Showing 461 - 480 results of 501 for search '"Tissue Engineering"', query time: 0.09s Refine Results
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    A bibliometric analysis of hydrogel research in various fields: the trends and evolution of hydrogel application by Zhong-Zhu Yuan, Yu-Zhou Fan, Shao-Jun Cheng, Feng-Jie Wei, Jing Gao, Chen-Xi Wang, Bo-Shuang Song, Si-Lu Tan, Si-Lian Gao, Juan-Juan Kang, Yan Liu, Sheng-Hong Li

    Published 2025-01-01
    “…We encapsulated applications and the potential of hydrogel in wound healing, drug delivery, cell encapsulation, bioprinting, tissue engineering, electronic products, environment applications, and disease treatment. …”
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    Functional differentiation of human dental pulp stem cells into neuron-like cells exhibiting electrophysiological activity by B. Pardo-Rodríguez, A. M. Baraibar, I. Manero-Roig, J. Luzuriaga, J. Salvador-Moya, Y. Polo, R. Basanta-Torres, F. Unda, S. Mato, Gaskon Ibarretxe, Jose Ramon Pineda

    Published 2025-01-01
    “…Conclusion Our study demonstrates that hDPSCs can be differentiated to neuronal-like cells that display functional excitability and thus evidence the potential of these easily accessible human stem cells for nerve tissue engineering. These results highlight the importance of choosing an appropriate culture protocol to successfully neurodifferentiate hDPSCs.…”
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    DNA-based hydrogels for bone regeneration: A promising tool for bone organoids by Xiang Wu, Yan Hu, Shihao Sheng, Huijian Yang, Zuhao Li, Qinglin Han, Qin Zhang, Jiacan Su

    Published 2025-04-01
    “…With these advantages and properties, these DNA-based hydrogels can be used to construct bone organoids, providing an innovative tool for disease modeling and therapeutic applications in bone tissue engineering. Finally, we discuss the current challenges and future prospects, emphasizing the potential impacts and applications in regenerative medicine.…”
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    PLL-g-HPA Hydrogel Loaded Human Umbilical Cord Mesenchymal Stem Cells Promote Burn Wound Healing in Rat Model by Regulating Inflammation Response by Tian L, Wang Z, Lei T, Feng L, Li Y, Wang K, Zhang Y, Zhang C, Liu J, Xing H, Ren W

    Published 2025-01-01
    “…Linqiang Tian,1,2 Zhaodong Wang,1,2 Tingting Lei,1,3 Lili Feng,1 Yanyan Li,1 Kunxi Wang,1 Yue Zhang,1 Chengshu Zhang,4 Jie Liu,1 Hongxia Xing,3 Wenjing Ren5 1Henan Key Medical Laboratory of Traumatics and Orthopaedics’ Research, The Third Affiliated Hospital of Xinxiang Medical University, Xinxiang, People’s Republic of China; 2Department of Orthopedics Surgery, The Third Affiliated Hospital of Xinxiang Medical University, Xinxiang, People’s Republic of China; 3Department of Neurology, The Third Affiliated Hospital of Xinxiang Medical University, Xinxiang, People’s Republic of China; 4Department of Burn and Plastic Surgery, General Hospital of PINGMEI SHENMA Group, Pingdingshan, People’s Republic of China; 5Clinical Medical Center of Tissue Engineering and Regeneration, Xinxiang Medical University, Xinxiang, People’s Republic of ChinaCorrespondence: Hongxia Xing; Wenjing Ren, Email xhxwh02@163.com; xxmu_rwj@163.comPurpose: Treatment of severe burn wound injury remains a significant clinical challenge as serious infections/complex repair process and irregulating inflammation response. …”
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  15. 475

    <i>Ex Vivo</i> Regional Gene Therapy Compared to Recombinant BMP-2 for the Treatment of Critical-Size Bone Defects: An In Vivo Single-Cell RNA-Sequencing Study by Arijita Sarkar, Matthew C. Gallo, Jennifer A. Bell, Cory K. Mayfield, Jacob R. Ball, Mina Ayad, Elizabeth Lechtholz-Zey, Stephanie W. Chang, Osamu Sugiyama, Denis Evseenko, Jay R. Lieberman

    Published 2025-01-01
    “…<i>Ex vivo</i> regional gene therapy is a promising tissue-engineering strategy for bone regeneration: osteogenic mesenchymal stem cells (MSCs) can be genetically modified to express an osteoinductive stimulus (e.g., bone morphogenetic protein-2), seeded onto an osteoconductive scaffold, and then implanted into a bone defect to exert a therapeutic effect. …”
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    Innovative approaches to boost mesenchymal stem cells efficacy in myocardial infarction therapy by Chuanfeng An, Yuan Zhao, Lipeng Guo, Zhijian Zhang, Chunxiao Yan, Shiying Zhang, Yujie Zhang, Fei Shao, Yuanyuan Qi, Xun wang, Huanan Wang, Lijun Zhang

    Published 2025-04-01
    “…Key approaches include optimizing cell delivery methods, enhancing cell engraftment, promoting cell functions through genetic and molecular modifications, enhancing the paracrine effects of stem cells, and leveraging biomaterials and tissue engineering techniques. By focusing on these enhancement techniques, the paper highlights innovative approaches that can potentially transform stem cell therapy into a more viable and effective treatment option for cardiac repair. …”
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    Autonomous inverse encoding guides 4D nanoprinting for highly programmable shape morphing by Shuaiqi Ren, Zhiang Zhang, Ruokun He, Jiahao Fan, Guangming Wang, Hesheng Wang, Bing Han, Yong-Lai Zhang, Zhuo-Chen Ma

    Published 2025-01-01
    “…This strategy may contribute to the modeling and arbitrary shape morphing of micro/nanostructures fabricated via 4D nanoprinting, leading to cutting-edge applications in microfluidics, micro-robotics, minimally invasive robotic surgery, and tissue engineering.…”
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