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| 1 | Bone grafts and biomaterials substitutes for bone defect repair:A review显示文摘Bone grafts have been predominated used to treat bone defects,delayed union or non-union,and spinal fusion in orthopaedic clinically for a period of time,despite the emergency of synthetic bone graft substitutes.Nevertheless,the integration of allogeneic grafts and synthetic substitutes with host bone was found jeopardized in long-term follow-up studies.Hence,the enhancement of osteointegration of these grafts and substitutes with host bone is considerably important.To address this problem,addition of various growth factors,such as bone morphogenetic proteins(BMPs),parathyroid hormone(PTH)and platelet rich plasma(PRP),into structural allografts and synthetic substitutes have been considered.Although clinical applications of these factors have exhibited good bone formation,their further application was limited due to high cost and potential adverse side effects.Alternatively,bioinorganic ions such as magnesium,strontium and zinc are considered as alternative of osteogenic biological factors.Hence,this paper aims to review the currently available bone grafts and bone substitutes as well as the biological and bio-inorganic factors for the treatments of bone defect. | Wenhao Wang Kelvin W.K.Yeung | 2017 | Bioactive Materials2017,2,4: | 66 |
| 2 | 3D bioactive composite scaffolds for bone tissue engineering显示文摘Bone is the second most commonly transplanted tissue worldwide,with over four million operations using bone grafts or bone substitute materials annually to treat bone defects.However,significant limitations affect current treatment options and clinical demand for bone grafts continues to rise due to conditions such as trauma,cancer,infection and arthritis.Developing bioactive three-dimensional(3D)scaffolds to support bone regeneration has therefore become a key area of focus within bone tissue engineering(BTE).A variety of materials and manufacturing methods including 3D printing have been used to create novel alternatives to traditional bone grafts.However,individual groups of materials including polymers,ceramics and hydrogels have been unable to fully replicate the properties of bone when used alone.Favourable material properties can be combined and bioactivity improved when groups of materials are used together in composite 3D scaffolds.This review will therefore consider the ideal properties of bioactive composite 3D scaffolds and examine recent use of polymers,hydrogels,metals,ceramics and bio-glasses in BTE.Scaffold fabrication methodology,mechanical performance,biocompatibility,bioactivity,and potential clinical translations will be discussed. | Gareth Turnbull Jon Clarke Frederic Picard Philip Riches Luanluan Jia Fengxuan Han Bin Li Wenmiao Shu | 2018 | Bioactive Materials2018,3,3: | 40 |
| 3 | Photo-curing 3D printing technique and its challenges显示文摘In recent ten years,3D printing technology has been developed rapidly.As an advanced technology,3D printing has been used to fabricate complex and high-precision objects in many fields.3D printing has several technologies.Among these technologies,photo-curing 3D printing was the earliest and most mature technology.In 1988,the first 3D printing machine which was based on photo-curing and called Stereo lithography Appearance(SLA)technology was produced by 3D system Corp.After 30 years of development,many new technologies based on photocuring mechanism emerged.Based on the different principle of pattern formation and character of printing technology,numerous photocuring 3D printing techniques,such as SLA,DLP,LCD,CLIP,MJP,twophoton 3D printing,holographic 3D printing and so on,have been developed.Photo-curing 3D printing has many advantages,such as high precision,smooth surface of printing objects,rapid printing speed and so on.Here,we would introduce five industrial photocuring 3D printing technologies,which are SLA,DLP,LCD,CLIP and MJP.The characters of the materials and the progress of the application of the technique in the biomedical field is also overviewed.At last,the difficulties and challenges of photo-curing 3D printing are also discussed. | Haoyuan Quan Ting Zhang Hang Xu Shen Luo Jun Nie Xiaoqun Zhu | 2020 | Bioactive Materials2020,5,1: | 33 |
| 4 | Antibacterial and angiogenic chitosan microneedle array patch for promoting wound healing显示文摘A patch with the capability of avoiding wound infection and promoting tissue remolding is of great value for wound healing.In this paper,we develop a biomass chitosan microneedle array(CSMNA)patch integrated with smart responsive drug delivery for promoting wound healing.Chitosan possesses many outstanding features such as the natural antibacterial property and has been widely utilized for wound healing.Besides,the microstructure of microneedles enables the effective delivery of loaded drugs into the target area and avoids the excessive adhesion between the skin and the patch.Also,vascular endothelial growth factor(VEGF)is encapsulated in the micropores of CSMNA by temperature sensitive hydrogel.Therefore,the smart release of the drugs can be controllably realized via the temperature rising induced by the inflammation response at the site of wounds.It is demonstrated that the biomass CSMNA patch can promote inflammatory inhibition,collagen deposition,angiogenesis,and tissue regeneration during the wound closure.Thus,this versatile CSMNA patch is potentially valuable for wound healing in clinical applications. | Junjie Chi Xiaoxuan Zhang Canwen Chen Changmin Shao Yuanjin Zhao Yongan Wang | 2020 | Bioactive Materials2020,5,2: | 25 |
| 5 | Additive manufacturing technology for porous metal implant applications and triple minimal surface structures: A review显示文摘Recently,the fabrication methods of orthopedic implants and devices have been greatly developed.Additive manufacturing technology allows the production of complex structures with bio-mimicry features,and has the potential to overcome the limitations of conventional fabrication methods.This review explores open-cellular structural design for porous metal implant applications,in relation to the mechanical properties,biocompatibility,and biodegradability.Several types of additive manufacturing techniques including selective laser sintering,selective laser melting,and electron beam melting,are discussed for different applications.Additive manufacturing through powder bed fusion shows great potential for the fabrication of high-quality porous metal implants.However,the powder bed fusion technique still faces two major challenges:it is high cost and timeconsuming.In addition,triply periodic minimal surface(TPMS)structures are also analyzed in this paper,targeting the design of metal implants with an enhanced biomorphic environment. | Li Yuan Songlin Ding Cuie Wen | 2019 | Bioactive Materials2019,4,1: | 24 |
| 6 | 3D bioprinting for biomedical devices and tissue engineering: A review of recent trends and advances显示文摘3D printing,an additive manufacturing based technology for precise 3D construction,is currently widely employed to enhance applicability and function of cell laden scaffolds.Research on novel compatible biomaterials for bioprinting exhibiting fast crosslinking properties is an essential prerequisite toward advancing 3D printing applications in tissue engineering.Printability to improve fabrication process and cell encapsulation are two of the main factors to be considered in development of 3D bioprinting.Other important factors include but are not limited to printing fidelity,stability,crosslinking time,biocompatibility,cell encapsulation and proliferation,shear-thinning properties,and mechanical properties such as mechanical strength and elasticity.In this review,we recite recent promising advances in bioink development as well as bioprinting methods.Also,an effort has been made to include studies with diverse types of crosslinking methods such as photo,chemical and ultraviolet(UV).We also propose the challenges and future outlook of 3D bioprinting application in medical sciences and discuss the high performance bioinks. | Soroosh Derakhshanfar Rene Mbeleck Kaige Xu Xingying Zhang Wen Zhong Malcolm Xing | 2018 | Bioactive Materials2018,3,2: | 21 |
| 7 | The application of nanoparticles in cancer immunotherapy:Targeting tumor microenvironment显示文摘The tumor development and metastasis are closely related to the structure and function of the tumor microenvironment(TME).Recently,TME modulation strategies have attracted much attention in cancer immunotherapy.Despite the preliminary success of immunotherapeutic agents,their therapeutic effects have been restricted by the limited retention time of drugs in TME.Compared with traditional delivery systems,nanoparticles with unique physical properties and elaborate design can efficiently penetrate TME and specifically deliver to the major components in TME.In this review,we briefly introduce the substitutes of TME including dendritic cells,macrophages,fibroblasts,tumor vasculature,tumor-draining lymph nodes and hypoxic state,then review various nanoparticles targeting these components and their applications in tumor therapy.In addition,nanoparticles could be combined with other therapies,including chemotherapy,radiotherapy,and photodynamic therapy,however,the nanoplatform delivery system may not be effective in all types of tumors due to the heterogeneity of different tumors and individuals.The changes of TME at various stages during tumor development are required to be further elucidated so that more individualized nanoplatforms could be designed. | Muyue Yang Jipeng Li Ping Gu Xianqun Fan | 2021 | Bioactive Materials2021,6,7: | 21 |
| 8 | 3D printing of bone tissue engineering scaffolds显示文摘Tissue engineering is promising in realizing successful treatments of human body tissue loss that current methods cannot treat well or achieve satisfactory clinical outcomes.In scaffold-based bone tissue engineering,a high performance scaffold underpins the success of a bone tissue engineering strategy and a major direction in the field is to produce bone tissue engineering scaffolds with desirable shape,structural,physical,chemical and biological features for enhanced biological performance and for regenerating complex bone tissues.Three-dimensional(3D)printing can produce customized scaffolds that are highly desirable for bone tissue engineering.The enormous interest in 3D printing and 3D printed objects by the science,engineering and medical communities has led to various developments of the 3D printing technology and wide investigations of 3D printed products in many industries,including biomedical engineering,over the past decade.It is now possible to create novel bone tissue engineering scaffolds with customized shape,architecture,favorable macro-micro structure,wettability,mechanical strength and cellular responses.This article provides a concise review of recent advances in the R&D of 3D printing of bone tissue engineering scaffolds.It also presents our philosophy and research in the designing and fabrication of bone tissue engineering scaffolds through 3D printing. | Chong Wang Wei Huang Yu Zhou Libing He Zhi He Ziling Chen Xiao He Shuo Tian Jiaming Liao Bingheng Lu Yen Wei Min Wang | 2020 | Bioactive Materials2020,5,1: | 20 |
| 9 | Recent research and progress of biodegradable zinc alloys and composites for biomedical applications: Biomechanical and biocorrosion perspectives显示文摘Biodegradable metals(BMs)gradually degrade in vivo by releasing corrosion products once exposed to the physiological environment in the body.Complete dissolution of biodegradable implants assists tissue healing,with no implant residues in the surrounding tissues.In recent years,three classes of BMs have been extensively investigated,including magnesium(Mg)-based,iron(Fe)-based,and zinc(Zn)-based BMs.Among these three BMs,Mg-based materials have undergone the most clinical trials.However,Mg-based BMs generally exhibit faster degradation rates,which may not match the healing periods for bone tissue,whereas Fe-based BMs exhibit slower and less complete in vivo degradation.Zn-based BMs are now considered a new class of BMs due to their intermediate degradation rates,which fall between those of Mg-based BMs and Fe-based BMs,thus requiring extensive research to validate their suitability for biomedical applications.In the present study,recent research and development on Zn-based BMs are reviewed in conjunction with discussion of their advantages and limitations in relation to existing BMs.The underlying roles of alloy composition,microstructure,and processing technique on the mechanical and corrosion properties of Zn-based BMs are also discussed. | Humayun Kabir Khurram Munir Cuie Wen Yuncang Li | 2021 | Bioactive Materials2021,6,3: | 18 |
| 10 | Recent advances in periodontal regeneration: A biomaterial perspective显示文摘Periodontal disease(PD)is one of the most common inflammatory oral diseases,affecting approximately 47%of adults aged 30 years or older in the United States.If not treated properly,PD leads to degradation of periodontal tissues,causing tooth movement,and eventually tooth loss.Conventional clinical therapy for PD aims at eliminating infectious sources,and reducing inflammation to arrest disease progression,which cannot achieve the regeneration of lost periodontal tissues.Over the past two decades,various regenerative periodontal therapies,such as guided tissue regeneration(GTR),enamel matrix derivative,bone grafts,growth factor delivery,and the combination of cells and growth factors with matrix-based scaffolds have been developed to target the restoration of lost tooth-supporting tissues,including periodontal ligament,alveolar bone,and cementum.This review discusses recent progresses of periodontal regeneration using tissue-engineering and regenerative medicine approaches.Specifically,we focus on the advances of biomaterials and controlled drug delivery for periodontal regeneration in recent years.Special attention is given to the development of advanced bio-inspired scaffolding biomaterials and temporospatial control of multi-drug delivery for the regeneration of cementum-periodontal ligament-alveolar bone complex.Challenges and future perspectives are presented to provide inspiration for the design and development of innovative biomaterials and delivery system for new regenerative periodontal therapy. | Yongxi Liang Xianghong Luan Xiaohua Liu | 2020 | Bioactive Materials2020,5,2: | 17 |
| 11 | Near-infrared responsive 5-fluorouracil and indocyanine green loaded MPEG-PCL nanoparticle integrated with dissolvable microneedle for skin cancer therapy显示文摘The prevalence of skin cancer is rising along with the rapid population aging in recent years.Traditional therapies,such as surgical treatment,radiotherapy,chemotherapy,photodynamic therapy,and immunotherapy,may accompany serious side effects,limiting their clinical benefits.According to the biological characteristics of skin cancer,we have already established two kinds of synergetic systems of photothermal therapy(microneedle)and chemotherapy,containing gold nanorods(GNR).Although the microneedle system exhibited great potential for skin cancer treatment,the system could be still improved further.So,we designed a near-infrared lightresponsive 5-fluorouracil(5-Fu)and indocyanine green(ICG)loaded monomethoxy-poly(ethylene glycol)-polycaprolactone(MPEG-PCL)nanoparticle(5-Fu-ICG-MPEG-PCL),and then 5-Fu-ICG-MPEG-PCL was integrated with a hyaluronic acid dissolvable microneedle system(HA MN)to get 5-Fu-ICG-MPEG-PCL loaded HA MN for treating skin cancers,including human epidermoid cancer and melanoma.In this system,hyaluronic acid,the microneedle carrier,possesses good skin penetration ability and is approved by FDA as a pharmaceutical adjuvant;5-Fu is recommended by FDA for skin cancer treatment;ICG,a photothermal agent,possesses a strong photothermal ability and is approved by FDA for its use in the human body.We hypothesized that 5-Fu-ICG-MPEG-PCL could be delivered by the dissolvable microneedle through the skin,and the release behavior of the drug in the nanoparticle could be controlled by near-infrared light for achieving a single-dose cure of skin cancer,improving the cure rate of skin cancer and providing a new idea and possibility for the clinical treatment of skin cancer. | Ying Hao YuWen Chen XinLong He Fan Yang RuXia Han ChengLi Yang Wei Li ZhiYong Qian | 2020 | Bioactive Materials2020,5,3: | 17 |
| 12 | Biodegradation behavior of micro-arc oxidation coating on magnesium alloy-from a protein perspective显示文摘Protein exerts a critical influence on the degradation behavior of absorbable magnesium(Mg)-based implants.However,the interaction mechanism between protein and a micro-arc oxidation(MAO)coating on Mg alloys remains unclear.Hereby,a MAO coating was fabricated on AZ31 Mg alloy.And its degradation behavior in phosphate buffer saline(PBS)containing bovine serum albumin(BSA)was investigated and compared with that of the uncoated alloy.Surface morphologies and chemical compositions were studied using Field-emission scanning electron microscope(FE-SEM),Fourier transform infrared spectrophotometer(FT-IR)and X-ray diffraction(XRD).The degradation behavior of the bare Mg alloy and its MAO coating was studied through electrochemical and hydrogen evolution tests.Cytotoxicity assay was applied to evaluate the biocompatibility of Mg alloy substrate and MAO coating.Results indicated that the presence of BSA decreased the degradation rate of Mg alloy substrate because BSA(RCH(NH2)COO‾)molecules combined with Mg2+ions to form(RCH(NH2)COO)2Mg and thus inhibited the dissolution of Mg(OH)2 by impeding the attack of Cl‾ions.In the case of MAO coated Mg alloy,the adsorption of BSA on MAO coating and the formation of(RCH(NH2)COO)2Mg exhibited a synergistic effect and enhanced the corrosion resistance of the coated alloy significantly.Furthermore,cell bioactive assay suggested that the MAO coating had good viability for MG63 cells due to its high surface area. | Zhao-Qi Zhang Li Wang Mei-Qi Zeng Rong-Chang Zeng M.Bobby Kannan Cun-Guo Lin Yu-Feng Zheng | 2020 | Bioactive Materials2020,5,2: | 17 |
| 13 | The development of collagen based composite scaffolds for bone regeneration显示文摘Bone is consisted of bone matrix,cells and bioactive factors,and bone matrix is the combination of inorganic minerals and organic polymers.Type I collagen fibril made of five triple-helical collagen chains is the main organic polymer in bone matrix.It plays an important role in the bone formation and remodeling process.Moreover,collagen is one of the most commonly used scaffold materials for bone tissue engineering due to its excellent biocompatibility and biodegradability.However,the low mechanical strength and osteoinductivity of collagen limit its wider applications in bone regeneration field.By incorporating different biomaterials,the properties such as porosity,structural stability,osteoinductivity,osteogenicity of collagen matrixes can be largely improved.This review summarizes and categorizes different kinds of biomaterials including bioceramic,carbon and polymer materials used as components to fabricate collagen based composite scaffolds for bone regeneration.Moreover,the possible directions of future research and development in this field are also proposed. | Dawei Zhang Xiaowei Wu Jingdi Chen Kaili Lin | 2018 | Bioactive Materials2018,3,1: | 16 |
| 14 | Bioactive hydrogels for bone regeneration显示文摘Bone self-healing is limited and generally requires external intervention to augment bone repair and regeneration.While traditional methods for repairing bone defects such as autografts,allografts,and xenografts have been widely used,they all have corresponding disadvantages,thus limiting their clinical use.Despite the development of a variety of biomaterials,including metal implants,calcium phosphate cements(CPC),hydroxyapatite,etc.,the desired therapeutic effect is not fully achieved.Currently,polymeric scaffolds,particularly hydrogels,are of interest and their unique configurations and tunable physicochemical properties have been extensively studied.This review will focus on the applications of various cutting-edge bioactive hydrogels systems in bone regeneration,as well as their advantages and limitations.We will examine the composition and defects of the bone,discuss the current biomaterials for bone regeneration,and classify recently developed polymeric materials for hydrogel synthesis.We will also elaborate on the properties of desirable hydrogels as well as the fabrication techniques and different delivery strategies.Finally,the existing challenges,considerations,and the future prospective of hydrogels in bone regeneration will be outlined. | Xin Bai Mingzhu Gao Sahla Syed Jerry Zhuang Xiaoyang Xu Xue-Qing Zhang | 2018 | Bioactive Materials2018,3,4: | 15 |
| 15 | Chitosan based bioactive materials in tissue engineering applications-A review显示文摘In recent years,there have been increasingly rapid advances of using bioactive materials in tissue engineering applications.Bioactive materials constitute many different structures based upon ceramic,metallic or polymeric materials,and can elicit specific tissue responses.However,most of them are relatively brittle,stiff,and difficult to form into complex shapes.Hence,there has been a growing demand for preparing materials with tailored physical,biological,and mechanical properties,as well as predictable degradation behavior.Chitosan-based materials have been shown to be ideal bioactive materials due to their outstanding properties such as formability into different structures,and fabricability with a wide range of bioactive materials,in addition to their biocompatibility and biodegradability.This review highlights scientific findings concerning the use of innovative chitosan-based bioactive materials in the fields of tissue engineering,with an outlook into their future applications.It also covers latest developments in terms of constituents,fabrication technologies,structural,and bioactive properties of these materials that may represent an effective solution for tissue engineering materials,making them a realistic clinical alternative in the near future. | Md.Minhajul Islam Md.Shahruzzaman Shanta Biswas Md.Nurus Sakib Taslim Ur Rashid | 2020 | Bioactive Materials2020,5,1: | 15 |
| 16 | Biofunctional magnesium coated Ti6Al4V scaffold enhances osteogenesis and angiogenesis in vitro and in vivo for orthopedic application显示文摘The insufficient osteogenesis and osseointegration of porous titanium based scaffold limit its further application.Early angiogenesis is important for scaffold survival.It is necessary to develop a multifunctional surface on titanium scaffold with both osteogenic and angiogenic properties.In this study,a biofunctional magnesium coating is deposited on porous Ti6Al4V scaffold.For osseointegration and osteogenesis analysis,in vitro studies reveal that magnesium-coated Ti6Al4V co-culture with MC3T3-E1 cells can improve cell proliferation,adhesion,extracellular matrix(ECM)mineralization and ALP activity compared with bare Ti6Al4V cocultivation.Additionally,MC3T3-E1 cells cultured with magnesium-coated Ti6Al4V show significantly higher osteogenesisrelated genes expression.In vivo studies including fluorochrome labeling,micro-computerized tomography and histological examination of magnesium-coated Ti6Al4V scaffold reveal that new bone regeneration is significantly increased in rabbits after implantation.For angiogenesis studies,magnesium-coated Ti6Al4V improve HUVECs proliferation,adhesion,tube formation,wound-healing and Transwell abilities.HUVECs cultured with magnesium-coated Ti6Al4V display significantly higher angiogenesis-related genes(HIF-1αand VEGF)expression.Microangiography analysis reveal that magnesium-coated Ti6Al4V scaffold can significantly enhance the blood vessel formation.This study enlarges the application scope of magnesium and provides an optional choice to the conventional porous Ti6Al4V scaffold with enhanced osteogenesis and angiogenesis for further orthopedic applications. | Peng Gao Bo Fan Xiaoming Yu Wenwen Liu Jie Wu Lei Shi Di Yang Lili Tan Peng Wan Yulin Hao Shujun Li Wentao Hou Ke Yang Xiaokang Li Zheng Guo | 2020 | Bioactive Materials2020,5,3: | 15 |
| 17 | In vitro degradation and cytocompatibility of a low temperature in-situ grown self-healing Mg-Al LDH coating on MAO-coated magnesium alloy AZ31显示文摘Basically,Mg–Al layered double hydroxide(LDH)coatings are prepared on the surface of micro-arc oxidation(MAO)coated magnesium(Mg)alloys at a high temperature or a low pH value.This scenario leads to the growth rate of LDH coating inferior to the dissolution rate of the MAO coating.This in turn results in limited corrosion resistance of the composite coating.In this study,a Mg–Al LDH coating on MAO-coated Mg alloy AZ31 is prepared through a water bath with a higher pH(13.76)at a lower temperature(60℃).FE-SEM,EDS,XRD,XPS,and FT-IR are applied to analyze the surface morphology,chemical compositions,and growth process.Electrochemical polarization,electrochemical impedance spectroscopy(EIS)and hydrogen evolution tests are employed to evaluate the corrosion resistance of the samples.The results disclose that the MAO coating is completely covered by the nanosheet-structured LDH coating with a thickness of approximately 3.8μm.The corrosion current density of the MAO-LDH composite coating is decreased four orders of magnitude in comparison to its substrate;the presence of a wide passivation region in anodic polarization branch demonstrates its strong self-healing ability,indicating the hybrid coating possesses excellent corrosion resistance.The formation mechanism of the LDH coating on the MAO-coated Mg alloy is proposed.Furthermore,the cytocompatibility is assessed via an indirect extraction test for MC3T3-E1 pre-osteoblasts,which indicates an acceptable cytocompatibility of osteoblasts for the composite coating. | Chang-Yang Li Ling Gao Xiao-Li Fan Rong-Chang Zeng Dong-Chu Chen Ke-Qian Zhi | 2020 | Bioactive Materials2020,5,2: | 14 |
| 18 | Poly(lactic-co-glycolic acid)-based composite bone-substitute materials显示文摘Research and development of the ideal artificial bone-substitute materials to replace autologous and allogeneic bones for repairing bone defects is still a challenge in clinical orthopedics.Recently,poly(lactic-co-glycolic acid)(PLGA)-based artificial bone-substitute materials are attracting increasing attention as the benefit of their suitable biocompatibility,degradability,mechanical properties,and capabilities to promote bone regeneration.In this article,we comprehensively review the artificial bone-substitute materials made from PLGA or the composites of PLGA and other organic and inorganic substances,elaborate on their applications for bone regeneration with or without bioactive factors,and prospect the challenges and opportunities in clinical bone regeneration. | Duoyi Zhao Tongtong Zhu Jie Li Liguo Cui Zhiyu Zhang Xiuli Zhuang Jianxun Ding | 2021 | Bioactive Materials2021,6,2: | 14 |
| 19 | A mussel-inspired supramolecular hydrogel with robust tissue anchor for rapid hemostasis of arterial and visceral bleedings显示文摘In recent years,the developed hemostatic technologies are still difficult to be applied to the hemostasis of massive arterial and visceral hemorrhage,owing to their weak hemostatic function,inferior wet tissue adhesion,and low mechanical properties.Herein,a mussel-inspired supramolecular interaction-cross-linked hydrogel with robust mechanical property(308.47±29.20 kPa)and excellent hemostatic efficiency(96.5%±2.1%)was constructed as a hemostatic sealant.Typically,we combined chitosan(CS)with silk fibroin(SF)by cross-linking them through tannic acid(TA)to maintain the structural stability of the hydrogel,especially for wet tissue adhesion ability(shear adhesive strength=29.66±0.36 kPa).Compared with other materials reported previously,the obtained CS/TA/SF hydrogel yielded a lower amount of blood loss and shorter time to hemostasis in various arterial and visceral bleeding models,which could be ascribed to the synergistic effect of wound closure under wet state as well as intrinsic hemostatic activity of CS.As a superior hemostatic sealant,the unique hydrogel proposed in this work can be exploited to offer significant advantages in the acute wound and massive hemorrhage with the restrictive access of therapeutic moieties. | Ziwen Qiao Xueli Lv Shaohua He Shumeng Bai Xiaochen Liu Linxi Hou Jingjing He Dongmei Tong Renjie Ruan Jin Zhang Jianxun Ding Huanghao Yang | 2021 | Bioactive Materials2021,6,9: | 14 |
| 20 | Antibacterial approaches in tissue engineering using metal ions and nanoparticles:From mechanisms to applications显示文摘Bacterial infection of implanted scaffolds may have fatal consequences and,in combination with the emergence of multidrug bacterial resistance,the development of advanced antibacterial biomaterials and constructs is of great interest.Since decades ago,metals and their ions had been used to minimize bacterial infection risk and,more recently,metal-based nanomaterials,with improved antimicrobial properties,have been advocated as a novel and tunable alternative.A comprehensive review is provided on how metal ions and ion nanoparticles have the potential to decrease or eliminate unwanted bacteria.Antibacterial mechanisms such as oxidative stress induction,ion release and disruption of biomolecules are currently well accepted.However,the exact antimicrobial mechanisms of the discussed metal compounds remain poorly understood.The combination of different metal ions and surface decorations of nanoparticles will lead to synergistic effects and improved microbial killing,and allow to mitigate potential side effects to the host.Starting with a general overview of antibacterial mechanisms,we subsequently focus on specific metal ions such as silver,zinc,copper,iron and gold,and outline their distinct modes of action.Finally,we discuss the use of these metal ions and nanoparticles in tissue engineering to prevent implant failure. | Maria Godoy-Gallardo Ulrich Eckhard Luis M.Delgado Yolanda J.D.de Roo Puente Mireia Hoyos-Nogués F.Javier Gil Roman A.Perez | 2021 | Bioactive Materials2021,6,12: | 14 |