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| 1 | Latest research progress of marine microbiological corrosion and biofouling, and new approaches of marine anti-corrosion and anti-fouling显示文摘Marine resources and industry have become one of the most important pillars in economic development all over the world.However,corrosion of materials is always the most serious problem to the infrastructure and equipment served in marine environment.Researchers have found that microbiologically influenced corrosion(MIC)and marine bio-fouling are two main mechanisms of marine corrosions due to the complicated marine environment and marine organisms.This article summarized the latest research progress about these two mechanisms and indicated that both MIC and marine bio-fouling are closely related to the biofilms on material surfaces formed by the marine microorganisms and their metabolites.As a result,to prevent the occurrence of MIC and bio-fouling,it is important to control the microorganisms in biofilms or prevent the adhesion and formation of biofilms.The traditional method of using chemical bactericide or antifoulant faces the problems of pollution and microorganism resistance.This article introduced four research approaches about the new tendency of applying new materials and technologies to cooperate with traditional chemicals to achieve better and longer effects with lower environment pollution through synergistic actions.Finally,some future research tendencies were proposed for whole marine anti-corrosion and anti-fouling areas. | Yangfan Li Chengyun Ning | 2019 | Bioactive Materials2019,4,1: | 13 |
| 2 | Epidemiological Data of Work-Related Musculoskeletal Disorders—China,2018–2020显示文摘Summary What is already known about this topic?In recent decades,work-related musculoskeletal disorders(WMSDs)have become increasingly prominent and have become an important issue that is of universal concern and an urgent need to be solved in all countries of the world.What is added by this report?The top three industries or occupational groups with the highest standardized prevalence rate of WMSDs were flight attendants,medical staff,and vegetable greenhouses in that order.Women workers were 1.5 times more likely to suffer from WMSDs than men workers. | Ning Jia Huadong Zhang Ruijie Ling Yimin Liu Gang Li Zaoliang Ren Yan Yin Hua Shao Hengdong Zhang Bing Qiu Meibian Zhang Dayu Wang Qiang Zeng Rugang Wang Jianchao Chen Danying Zhang Liangying Mei Yongquan Liu Jixiang Liu Chengyun Zhang Tianlai Li Qing Xu Ying Qu Xueyan Zhang Xin Sun Zhongxu Wang | 2021 | China CDC weekly2021,3,18: | 13 |
| 3 | Exosome-functionalized polyetheretherketone-based implant with immunomodulatory property for enhancing osseointegration显示文摘The host immune response effecting on biomaterials is critical to determine implant fates and bone regeneration property.Bone marrow stem cells(BMSCs)derived exosomes(Exos)contain multiple biosignal molecules and have been demonstrated to exhibit immunomodulatory functions.Herein,we develop a BMSC-derived Exos-functionalized implant to accelerate bone integration by immunoregulation.BMSC-derived Exos were reversibly incorporated on tannic acid(TA)modified sulfonated polyetheretherketone(SPEEK)via the strong interaction of TA with biomacromolecules.The slowly released Exos from SPEEK can be phagocytosed by co-cultured cells,which could efficiently improve the biocompatibilities of SPEEK.In vitro results showed the Exos loaded SPEEK promoted macrophage M2 polarization via the NF-κB pathway to enhance BMSCs osteogenic differentiation.Further in vivo rat air-pouch model and rat femoral drilling model assessment of Exos loaded SPEEK revealed efficient macrophage M2 polarization,desirable new bone formation,and satisfactory osseointegration.Thus,BMSC-derived Exos-functionalized implant exerted osteoimmunomodulation effect to promote osteogenesis. | Lei Fan Pengfei Guan Cairong Xiao Huiquan Wen Qiyou Wang Can Liu Yian Luo Limin Ma Guoxin Tan Peng Yu Lei Zhou Chengyun Ning | 2021 | Bioactive Materials2021,6,9: | 11 |
| 4 | Investigation on Work-Related Musculoskeletal Disorders--China, 2018−2019显示文摘What is already known about this topic?Work-related musculoskeletal disorders(WMSDs)have a high prevalence and seriously harmful,which has attracted extensive attention in various countries in the world.Currently,the occurrence and rules of WMSDs in key industries are not known in China.What is added by this report?The prevalence of WMSDs is relatively high among professional populations in key industries in China,with the most commonly affected body parts concentrated in neck,shoulders,and low back and increasing with age and working years.What are the implications for public health practice?This study determined the prevalence and distribution characteristics of WMSDs in key industries in China and provided scientific evidence to recommend for inclusion of WMSDs in the new revision of the list of occupational diseases in China. | Ning Jia Huadong Zhang Ruijie Ling Yimin Liu Gang Li Zaoliang Ren Yan Yin Hua Shao Hengdong Zhang Bing Qiu Meibian Zhang Dayu Wang Qiang Zeng Rugang Wang Jianchao Chen Danying Zhang Liangying Mei Yongquan Liu Jixiang Liu Chengyun Zhang Tianlai Li Qing Xu Ying Qu Xueyan Zhang Xin Sun Zhongxu Wang | 2020 | China CDC weekly2020,2,18: | 11 |
| 5 | Corrosion mechanism of micro-arc oxidation treated biocompatible AZ31 magnesium alloy in simulated body fluid显示文摘The rapid degradation of magnesium(Mg) based alloys has prevented their further use in orthopedic trauma fixation and vascular intervention,and therefore it is essential to investigate the corrosion mechanism for improving the corrosion resistance of these alloys. In this work, the effect of applied voltage on the surface morphology and the corrosion behavior of micro-arc oxidation(MAO) with different voltages were carried out to obtain biocompatible ceramic coatings on AZ31 Mg alloy. The effects of applied voltage on the surface morphology and the corrosion behavior of MAO samples in the simulated body fluid(SBF) were studied systematically. Scanning electron microscope(SEM) and X-ray diffractometer(XRD)were employed to characterize the morphologies and phase compositions of coating before and after corrosion. The results showed that corrosion resistance of the MAO coating obtained at 250 V was better than the others in SBF. The dense layer of MAO coating and the corrosion precipitation were the key factors for corrosion behavior. The corrosion of precipitation Mg(OH)2and the calcium phosphate(Ca–P) minerals on the surface of MAO coatings could enhance their corrosion resistance effectively. In addition, the mechanism of MAO coated Mg alloys was proposed. | Ying Li Fang Lu Honglong Li Wenjun Zhu Haobo Pan Guoxin Tan Yonghua Lao Chengyun Ning Guoxin Ni | 2014 | Progress in Natural Science:Materials International2014,24,5: | 7 |
| 6 | Promoting Bone Mesenchymal Stem Cells and Inhibiting Bacterial Adhesion of Acid-Etched Nanostructured Titanium by Ultraviolet Functionalization显示文摘Titanium(Ti) and its alloys are used extensively in orthopedic implants because of their excellent biocompatibility,mechanical properties and corrosion resistance. However,titanium-based implant materials face many severe complications,such as implant loosening due to poor osseointegration and bacterial infections,which may lead to implant failure. Hence,preparing a biomaterial surface,which enhances the interactions with host cells and inhibits bacterial adhesion,may be an optimal strategy to reduce the incidence of implant failure. This study aims to improve osseointegration and confer antibacterial properties on Ti through a combination of two surface modifications including nanostructuring generated by acid etching and ultraviolet(UV) light treatment.Our results showed that without UV treatment,the acid etching treatment of Ti surface was effective at both improving the adhesion of bone mesenchymal stem cells(BMSCs) and increasing bacterial adhesion. A further UV treatment of the acid-etched surface however,not only significantly improved the cell adhesion but also inhibited bacterial adhesion. The acid-etched nanostructured titanium with UV treatment also showed a significant enhancement on cell proliferation,alkaline phosphatase(ALP) activity and mineralization. These results suggest that such nanostructured materials with UV treatment can be expected to have a good potential in orthopedic applications. | Guobo Lan Mei Li Ying Tan Lihua Li Xiaoming Yang Limin Ma Qingshui Yin Hong Xia Yu Zhang Guoxin Tan Chengyun Ning | 2015 | Journal of Materials Science & Technology2015,31,2: | 7 |
| 7 | Characterization of bioactive ceramic coatings prepared on titanium implants by micro-arc oxidation显示文摘微弧的氧化(毛) 是在电解质媒介的提高的化学工艺在阀门金属表面上获得涂层结构。毛在磷酸钠电解质获得的三氧化钛电影被调查。这些电影主要由在锐钛矿和金红石形式的 TiO_2 阶段组成并且在表面与 Na 和 P 元素充实。他们的导致磷灰石的能力在模仿的身体液体(SBF ) 被评估。在为超过 30 d 的 SBF 的 Whenimmersing,优先的 carbonated-hydroxyapatite 在这些电影的表面上被形成,它建议对待 MAO 的钛有有希望的积极生物回答。 | WANG Yingjun NAN Kaihui CHEN Xiaofeng NING Chengyun WANG lingyu ZHAO Naru | 2006 | Rare Metals2006,25,1: | 5 |
| 8 | Preparation and properties of a cerium-containing hydroxyapatite coating on commercially pure titanium by micro-arc oxidation显示文摘商业地纯的钛上的多孔的包含铈的 hydroxyapatite 涂层被微弧的氧化(毛) 在包含钙醋酸盐的一个电解答案准备,甘油磷酸盐 disodium 盐五水合物(-GP), 和铈硝酸盐。氧化物涂层的厚度,阶段,作文形态学,和 biocompatibility 被 X 光检查衍射(XRD ) 描绘,电子探查微量分析(EPMA ) ,与精力扫描电子显微镜学(SEM ) 散 X 光检查分光计(版本) ,和房间文化。毛电影的厚度关于 15-25 m,并且涂层多孔、不平,没有到钛底层的任何明显的接口。XRD 和版本的结果证明多孔的涂层由 hydroxyapatite 组成(哈) 电影包含 Ce。有利造骨细胞房间亲密关系做 Ce -- 哈电影有好 biocompatibility。Ce -- 哈电影被期望作为牙齿有重要医药应用植入并且人工的骨头关节。 | HUANG Yong WANG Yingjun NING Chengyun NAN Kaihui HAN Yong | 2008 | Rare Metals2008,27,3: | 2 |
| 9 | An injectable,self-healing,electroconductive extracellular matrix-based hydrogel for enhancing tissue repair after traumatic spinal cord injury显示文摘Injectable biomaterial-based treatment is a promising strategy to enhance tissue repair after traumatic spinal cord injury(SCI)by bridging cavity spaces.However,there are limited reports of injectable,electroconductive hydrogels with self-healing properties being employed for the treatment of traumatic SCI.Hence,a natural extracellular matrix(ECM)biopolymer(chondroitin sulphate and gelatin)-based hydrogel containing polypyrrole,which imparted electroconductive properties,is developed for traumatic SCI repair.The resulting hydrogels showed mechanical(~928 Pa)and conductive properties(4.49 mS/cm)similar to natural spinal cord tissues.Moreover,the hydrogels exhibited shear-thinning and self-healing abilities,which allows it to be effectively injected into the injury site and to fill the lesion cavity to accelerate the tissue repair of traumatic SCI.In vitro,electroconductive ECM hydrogels promoted neuronal differentiation,enhanced axon outgrowth,and inhibited astrocyte differentiation.The electroconductive ECM hydrogel activated endogenous neural stem cell neurogenesis in vivo(n=6),and induced myelinated axon regeneration into the lesion site via activation of the PI3K/AKT and MEK/ERK pathways,thereby achieving significant locomotor function restoration in rats with spinal cord injury(p<0.001,compared to SCI group).Overall,the injectable self-healing electroconductive ECM-based hydrogels developed in this study are ideal biomaterials for treatment of traumatic SCI. | Yian Luo Lei Fan Can Liu Huiquan Wen Shihuan Wang Pengfei Guan Dafu Chen Chengyun Ning Lei Zhou Guoxin Tan | 2022 | Bioactive Materials2022,7,1: | 2 |
| 10 | Controllable Protein Adsorption and Bacterial Adhesion on Polypyrrole Nanocone Arrays显示文摘In this research, polypyrrole nanocone arrays doped with β-Naphthalene sulphonic acid(PPy-NSA) were built. This film was expected to control protein adsorption and bacterial adhesion by potential-induced reversibly redox. The scanning Kelvin probe microscopy(SKPM) and surface contact angles(SCA) tests suggested that the surface potential and wettability of PPy-NSA nanocone arrays could be controlled by simply controlling its redox property via applying potential. The controllable surface potential and wettability in return controlled the adsorption of protein and adhesion of bacteria. The proposed material might find application in the preparation of smart biomaterial surfaces that can regulate proteins and bacterial adhesion by a simple potential switching. | Zhengnan Zhou Weiping Li Tianrui He Peng Yu Guoxin Tan Chengyun Ning | 2016 | Journal of Materials Science & Technology2016,32,9: | 2 |
| 11 | Incorporating catechol into electroactive polypyrrole nanowires on titanium to promote hydroxyapatite formation显示文摘To improve the osteointegration property of biomedical titanium,nano-architectured electroactive coating was synthesized through the electrochemical polymerization of dopamine and pyrrole.The highly binding affinity of Ca2t to the catechol moiety of doped dopamine enabled efficient interaction between polypyrrole/polydopamine nanowires and mineral ions.The results indicate that the PPy/PDA nanowires preserved its efficient electro-activity and accelerated the hydroxyapatite deposition in a simulated body fluid.The PPy/PDA nanowires coating could be applied to promote the osteointegration of titanium implant. | Zhengao Wang Jinquan Zeng Guoxin Tan Jingwen Liao Lei Zhou Junqi Chen Peng Yu Qiyou Wang Chengyun Ning | 2018 | Bioactive Materials2018,3,1: | 1 |
| 12 | Biomimetic Ti-6Al-4V alloy/gelatin methacrylate hybrid scaffold with enhanced osteogenic and angiogenic capabilities for large bone defect restoration显示文摘Titanium-based scaffolds are widely used implant materials for bone defect treatment.However,the unmatched biomechanics and poor bioactivities of conventional titanium-based implants usually lead to insufficient bone integration.To tackle these challenges,it is critical to develop novel titanium-based scaffolds that meet the bioadaptive requirements for load-bearing critical bone defects.Herein,inspired by the microstructure and mechanical properties of natural bone tissue,we developed a Ti-6Al-4V alloy(TC4)/gelatin methacrylate(GelMA)hybrid scaffold with dual bionic features(GMPT)for bone defect repair.GMPT is composed of a hard 3D-printed porous TC4 metal scaffold(PT)backbone,which mimics the microstructure and mechanical properties of natural cancellous bone,and a soft GelMA hydrogel matrix infiltrated into the pores of PT that mimics the microenvironment of the extracellular matrix.Ascribed to the unique dual bionic design,the resultant GMPT demonstrates better osteogenic and angiogenic capabilities than PT,as confirmed by the in vitro and rabbit radius bone defect experimental results.Moreover,controlling the concentration of GelMA(10%)in GMPT can further improve the osteogenesis and angiogenesis of GMPT.The fundamental mechanisms were revealed by RNA-Seq analysis,which showed that the concentration of GelMA significantly influenced the expression of osteogenesis-and angiogenesis-related genes via the Pi3K/Akt/mTOR pathway.The results of this work indicate that our dual bionic implant design represents a promising strategy for the restoration of large bone defects. | Limin Ma Xiaolan Wang Ye Zhou Xiongfa Ji Shi Cheng Dong Bian Lei Fan Lei Zhou Chengyun Ning Yu Zhang | 2021 | Bioactive Materials2021,6,10: | 1 |
| 13 | Incidence and Risk Factors of the Upper-Limb Musculoskeletal Disorders Among Occupational Groups in Key Industries—China,2018–2021显示文摘What is already known about this topic?The burden of illness and economic losses due to upper-limb work-related musculoskeletal disorders(UL-WMSDs)is high;thus,they have become a major global public health problem.At present,the epidemiological characteristics of UL-WMSDs in China's occupational population are still unknown.What is added by this report?The incidence of UL-WMSDs among key occupational groups in China is 22.5%,with distinct occupational characteristics.What are the implications for public health practice?This study has primarily determined the occurrence and potential risk factors of UL-WMSDs in key industries in China and provided data support for recommending prevention and control of the occurrence of such diseases in key industries in China,and in facilitating the addition into the China’s List of Legal Occupational Diseases. | Ning Jia Meibian Zhang Huadong Zhang Ruijie Ling Yimin Liu Gang Li Yan Yin Hua Shao Hengdong Zhang Bing Qiu Dongxia Li Dayu Wang Qiang Zeng Rugang Wang Jianchao Chen Danying Zhang Liangying Mei Xinglin Fang Yongquan Liu Jixiang Liu Chengyun Zhang Tianlai Li Jun Qi Qing Xu Ying Qu Xueyan Zhang Xin Sun Zhongxu Wang | 2022 | China CDC weekly2022,4,50: | 1 |
| 14 | Effect of Amino-,Methyl- and Epoxy-Silane Coupling as a Molecular Bridge for Formatting a Biomimetic Hydroxyapatite Coating on Titanium by Electrochemical Deposition显示文摘The objective of this study was to determine the role of functional groups of silane coupling on bioactive titanium(Ti) surface by electrochemical deposition, and calcium phosphate(CaP) coating, as well as bone cell adhesion and proliferation. Methyl group(—CH_3), amino group(—NH_2), and epoxy group(—glyph name—C(O)C) were introduced onto the bioactive Ti surface using self-assembled monolayers(SAMs)with different silane coupling agents as molecular bridges. The effect of the surface functional groups on the growth features of the CaP crystals was analyzed(including chemical compositions, element content,minerals morphology and crystal structure etc.). CH_3- terminated SAMs showed a hydrophobic surface and others were hydrophilic by contact angle measurement; NH_2-terminated SAMs showed a positive charge and others were negatively charged using zeta-potential measurement. Scanning electron microscopy results confirmed that flower-like structure coatings consisting of various pinpoint-like crystals were formatted by different functional groups of silane coupling, and the CaP coatings were multicrystalline consisting of hydroxyapatite(HA) and precursors. Ca P coating of CH_3- terminated SAMs exhibited more excellent crystallization property as compared to coatings of —NH_2 and —C(O)C groups. In vitro MC3T3-E1 cells adhesion and proliferation were performed. The results showed that CaP coatings on silane coupling functionalized surfaces supported cell adhesion and proliferation. Thus, these functional groups of silane coupling on Ti can form homogeneous and oriented nano-CaP coatings and provide a more biocompatible surface for bone regeneration and biomedical applications. | Guoxin Tan Kongyou Ouyang Hang Wang Lei Zhou Xiaolan Wang Yan Liu Lan Zhang Chengyun Ning | 2016 | Journal of Materials Science & Technology2016,32,9: | 1 |
| 15 | Wireless electrical stimulation at the nanoscale interface induces tumor vascular normalization显示文摘Pathological angiogenesis frequently occurs in tumor tissue, limiting the efficiency of chemotherapeutic drug delivery and accelerating tumor progression. However, traditional vascular normalization strategies are not fully effective and limited by the development of resistance. Herein, inspired by the intervention of endogenous bioelectricity in vessel formation, we propose a wireless electrical stimulation therapeutic strategy, capable of breaking bioelectric homeostasis within cells, to achieve tumor vascular normalization. Polarized barium titanate nanoparticles with high mechano-electrical conversion performance were developed, which could generate pulsed open-circuit voltage under low-intensity pulsed ultrasound. We demonstrated that wireless electrical stimulation significantly inhibited endothelial cell migration and differentiation in vitro. Interestingly, we found that the angiogenesis-related eNOS/NO pathway was inhibited, which could be attributed to the destruction of the intracellular calcium ion gradient by wireless electrical stimulation. In vivo tumor-bearing mouse model indicated that wireless electrical stimulation normalized tumor vasculature by optimizing vascular structure, enhancing blood perfusion, reducing vascular leakage, and restoring local oxygenation. Ultimately, the anti-tumor efficacy of combination treatment was 1.8 times that of the single chemotherapeutic drug doxorubicin group. This work provides a wireless electrical stimulation strategy based on the mechano-electrical conversion performance of piezoelectric nanoparticles, which is expected to achieve safe and effective clinical adjuvant treatment of malignant tumors. | Changhao Li Cairong Xiao Lizhen Zhan Zhekun Zhang Jun Xing Jinxia Zhai Zhengnan Zhou Guoxin Tan Jinhua Piao Yahong Zhou Suijian Qi Zhengao Wang Peng Yu Chengyun Ning | 2022 | Bioactive Materials2022,7,12: | 1 |
| 16 | Self-curling electroconductive nerve dressing for enhancing peripheral nerve regeneration in diabetic rats显示文摘Conductive scaffolds have been shown to exert a therapeutic effect on patients suffering from peripheral nerve injuries(PNIs).However,conventional conductive conduits are made of rigid structures and have limited applications for impaired diabetic patients due to their mechanical mismatch with neural tissues and poor plasticity.We propose the development of biocompatible electroconductive hydrogels(ECHs)that are identical to a surgical dressing in this study.Based on excellent adhesive and self-healing properties,the thin film-like dressing can be easily attached to the injured nerve fibers,automatically warps a tubular structure without requiring any invasive techniques.The ECH offers an intimate and stable electrical bridge coupling with the electrogenic nerve tissues.The in vitro experiments indicated that the ECH promoted the migration and adhesion of the Schwann cells.Furthermore,the ECH facilitated axonal regeneration and remyelination in vitro and in vivo through the MEK/ERK pathway,thus preventing muscle denervation atrophy while retaining functional recovery.The results of this study are likely to facilitate the development of non-invasive treatment techniques for PNIs in diabetic patients utilizing electroconductive hydrogels. | Can Liu Lei Fan Zhenming Tian Huiquan Wen Lei Zhou Pengfei Guan Yian Luo Chuncheung Chan Guoxin Tan Chengyun Ning Limin Rong Bin Liu | 2021 | Bioactive Materials2021,6,11: | 1 |
| 17 | A shape-persistent plasticine-like conductive hydrogel with self-healing properties for peripheral nerve regeneration显示文摘In recent years,electrically conductive hydrogel-based nerve guidance conduits(NGCs)have yielded promising results for treating peripheral nerve injuries(PNIs).However,developed ones are generally pre-manufactured and exhibit a limited ability to achieve good contact with nerve tissue with irregu-lar surfaces.Herein,we developed a plasticine-like electrically conductive hydrogel consisting of gelatin,conducting polypyrrole,and tannic acid(named GPT)and assessed its ability to promote peripheral nerve regeneration.The shape-persistent GPT hydrogel exhibited good self-healing properties and could easily be molded to form a conduit that could match any injured nerve tissue.Their electrical properties could be tuned by changing the PPy concentration.In vitro,the improved conductivity of the hydrogel pro-moted dorsal root ganglion(DRG)axonal extension.More importantly,we found that the GPT hydrogel enhanced axonal regeneration and remyelination in vivo,preventing denervation atrophy and enhancing functional recovery in a mice model of sciatic nerve injury.These results suggest that our plasticine-like NGC has huge prospects for clinical application in the repair of PNI. | Xinchang Kang Xiaojun Li Can Liu Min Cai Pengfei Guan Yian Luo Youjun Guan Yu Tian Kunyu Ren Chengyun Ning Lei Fan Guoxin Tan Lei Zhou | 2023 | Journal of Materials Science & Technology2023,,11: | 0 |
| 18 | Regulation of osteoblast functions on titanium surfaces with different micro/nanotopographies and compositions显示文摘Surface modification of medical implants is considered as an effective method to improve cellular behaviors and the integration of tissues with materials. Titanium(Ti)-based materials with four different micro/nano-structures and compositions were prepared by acid etching, electrochemical anodization and alkali-heat treatment. The surface morphologies and compositions of the different surface-modified Ti materials were characterized by field-emission scanning electron microscopy(FE-SEM),atomic force microscopy(AFM) and X-ray diffraction(XRD). The effects of the micro/nano structured and compositions of the surfaces on cellular responses were investigated in vitro by observing the morphology, adhesion, proliferation and osteogenic differentiation of osteoblasts. To further investigate the underlying mechanisms, an RT-PCR assay was performed to analyze the expression levels of cell adhesion-related genes. Our results indicated that the nanosized structure and anatase composition could promote the adhesion and proliferation of MC3T3-E1 pre-osteoblast, as well as alkaline phosphatase activity and extracellular matrix mineralization via the integrin-FAK signaling pathway. Taken together, our innovation presented in this work demonstrated that the surface nano-structure design and composition of biomedical implants can be modified of for future orthopaedic applications. | HE Peng WANG XiaoLan NING ChengYun LIU XiaoWei LI Mei XU HaiDong GUO GuoDong MAO GuangPing LIU Gang XU Bin ZHANG Yu ZHAO JianNing | 2019 | Science China(Technological Sciences)2019,62,4: | 0 |
| 19 | Magnetic field regulation of mouse bone marrow mesenchymal stem cell behaviours on TiO2 nanotubes via surface potential mediated by Terfenol‐D/P(VDF‐TrFE) film显示文摘It is challenging to match the mutual interactions between implant and host because the biomaterials usually cannot actively adjust their performance to the changing microenvironment.Surface potential is one of the critical factors affecting the bioactivity of biomaterials,but it is difficult to be directly controlled in vivo.Magnetic stimulation has attracted much attention due to its deep penetrability,good reliability,and convenient operability.Here,titanium dioxide(TiO_(2))nanotubes and Terfenol‐D/P(VDF‐TrFE)composite film are prepared by anodic oxidation and solution casting methods on opposite sides of a titanium sheet,respectively.Terfenol‐D magnetostrictive microparticles deform under a magnetic field,generating surface potential on the P(VDF‐TrFE)piezoelectric matrix through magneto‐electric coupling.Correspondingly,equal opposite charges are induced on the surface of TiO_(2) nanotubes.Stem cells cultured on TiO_(2) nanotubes show that cell adhesion,proliferation,and differentiation abilities can be regulated by magnetic strength,which correlates with the absorption of charged proteins.Therefore,a cascade coupling of magnetic,mechanical,electric,biochemical,and cellular effects is established.This work demonstrates the feasibility of regulating the bioactivity of biomaterials in vivo through a magnetic field. | Haisheng Qi Qi Ke Qiwen Tang Lei Yin Lixin Yang Chengyun Ning Jianyu Su Liming Fang | 2022 | Biosurface and Biotribology2022,8,3: | 0 |