4.6 Article

Capacitive interdigitated system of high osteoinductive/conductive performance for personalized acting-sensing implants

期刊

NPJ REGENERATIVE MEDICINE
卷 6, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41536-021-00184-6

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资金

  1. Fundacao para a Ciencia e a Tecnologia (FCT) [SFRH/BPD/117475/2016, UID/EMS/00481/2019, UID/BIM/04501/2019, 2020.06525.BD, POCI-01-0145-FEDER-031132]
  2. European Research Council (ERC) [ERC-H20202014-ADG-669858]
  3. CENTRO2020 [CEN-TRO01-0145-FEDER-022083]
  4. Aveiro Institute of Materials-CICECO (FCT/MCTES) [UIDB/50011/2020]
  5. LiM Bioimaging Facility-a PPBI node [POCI-01-0145-FEDER022122]
  6. Portuguese Mass Spectrometry Network, integrated in the National Roadmap of Research Infrastructures of Strategic Relevance [ROTEIRO/0028/2013, LISBOA-01-0145-FEDER-022125]
  7. Fundação para a Ciência e a Tecnologia [2020.06525.BD, SFRH/BPD/117475/2016] Funding Source: FCT

向作者/读者索取更多资源

Novel bioelectronic devices consisting of biophysical stimulators and sensing systems aim to provide long-term control of peri-implant bone growth by monitoring the biointerface. High frequency (HF) stimulation can significantly impact osteoblasts' synthesis, matrix, and mineral deposition, as well as enhance osteogenic commitment and hydroxyapatite deposition in mesenchymal stem cells. These bioelectric implants show promise in providing personalized stimulation to peri-implant tissues for improved osseointegration and long-term success of orthopedic surgeries.
Replacement orthopedic surgeries are among the most common surgeries worldwide, but clinically used passive implants cannot prevent failure rates and inherent revision arthroplasties. Optimized non-instrumented implants, resorting to preclinically tested bioactive coatings, improve initial osseointegration but lack long-term personalized actuation on the bone-implant interface. Novel bioelectronic devices comprising biophysical stimulators and sensing systems are thus emerging, aiming for long-term control of peri-implant bone growth through biointerface monitoring. These acting-sensing dual systems require high frequency (HF) operations able to stimulate osteoinduction/osteoconduction, including matrix maturation and mineralization. A sensing-compatible capacitive stimulator of thin interdigitated electrodes and delivering an electrical 60 kHz HF stimulation, 30 min/day, is here shown to promote osteoconduction in pre-osteoblasts and osteoinduction in human adipose-derived mesenchymal stem cells (hASCs). HF stimulation through this capacitive interdigitated system had significant effects on osteoblasts' collagen-I synthesis, matrix, and mineral deposition. A proteomic analysis of microvesicles released from electrically-stimulated osteoblasts revealed regulation of osteodifferentiation and mineralization-related proteins (e.g. Tgfb3, Ttyh3, Itih1, Aldh1a1). Proteomics data are available via ProteomeXchange with the identifier PXD028551. Further, under HF stimulation, hASCs exhibited higher osteogenic commitment and enhanced hydroxyapatite deposition. These promising osteoinductive/conductive capacitive stimulators will integrate novel bioelectronic implants able to monitor the bone-implant interface and deliver personalized stimulation to peri-implant tissues.

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