Search Results - "Bioactive materials"

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  1. 1

    Antibacterial approaches in tissue engineering using metal ions and nanoparticles: From mechanisms to applications by Godoy-Gallardo, Maria, Eckhard, Ulrich, Delgado, Luis M., de Roo Puente, Yolanda J.D., Hoyos-Nogués, Mireia, Gil, F. Javier, Perez, Roman A.

    Published in Bioactive materials (01-12-2021)
    “…Bacterial infection of implanted scaffolds may have fatal consequences and, in combination with the emergence of multidrug bacterial resistance, the…”
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  2. 2

    Decellularized extracellular matrix scaffolds: Recent trends and emerging strategies in tissue engineering by Zhang, Xuewei, Chen, Xi, Hong, Hua, Hu, Rubei, Liu, Jiashang, Liu, Changsheng

    Published in Bioactive materials (01-04-2022)
    “…The application of scaffolding materials is believed to hold enormous potential for tissue regeneration. Despite the widespread application and rapid advance…”
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  3. 3

    Mussel-inspired adhesive antioxidant antibacterial hemostatic composite hydrogel wound dressing via photo-polymerization for infected skin wound healing by Yang, Yutong, Liang, Yongping, Chen, Jueying, Duan, Xianglong, Guo, Baolin

    Published in Bioactive materials (01-02-2022)
    “…With the increasing prevalence of drug-resistant bacterial infections and the slow healing of chronically infected wounds, the development of new antibacterial…”
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  4. 4

    The application of nanoparticles in cancer immunotherapy: Targeting tumor microenvironment by Yang, Muyue, Li, Jipeng, Gu, Ping, Fan, Xianqun

    Published in Bioactive materials (01-07-2021)
    “…The tumor development and metastasis are closely related to the structure and function of the tumor microenvironment (TME). Recently, TME modulation strategies…”
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  5. 5

    Photo-curing 3D printing technique and its challenges by Quan, Haoyuan, Zhang, Ting, Xu, Hang, Luo, Shen, Nie, Jun, Zhu, Xiaoqun

    Published in Bioactive materials (01-03-2020)
    “…In recent ten years, 3D printing technology has been developed rapidly. As an advanced technology, 3D printing has been used to fabricate complex and…”
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  6. 6

    Antibacterial metals and alloys for potential biomedical implants by Zhang, Erlin, Zhao, Xiaotong, Hu, Jiali, Wang, Ruoxian, Fu, Shan, Qin, Gaowu

    Published in Bioactive materials (01-08-2021)
    “…Metals and alloys, including stainless steel, titanium and its alloys, cobalt alloys, and other metals and alloys have been widely used clinically as implant…”
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  7. 7

    Recent advances in biomaterials for 3D scaffolds: A review by Nikolova, Maria P., Chavali, Murthy S.

    Published in Bioactive materials (01-12-2019)
    “…Considering the advantages and disadvantages of biomaterials used for the production of 3D scaffolds for tissue engineering, new strategies for designing…”
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  8. 8

    3D bioactive composite scaffolds for bone tissue engineering by Turnbull, Gareth, Clarke, Jon, Picard, Frédéric, Riches, Philip, Jia, Luanluan, Han, Fengxuan, Li, Bin, Shu, Wenmiao

    Published in Bioactive materials (01-09-2018)
    “…Bone is the second most commonly transplanted tissue worldwide, with over four million operations using bone grafts or bone substitute materials annually to…”
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  9. 9

    Fabrication of physical and chemical crosslinked hydrogels for bone tissue engineering by Xue, Xu, Hu, Yan, Wang, Sicheng, Chen, Xiao, Jiang, Yingying, Su, Jiacan

    Published in Bioactive materials (01-06-2022)
    “…Bone tissue engineering has emerged as a significant research area that provides promising novel tools for the preparation of biomimetic hydrogels applied in…”
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  10. 10

    Wound microenvironment self-adaptive hydrogel with efficient angiogenesis for promoting diabetic wound healing by Shao, Zijian, Yin, Tianyu, Jiang, Jinbo, He, Yang, Xiang, Tao, Zhou, Shaobing

    Published in Bioactive materials (01-02-2023)
    “…Neovascularization is critical to improve the diabetic microenvironment, deliver abundant nutrients to the wound and promote wound closure. However, the excess…”
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  11. 11

    Bone physiological microenvironment and healing mechanism: Basis for future bone-tissue engineering scaffolds by Zhu, Guanyin, Zhang, Tianxu, Chen, Miao, Yao, Ke, Huang, Xinqi, Zhang, Bo, Li, Yazhen, Liu, Jun, Wang, Yunbing, Zhao, Zhihe

    Published in Bioactive materials (01-11-2021)
    “…Bone-tissue defects affect millions of people worldwide. Despite being common treatment approaches, autologous and allogeneic bone grafting have not achieved…”
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  12. 12

    Bone grafts and biomaterials substitutes for bone defect repair: A review by Wang, Wenhao, Yeung, Kelvin W.K.

    Published in Bioactive materials (01-12-2017)
    “…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,…”
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  13. 13

    Multifunctional GelMA platforms with nanomaterials for advanced tissue therapeutics by Kurian, Amal George, Singh, Rajendra K., Patel, Kapil D., Lee, Jung-Hwan, Kim, Hae-Won

    Published in Bioactive materials (01-02-2022)
    “…Polymeric hydrogels are fascinating platforms as 3D scaffolds for tissue repair and delivery systems of therapeutic molecules and cells. Among others,…”
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  14. 14

    Copper single-atom catalysts with photothermal performance and enhanced nanozyme activity for bacteria‐infected wound therapy by Wang, Xianwen, Shi, Qianqian, Zha, Zhengbao, Zhu, Dongdong, Zheng, Lirong, Shi, Luoxiang, Wei, Xianwen, Lian, Lian, Wu, Konglin, Cheng, Liang

    Published in Bioactive materials (01-12-2021)
    “…Nanozymes have become a new generation of antibiotics with exciting broad-spectrum antibacterial properties and negligible biological toxicity. However, their…”
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  15. 15

    3D printing of bone tissue engineering scaffolds by Wang, Chong, Huang, Wei, Zhou, Yu, He, Libing, He, Zhi, Chen, Ziling, He, Xiao, Tian, Shuo, Liao, Jiaming, Lu, Bingheng, Wei, Yen, Wang, Min

    Published in Bioactive materials (01-03-2020)
    “…Tissue engineering is promising in realizing successful treatments of human body tissue loss that current methods cannot treat well or achieve satisfactory…”
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  16. 16

    3D bioprinting for biomedical devices and tissue engineering: A review of recent trends and advances by Derakhshanfar, Soroosh, Mbeleck, Rene, Xu, Kaige, Zhang, Xingying, Zhong, Wen, Xing, Malcolm

    Published in Bioactive materials (01-06-2018)
    “…3D printing, an additive manufacturing based technology for precise 3D construction, is currently widely employed to enhance applicability and function of cell…”
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  17. 17

    Accelerated degradation of HAP/PLLA bone scaffold by PGA blending facilitates bioactivity and osteoconductivity by Shuai, Cijun, Yang, Wenjing, Feng, Pei, Peng, Shuping, Pan, Hao

    Published in Bioactive materials (01-02-2021)
    “…The incorporation of hydroxyapatite (HAP) into poly-l-lactic acid (PLLA) matrix serving as bone scaffold is expected to exhibit bioactivity and…”
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  18. 18

    Chitosan based bioactive materials in tissue engineering applications-A review by Islam, Md. Minhajul, Shahruzzaman, Md, Biswas, Shanta, Nurus Sakib, Md, Rashid, Taslim Ur

    Published in Bioactive materials (01-03-2020)
    “…In recent years, there have been increasingly rapid advances of using bioactive materials in tissue engineering applications. Bioactive materials constitute…”
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  19. 19

    Poly(lactic-co-glycolic acid)-based composite bone-substitute materials by Zhao, Duoyi, Zhu, Tongtong, Li, Jie, Cui, Liguo, Zhang, Zhiyu, Zhuang, Xiuli, Ding, Jianxun

    Published in Bioactive materials (01-02-2021)
    “…Research and development of the ideal artificial bone-substitute materials to replace autologous and allogeneic bones for repairing bone defects is still a…”
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  20. 20

    An overview of filtration efficiency through the masks: Mechanisms of the aerosols penetration by Tcharkhtchi, A., Abbasnezhad, N., Zarbini Seydani, M., Zirak, N., Farzaneh, S., Shirinbayan, M.

    Published in Bioactive materials (01-01-2021)
    “…The masks have always been mentioned as an effective tool against environmental threats. They are considered as protective equipment to preserve the…”
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