35664, Taiwan.
  • Chan LY; Department of Post-Baccalaureate Medicine, College of Medicine, National Chung Hsing University, Taichung 40227, Taiwan.
  • Kataoka K; College of Health, National Taichung University of Science and Technology, Taichung 40303, Taiwan.
  • Itokazu N; Institute of Translational Medicine and New Drug Development, College of Medicine, China Medical University, Taichung 40402, Taiwan.
  • Tsuzuki M; Institute of Translational Medicine and New Drug Development, College of Medicine, China Medical University, Taichung 40402, Taiwan.
  • Hu H; Innovation Center of NanoMedicine, Kawasaki Institute of Industrial Promotion, Kawasaki 210-0821, Japan.
  • Zhuo GY; Department of Pharmaceutical Sciences, Nihon Pharmaceutical University, Saitama 362-0806, Japan.
  • Itaka K; Department of Pharmaceutical Sciences, Nihon Pharmaceutical University, Saitama 362-0806, Japan.
  • Lin CY; Institute of Translational Medicine and New Drug Development, College of Medicine, China Medical University, Taichung 40402, Taiwan.
Pharmaceutics ; 15(7)2023 Jul 17.
Article em En | MEDLINE | ID: mdl-37514151
ABSTRACT
Large-area craniofacial defects remain a challenge for orthopaedists, hastening the need to develop a facile and safe tissue engineering strategy; osteoconductive material and a combination of optimal growth factors and microenvironment should be considered. Faced with the unmet need, we propose that abundant cytokines and chemokines can be secreted from the bone defect, provoking the infiltration of endogenous stem cells to assist bone regeneration. We can provide a potent mRNA medicine cocktail to promptly initiate the formation of bone templates, osteogenesis, and subsequent bone matrix deposition via endochondral ossification, which may retard rapid fibroblast infiltration and prevent the formation of atrophic non-union. We explored the mutual interaction of BMP2 and TGFß3 mRNA, both potent chondrogenic factors, on inducing endochondral ossification; examined the influence of in vitro the transcribed polyA tail length on mRNA stability; prepared mRNA nanomedicine using a PEGylated polyaspartamide block copolymer loaded in a gelatin sponge and grafted in a critical-sized calvarial defect; and evaluated bone regeneration using histological and µCT examination. The BMP2 and TGFß3 composite mRNA nanomedicine resulted in over 10-fold new bone volume (BV) regeneration in 8 weeks than the BMP2 mRNA nanomedicine administration alone, demonstrating that the TGFß3 mRNA nanomedicine synergistically enhances the bone's formation capability, which is induced by BMP2 mRNA nanomedicine. Our data demonstrated that mRNA-medicine-mediated endochondral ossification provides an alternative cell-free tissue engineering methodology for guiding craniofacial defect healing.
Palavras-chave

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article