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A microneedle substrate-based sutureless engineered cardiac patch for myocardial infarction repair
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作者 Zibo Liu Pengcheng Yang +7 位作者 Yueming Tian Heyuan Deng Jingjing Xia Binhan Li Bingyan Wu Yongcong Fang Zhuo Xiong Ting Zhang 《Bio-Design and Manufacturing》 2025年第6期917-929,I0001-I0003,共16页
Myocardial infarction(MI)is a challenging condition that results in scar formation on the ventricular wall,causing myocardial damage and ventricular thinning.Engineered cardiac patches(ECPs)designed to regenerate myoc... Myocardial infarction(MI)is a challenging condition that results in scar formation on the ventricular wall,causing myocardial damage and ventricular thinning.Engineered cardiac patches(ECPs)designed to regenerate myocardial tissue have been proposed to repair the ventricular wall and replenish myocardial cells.However,their clinical use is limited by manufacturing and fixation challenges.This study introduces a manufacturing strategy for a composite ECP,which comprises an antiadhesion shell layer,a conductive myocardial tissue,and an exosome-laden microneedle substrate.The ECP can anchor to the infarcted myocardium through its microneedle substrate.Meanwhile,its outer shell prevents nonspecific adhesion,enabling stable and suture-free attachment.Using this microneedle substrate,we applied a 3D-printed ECP in a rat model of post-MI repair.Our results showed that this strategy reduced left ventricular damage,improved cardiac ejection fraction,decreased the fibrotic area,increased ventricular wall thickness,improved microvascular recovery,and thus facilitated the repair of maladaptive ventricular remodeling post-MI.This microneedle substrate holds great promise for use in the fixation of patches during the repair of myocardial tissue and other organs,thereby promoting the clinical application of tissue-engineered patches. 展开更多
关键词 MICRONEEDLES Engineered cardiac patches Myocardial infarction repair
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Mechanical regulation and 3D bioprinting of native tissue-inspired granular composite hydrogels
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作者 Heyuan Deng Yongcong Fang +3 位作者 Zhengxun Gao Bingyan Wu Ting Zhang Zhuo Xiong 《Bio-Design and Manufacturing》 2025年第4期570-580,I0026-I0030,共16页
Granular composite(GC)hydrogels have attracted considerable interest in biomedical applications due to their versatile printability and exceptional mechanical properties.However,the lack of comprehensive design guidel... Granular composite(GC)hydrogels have attracted considerable interest in biomedical applications due to their versatile printability and exceptional mechanical properties.However,the lack of comprehensive design guidelines has limited their optimal engineering,as the factors influencing their mechanical performance and printability remain largely unexamined.In this study,we developed GC hydrogels by integrating microgels with interstitial matrices of photocrosslinkable gelatin methacrylate(GelMA).We utilized confocal microscopy and nanoindentation analyses to investigate the spatial distribution and mechanical behavior of these hydrogels.Our findings indicate that the mechanical and rheological properties of GC hydrogels can be precisely tailored by adjusting the volume fraction and size of the microgels.Furthermore,hydrogen bonds were identified as significant contributors to compressive performance,although they had minimal effect on cyclic mechanical behavior.Compared to bulk GelMA hydrogels,GC hydrogels demonstrated enhanced printability and remarkable superelasticity.As a proof of concept,we illustrated their dual printability in embedded printing to create prosthetic liver models for preoperative planning.This study provides valuable insights into the design and optimization of GC hydrogels for advanced biomedical applications. 展开更多
关键词 Granular composite hydrogel 3D bioprinting MICROGEL SUPERELASTICITY Preoperative planning
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3D printing for tissue/organ regeneration in China 被引量:3
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作者 Chaofan He Jiankang He +52 位作者 Chengtie Wu Changshun Ruan Qi Gu Yongqiang Hao Yang Wu Shuo Bai Xiaoxiao Han Liliang Ouyang Jun Yin Hongzhao Zhou Zhuo Xiong Maobin Xie Lei Shao Jing Nie Liang Ma Cijun Shuai Changchun Zhou Xin Zhao Xuetao Shi Mengfei Yu Jiayin Fu Peng Wen Huixia Xuan Yuan Pang Yan’en Wang Yuan Sun Ziqi Gao Abdellah Aazmi Jingbo Zhang Tianhong Qiao Qixiang Yang Ke Yao Mao Mao Jianxin Hao Pinpin Wang Jirong Yang Huawei Qu Xinhuan Wang Xin Liu Shen Ji Shasha Liu Jingke Fu Bingxian Lu Mohan Wu Feng Chen Zihao Zheng Boqing Zhang Muyuan Chai Chaoying Zhang Mouyuan Sun Bo Peng Huayong Yang Yong He 《Bio-Design and Manufacturing》 2025年第2期169-242,I0001,I0002,共76页
As surgical procedures transition from conventional resection to advanced tissue-regeneration technologies,human disease therapy has witnessed a great leap forward.In particular,three-dimensional(3D)bioprinting stands... As surgical procedures transition from conventional resection to advanced tissue-regeneration technologies,human disease therapy has witnessed a great leap forward.In particular,three-dimensional(3D)bioprinting stands as a landmark in this setting,by promising the precise integration of biomaterials,cells,and bioactive molecules,thus opening up a novel avenue for tissue/organ regeneration.Curated by the editorial board of Bio-Design and Manufacturing,this review brings together a cohort of leading young scientists in China to dissect the core functionalities and evolutionary trajectory of 3D bioprinting,by elucidating the intricate challenges encountered in the manufacturing of transplantable organs.We further delve into the translational pathway from scientific research to clinical application,emphasizing the imperativeness of establishing a regulatory framework and rigorously enforcing quality-control measures.Finally,this review outlines the strategic landscape and innovative achievements of China in this field and provides a comprehensive roadmap for researchers worldwide to propel this field collectively to even greater heights. 展开更多
关键词 3D printing BIOPRINTING Tissue engineering Regenerative medicine
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Bio-Manufacturing Research Center at Tsinghua University
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作者 Ting Zhang Feng Lin +6 位作者 Tao Xu Lei Zhang Rui Yao Yuan Pang Shengli Mi Shaohua Ma Wei Sun 《Bio-Design and Manufacturing》 SCIE CSCD 2019年第2期137-143,共7页
Overview and research infrastructure As one of the leading laboratories in the interdisciplinary field of additive manufacturing and bio-3D printing,the Bio-Manufacturing Center at Tsinghua University is highly dedica... Overview and research infrastructure As one of the leading laboratories in the interdisciplinary field of additive manufacturing and bio-3D printing,the Bio-Manufacturing Center at Tsinghua University is highly dedicated to conducting cutting-edge research in the emerging field of bio-manufacturing.The latter is comprised of research involving biomaterials,living cells,proteins,and/or other biological compounds as basic building blocks to fabricate biomimetic structures,in vitro functional biological models and/or cellular systems with application to tissue engineering,regenerative medicine,disease pathogenesis,drug screening,and tissue/organ-on-a-chip. 展开更多
关键词 Tsinghua UNIVERSITY LIVING cell PATHOGENESIS of DISEASE
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Retrospective:Advances and Opportunities of 3D Bioprinting in China over Three Decades 被引量:2
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作者 Xianhao Zhou Yongcong Fang +1 位作者 Ting Zhang Zhuo Xiong 《Additive Manufacturing Frontiers》 2024年第4期29-43,共15页
Three-dimensional(3D)bioprinting,which has been applied in tissue engineering and regenerative medicine,uses biomaterials,cells,and other essential components to manufacture organs and tissues with specific biological... Three-dimensional(3D)bioprinting,which has been applied in tissue engineering and regenerative medicine,uses biomaterials,cells,and other essential components to manufacture organs and tissues with specific biological functions and complex structures.Over the past 30 years,researchers have developed new 3D bioprinting technologies with improved manufacturing capabilities and expanded applications.Chinese research teams contributed significantly to this process.In this paper,we first reviewed the development history and major milestones in 3D bioprinting,categorizing them into two main strategies:"biomaterial-based indirect assembly"and"living cell-based direct assembly".This review further delved into the technical principles,recent advancements,advantages,disadvantages,and applications of each type of bioprinting technology.Finally,the challenges and future directions of 3D bioprinting were summarized to guide future research in China and foster advancements in this dynamic field. 展开更多
关键词 3D bioprinting BIOFABRICATION Bioink Regenerative medicine Disease modeling
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Engineering vascularized organotypic tissues via module assembly
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作者 Zhenzhen Zhou Changru Liu +2 位作者 Yuting Guo Yuan Pang Wei Sun 《International Journal of Extreme Manufacturing》 SCIE EI CAS CSCD 2024年第1期155-175,共21页
Adequate vascularization is a critical determinant for the successful construction and clinical implementation of complex organotypic tissue models. Currently, low cell and vessel density and insufficient vascular mat... Adequate vascularization is a critical determinant for the successful construction and clinical implementation of complex organotypic tissue models. Currently, low cell and vessel density and insufficient vascular maturation make vascularized organotypic tissue construction difficult,greatly limiting its use in tissue engineering and regenerative medicine. To address these limitations, recent studies have adopted pre-vascularized microtissue assembly for the rapid generation of functional tissue analogs with dense vascular networks and high cell density. In this article, we summarize the development of module assembly-based vascularized organotypic tissue construction and its application in tissue repair and regeneration, organ-scale tissue biomanufacturing, as well as advanced tissue modeling. 展开更多
关键词 vascularized organotypic tissue module assembly regenerative medicine tissue engineering
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Three-dimensional printing: review of application in medicine and hepatic surgery 被引量:10
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作者 Rui Yao Gang Xu +4 位作者 Shuang-Shuang Mao Hua-Yu Yang Xin-Ting Sang Wei Sun Yi-Lei Mao 《Cancer Biology & Medicine》 SCIE CAS CSCD 2016年第4期443-451,共9页
Three-dimensional(3D) printing(3DP) is a rapid prototyping technology that has gained increasing recognition in many different fields. Inherent accuracy and low-cost property enable applicability of 3DP in many areas,... Three-dimensional(3D) printing(3DP) is a rapid prototyping technology that has gained increasing recognition in many different fields. Inherent accuracy and low-cost property enable applicability of 3DP in many areas, such as manufacturing, aerospace,medical, and industrial design. Recently, 3DP has gained considerable attention in the medical field. The image data can be quickly turned into physical objects by using 3DP technology. These objects are being used across a variety of surgical specialties. The shortage of cadaver specimens is a major problem in medical education. However, this concern has been solved with the emergence of 3DP model. Custom-made items can be produced by using 3DP technology. This innovation allows 3DP use in preoperative planning and surgical training. Learning is difficult among medical students because of the complex anatomical structures of the liver. Thus, 3D visualization is a useful tool in anatomy teaching and hepatic surgical training. However,conventional models do not capture haptic qualities. 3DP can produce highly accurate and complex physical models. Many types of human or animal differentiated cells can be printed successfully with the development of 3D bio-printing technology. This progress represents a valuable breakthrough that exhibits many potential uses, such as research on drug metabolism or liver disease mechanism. This technology can also be used to solve shortage of organs for transplant in the future. 展开更多
关键词 3D printing technology 3D bio-printing technology SURGERY EDUCATION hepatic surgery
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Design, Characterization, and 3D Printing of Cardiovascular Stents with Zero Poisson’s Ratio in Longitudinal Deformation 被引量:3
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作者 Chengjin Wang Lei Zhang +1 位作者 Yongcong Fang Wei Sun 《Engineering》 SCIE EI 2021年第7期979-990,共12页
Inherent drawbacks associated with drug-eluting stents have prompted the development of bioresorbable cardiovascular stents.Additive manufacturing(3-dimentional(3D)printing)has been widely applied in medical devices.I... Inherent drawbacks associated with drug-eluting stents have prompted the development of bioresorbable cardiovascular stents.Additive manufacturing(3-dimentional(3D)printing)has been widely applied in medical devices.In this study,we develop a novel screw extrusion-based 3D printing system with a new designed mini-screw extruder to fabricate stents.A stent with a zero Poisson’s ratio(ZPR)structure is designed,and a preliminary monofilament test is conducted to investigate appropriate fabrication parameters.3D-printed stents with different geometric structures are fabricated and analyzed by observation of the surface morphology.An evaluation of the mechanical properties and a preliminary biological evaluation of 3D-printed stents with different parameters are carried out.In conclusion,the screw extrusion-based 3D printing system shows potential for customizable stent fabrication. 展开更多
关键词 Additive manufacturing 3D printing Screw extrusion Cardiovascular stent Zero Poisson’s ratio
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Medical Additive Manufacturing: From a Frontier Technology to the Research and Development of Products 被引量:2
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作者 Guixing Qiu Wenjiang Ding +36 位作者 Wei Tian Ling Qin Yu Zhao Lianmeng Zhang Jian Lu Daijie Chen Guangyi Yuan Chengtie Wu Bingheng Lu Ruxu Du Jimin Chen Mo Elbestawi Zhongwei Gu Dichen Li Wei Sun Yuanjin Zhao Jie He Dadi Jin Bin Liu Kai Zhang Jianmo Li Kam WLeong Dewei Zhao Dingjun Hao Yingfang Ao Xuliang Deng Huilin Yang ShaoKeh Hsu Yingqi Chen Long Li Jianping Fan Guohui Nie Yun Chen Hui Zeng Wei Chen Yuxiao Lai 《Engineering》 SCIE EI 2020年第11期1217-1221,共5页
1.Research and development(R&D)and the challenges of raw materials for medical additive manufacturing Raw materials for medical additive manufacturing have a wide range of commonalities that are also seen in many ... 1.Research and development(R&D)and the challenges of raw materials for medical additive manufacturing Raw materials for medical additive manufacturing have a wide range of commonalities that are also seen in many other fields,making them an important basis in the field of three-dimensional(3D)printing.Problems and challenges related to material types,powder properties,formability,viscoelasticity,and so forth also share common features.For example,many metal materials are used in the field of aviation,while metals,polymers,and inorganic materials are used in the field of biomedicine.The most widely used materials in biomedicine are biocompatible.Various homogeneous and non-homogeneous composites are also available for 3D printing,and impose an additional challenge in additive manufacturing;the use of heterogeneous composites in 3D printing is particularly challenging. 展开更多
关键词 COMPOSITES PRINTING ADDITIVE
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AI-driven 3D bioprinting for regenerative medicine:From bench to bedside 被引量:1
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作者 Zhenrui Zhang Xianhao Zhou +2 位作者 Yongcong Fang Zhuo Xiong Ting Zhang 《Bioactive Materials》 2025年第3期201-230,共30页
In recent decades,3D bioprinting has garnered significant research attention due to its ability to manipulate biomaterials and cells to create complex structures precisely.However,due to technological and cost constra... In recent decades,3D bioprinting has garnered significant research attention due to its ability to manipulate biomaterials and cells to create complex structures precisely.However,due to technological and cost constraints,the clinical translation of 3D bioprinted products(BPPs)from bench to bedside has been hindered by challenges in terms of personalization of design and scaling up of production.Recently,the emerging applications of artificial intelligence(AI)technologies have significantly improved the performance of 3D bioprinting.However,the existing literature remains deficient in a methodological exploration of AI technologies’potential to over-come these challenges in advancing 3D bioprinting toward clinical application.This paper aims to present a systematic methodology for AI-driven 3D bioprinting,structured within the theoretical framework of Quality by Design(QbD).This paper commences by introducing the QbD theory into 3D bioprinting,followed by sum-marizing the technology roadmap of AI integration in 3D bioprinting,including multi-scale and multi-modal sensing,data-driven design,and in-line process control.This paper further describes specific AI applications in 3D bioprinting’s key elements,including bioink formulation,model structure,printing process,and function regulation.Finally,the paper discusses current prospects and challenges associated with AI technologies to further advance the clinical translation of 3D bioprinting. 展开更多
关键词 3D bioprinting Artificial intelligence Machine learning Quality by design Regenerative medicine Clinical translation
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Culture models produced via biomanufacturing for neural tissue-like constructs based on primary neural and neural stem cells
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作者 Wei Chen Ke Gai +2 位作者 Feng Lin Wei Sun Yu Song 《Brain Science Advances》 2021年第4期220-238,共19页
Neural tissue-like constructs have important application potential in both neural tissue regeneration and individual medical treatment due to the ideal bioenvironment they provide for the growth of primary and stem ce... Neural tissue-like constructs have important application potential in both neural tissue regeneration and individual medical treatment due to the ideal bioenvironment they provide for the growth of primary and stem cells.The biomaterials used in threedimensional(3D)biomanufacturing techniques play a critical role in bioenvironment fabrication.They help optimize the manufacturing techniques and the long-term environment that supports cell structure and nutrient transmission.This paper reviews the current progress being made in the biomaterials utilized in neural cell cultures for in vitro bioenvironment construction.The following four requirements for biomaterials are evaluated:biocompatibility,porosity,supportability,and permeability.This study also summarizes the recent culture models based on primary neural cells.Furthermore,the biomaterials used for neural stem cell constructs are discussed.This study’s results indicate that compared with traditional twodimensional(2D)cultures(with minimal biomaterial requirements),modulus 3D cultures greatly benefit from optimized biomaterials for long-term culturing. 展开更多
关键词 primary neural cells neural stem cells neural tissue-like constructs BIOMATERIALS 3D bioprinting
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Oriented cellulose hydrogel:Directed tissue regeneration for reducing corneal leukoplakia and managing fungal corneal ulcers 被引量:2
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作者 Lina Dong Zixin Fan +9 位作者 Bixing Fang Xiaoyu Zhao Hongyi Yao Gangpei Cai Shuo Yang Guoming Zhang Xiaoqi Cheng Yun Feng Shengli Mi Wei Sun 《Bioactive Materials》 SCIE CSCD 2024年第11期15-29,共15页
Fungal corneal ulcer is one of the leading causes of corneal blindness in developing countries.Corneal scars such as leukoplakia are formed due to inflammation,oxidative stress and non-directed repair,which seriously ... Fungal corneal ulcer is one of the leading causes of corneal blindness in developing countries.Corneal scars such as leukoplakia are formed due to inflammation,oxidative stress and non-directed repair,which seriously affect the patients'subsequent visual and life quality.In this study,drawing inspiration from the oriented structure of collagen fibers within the corneal stroma,we first proposed the directional arrangement of CuTA-CMHT hydrogel system at micro and macro scales based on the 3D printing extrusion method combined with secondary patterning.It played an antifungal role and induced oriented repair in therapy of fungal corneal ulcer.The results showed that it effectively inhibited Candida albicans,Aspergillus Niger,Fusarium sapropelum,which mainly affects TNF,NF-kappa B,and HIF-1 signaling pathways,achieving effective antifungal functions.More importantly,the fibroblasts interacted with extracellular matrix(ECM)of corneal stroma through formation of focal adhesions,promoted the proliferation and directional migration of cells in vitro,induced the directional alignment of collagen fibers and corneal stromal orthogonally oriented repair in vivo.This process is mainly associated with MYLK,MYL9,and ITGA3 molecules.Furthermore,the downregulation the growth factors TGF-βand PDGF-βinhibits myofibroblast development and reduces scar-type ECM production,thereby reducing corneal leukoplakia.It also activates the PI3K-AKT signaling pathway,promoting corneal healing.In conclusion,the oriented CuTA-CMHT hydrogel system mimics the orthogonal arrangement of collagen fibers,inhibits inflammation,eliminates reactive oxygen species,and reduces corneal leukoplakia,which is of great significance in the treatment of fungal corneal ulcer and is expected to write a new chapter in corneal tissue engineering. 展开更多
关键词 Corneal leukoplakia Fungal corneal ulcers Oriented tissue regeneration Nanozyme Cellulose hydrogel
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Advances in 3D Bioprinting 被引量:5
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作者 Yongcong Fang Yuzhi Guo +7 位作者 Tiankun Liu Runze Xu Shuangshuang Mao Xingwu Mo Ting Zhang Liliang Ouyang Zhuo Xiong Wei Sun 《Chinese Journal of Mechanical Engineering(Additive Manufacturing Frontiers)》 2022年第1期1-15,共15页
Three-dimensional(3D)bioprinting has emerged as a promising approach for engineering functional tissues and organs by layer-by-layer precise positioning of biological materials,living cells,and biochemical components.... Three-dimensional(3D)bioprinting has emerged as a promising approach for engineering functional tissues and organs by layer-by-layer precise positioning of biological materials,living cells,and biochemical components.Compared with nonbiological printing,3D bioprinting involves additional complexities and technical challenges owing to the processing of living cells,such as the appropriate biomaterials that fulfill the requirements for both printability and functionality.In this review,we first introduce the development course of 3D bioprinting,highlighting innovative forms of living building blocks and advances in enabling techniques of 3D bioprinting.We then summarize the state-of-the-art advancements in 3D bioprinting for biomedical applications,including macroscale tissue or organ bioprinting,disease modeling,microphysiological systems,biobots,and bioprinting in space.Despite the rapid development of 3D bioprinting over the past decades,most 3D bioprinted tissue or organ constructs are still far from being suitable for clinical translation,and it is necessary for the field of bioprinting to shift its focus from shape mimicking towards functionality development.Therefore,we provide our perspectives on this burgeoning field with an emphasis on functional maturation post printing and translational applications at the bedside. 展开更多
关键词 3D bioprinting Tissue engineering Disease model Organ-on-a-chip Biohybrid robots Space bioprinting
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3D magnetic field guided sunflower-like nanocatalytic active swarm targeting patients-derived organoids 被引量:1
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作者 Dong Liu Ruirui Guo +11 位作者 Shuangshuang Mao Yanjie Huang Bin Wang Zijian Wu Xuanjie Xia Jian Dong Yu Xin Ruiyang Xie Jianzhong Shou Wei Sun Yuan Pang Yuan Lu 《Nano Research》 SCIE EI CSCD 2023年第1期1021-1032,共12页
Nanocatalytic medicine triggering in situ catalytic reactions has been considered as a promising strategy for tumor-selective therapeutics.However,the targeted distribution of nanocatalysts was still low,considering t... Nanocatalytic medicine triggering in situ catalytic reactions has been considered as a promising strategy for tumor-selective therapeutics.However,the targeted distribution of nanocatalysts was still low,considering the absence of targeting propulsion capability.Here,encouraged by the fast-developing controllable microrobotics for targeting delivery,a sunflower-like nanocatalytic active swarm(SNCAS)controlled by a three-dimensional(3D)magnetic field was proposed for synergistic tumorselective and magnetic-actively tumor-targeting therapeutics.Furthermore,a patient-derived renal cancer cell 3D organoid was utilized for the verification of the effective tumor therapeutic outcomes.Under the targeted control of 3D magnetic field,the multiple cascade catalytic efficiency of SNCAS based on Fenton reaction was evaluated,resulting in efficient tumor cell apoptosis and death.For the patient-derived organoid treatment,the SNCAS presented significant lethality toward 3D organoid structure to induce cell apoptosis with the collapse of organoid morphology.The targeting efficiency was further enhanced under the magnetic-controllable of SNCAS.Overall,empowered by the magnetic control technology,the synergistic therapeutic strategy based on controllable swarm combined active targeting and tumor-specific catalytic nanomedicine has provided a novel way for advanced cancer therapy.Meanwhile,3D patient-derived organoids were proved as a powerful tool for the effectiveness verification of nanocatalytic medicine. 展开更多
关键词 nanocatalytic swarm magnetic control patients-derived organoids
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Towards smart scanning probe lithography: a framework accelerating nano-fabrication process with in-situ characterization via machine learning 被引量:1
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作者 Yijie Liu Xuexuan Li +3 位作者 Ben Pei Lin Ge Zhuo Xiong Zhen Zhang 《Microsystems & Nanoengineering》 SCIE EI CSCD 2023年第5期281-294,共14页
Scanning probe lithography(SPL)is a promising technology to fabricate high-resolution,customized and costeffective features at the nanoscale.However,the quality of nano-fabrication,particularly the critical dimension,... Scanning probe lithography(SPL)is a promising technology to fabricate high-resolution,customized and costeffective features at the nanoscale.However,the quality of nano-fabrication,particularly the critical dimension,is significantly influenced by various SPL fabrication techniques and their corresponding process parameters.Meanwhile,the identification and measurement of nano-fabrication features are very time-consuming and subjective.To tackle these challenges,we propose a novel framework for process parameter optimization and feature segmentation of SPL via machine learning(ML).Different from traditional SPL techniques that rely on manual labeling-based experimental methods,the proposed framework intelligently extracts reliable and global information for statistical analysis to finetune and optimize process parameters.Based on the proposed framework,we realized the processing of smaller critical dimensions through the optimization of process parameters,and performed direct-write nano-lithography on a large scale.Furthermore,data-driven feature extraction and analysis could potentially provide guidance for other characterization methods and fabrication quality optimization. 展开更多
关键词 LITHOGRAPHY PROCESS characterization
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Construction and Application of in vitro Alveolar Models Based on 3D Printing Technology 被引量:2
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作者 Tiankun Liu Chang Zhou +4 位作者 Yongchun Shao Zhuo Xiong Ding Weng Yuan Pang Wei Sun 《Chinese Journal of Mechanical Engineering(Additive Manufacturing Frontiers)》 2022年第2期58-65,共8页
Increasing lung diseases,mutating coronaviruses,and the development of new compounds urgently require biomimetic in vitro lung models for lung pathology,toxicology,and pharmacology.The current construction strategies ... Increasing lung diseases,mutating coronaviruses,and the development of new compounds urgently require biomimetic in vitro lung models for lung pathology,toxicology,and pharmacology.The current construction strategies for lung models mainly include animal models,2D cell culture,lung-on-a-chip,and lung organoids.However,current models face difficulties in reproducing in vivo-like alveolar size and vesicle-like structures,and are unable to contain multiple cell types.In this study,a strategy for constructing alveolar models based on degradable hydrogel microspheres is proposed.Hydrogel microspheres,200-250μm in diameter,were prepared using a self-developed printing technique driven by alternating viscous and inertial forces.Microcapsules were further constructed using a coacervation-based layer-by-layer technique and core liquefaction.Three types of cells were inoculated and co-cultured on hydrogel capsules based on optimized microcapsule surface treatment strategies.Finally,an in vitro three-dimensional endothelial alveolar model with a multicellular composition and vesicle-like structure with a diameter of approximately 230μm was successfully constructed.Cells in the constructed alveolar model maintained a high survival rate.The LD_(50)values of glutaraldehyde based on the constructed models were in good agreement with the reference values,validating the potential of the model for future toxicant and drug detection. 展开更多
关键词 3D printing Lung model Hydrogel beads MICROCAPSULE Toxicity test
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Coaxial Embedded Printing of Gelatin Methacryloyl-alginate Double Network Hydrogel for Multilayer Vascular Tubes 被引量:1
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作者 Min Ye Bingchuan Lu +3 位作者 Xinyun Zhang Binhan Li Zhuo Xiong Ting Zhang 《Chinese Journal of Mechanical Engineering(Additive Manufacturing Frontiers)》 2022年第2期50-57,共8页
The reconstruction of vascular-like tissues exhibiting a typical three-layer structure in vitro is vital to bio-fabrication research.It enables the realization of more complicated micro-environments,such as myocardium... The reconstruction of vascular-like tissues exhibiting a typical three-layer structure in vitro is vital to bio-fabrication research.It enables the realization of more complicated micro-environments,such as myocardium,liver,and tumor,which enables us to investigate their specific physiological phenomena or pathological mecha-nisms.Herein,we propose a coaxial embedded printing method,where the gelatin methacrylate(GelMA)-alginate composite hydrogel and sacrificial materials are extruded from a coaxial nozzle into a cylinder mold.By applying this method,we achieve the rapid fabrication of multilayer tube structures with inner diameters ranging from 400 to 1000μm.In addition,myoblasts are encapsulated in the hydrogel,and the cells show high viability.Moreover,we encapsulate smooth muscle cells(SMCs)and the human umbilical vein endothelial cells-T1(HUVEC-T1)cell line in the hydrogel to form vascular-like tissues,and the cells exhibit good morphology and protein expression.These results suggest that a vascular tube fabricated using the proposed method can serve as a vascular model for in vitro studies. 展开更多
关键词 Coaxial nozzle Embedded printing GleMA–alginate hydrogel Multilayer vascular tubes
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Digital light processing (DLP)-based (bio)printing strategies for tissue modeling and regeneration 被引量:1
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作者 Hongbin Li Jiliang Dai +4 位作者 Zixuan Wang Heshan Zheng Wanlu Li Mian Wang Feng Cheng 《Aggregate》 2023年第2期42-61,共20页
Digital light processing(DLP)-based bioprinting technology has recently aroused considerable concerns as a strategy to deliver biomedical materials and/or specific cells to create sophisticated structures for various ... Digital light processing(DLP)-based bioprinting technology has recently aroused considerable concerns as a strategy to deliver biomedical materials and/or specific cells to create sophisticated structures for various tissue modeling and regeneration.In this review,we display a concise introduction of DLP bioprinting,and a further discussion on the design and manufacture of DLP(bio)printer with varied bioinks and their biomedical applications toward drug screening,disease modeling,tissue repair,and regenerative medicine.Finally,the advantages,challenges,and perspectives of the DLP printing platforms are detailed.It is believed that DLP bioprinting will play a decisive role in the field of tissue model and regenerative medicine,mainly due to its time-efficient,higher resolution,and amenability to automation for various tissue needs. 展开更多
关键词 disease modeling DLP bioprinting drug screening tissue modeling
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Antioxidant activity of phlorotannins from brown algae
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作者 Xin Liu Wenqiao Yuan +1 位作者 Ratna Sharma-Shivappa John van Zanten 《International Journal of Agricultural and Biological Engineering》 SCIE EI CAS 2017年第6期184-191,共8页
The antioxidant activity of the phlorotannins extracted from five marine algaespecies(Saccharina latissima,Alaria esculenta,Laminaria digitata,Fucus vesiculosusand Ascophyllum nodosum)was studied.Three phlorotannin gr... The antioxidant activity of the phlorotannins extracted from five marine algaespecies(Saccharina latissima,Alaria esculenta,Laminaria digitata,Fucus vesiculosusand Ascophyllum nodosum)was studied.Three phlorotannin groups,including soluble,membrane-bound,and extracted membrane-bound phlorotannins obtained by two solvent extraction methods were investigated for their DPPH radical scavenging activity.F.vesiculosusand A.nodosumshowed the highest phlorotannin yield(14.83 mg-extract/g-algae and 12.80 mg-extract/g-algae,respectively)among the five algaespecies.Their soluble phlorophannin(SP),membrane-bound phlorotannin(MP)and extracted membrane-bound phlorotannin(eMP)extracts all showed equal or greater DPPH radical scavenging activity than the commercial antioxidants of butylated hydroxytoluene and ascorbic acid.The antioxidant potential that combines phlorotannin yield and antioxidant activity of the MP extracts of F.vesiculosusand A.nodosum(5890mL/g and 5278 mL/g algae,respectively)were higher than those of SP and eMP,suggesting that the MPs of F.vesiculosusand A.nodosumhad great potential to be used as antioxidants.Different extraction methods also showed significantly different effects on the antioxidant activity of the phlorotannin extracts. 展开更多
关键词 brown algae PHLOROTANNIN antioxidant activity antioxidant BIOSEPARATION POLYPHENOL solvent extraction methods
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Creating a semi-opened micro-cavity ovary through sacrificial microspheres as an in vitro model for discovering the potential effect of ovarian toxic agents
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作者 Min Ye Yiran Shan +9 位作者 Bingchuan Lu Hao Luo Binhan Li Yanmei Zhang Zixuan Wang Yuzhi Guo Liliang Ouyang Jin Gu Zhuo Xiong Ting Zhang 《Bioactive Materials》 SCIE CSCD 2023年第8期216-230,共15页
The bio-engineered ovary is an essential technology for treating female infertility.Especially the development of relevant in vitro models could be a critical step in a drug study.Herein,we develop a semi-opened cultu... The bio-engineered ovary is an essential technology for treating female infertility.Especially the development of relevant in vitro models could be a critical step in a drug study.Herein,we develop a semi-opened culturing system(SOCS)strategy that maintains a 3D structure of follicles during the culture.Based on the SOCS,we further developed micro-cavity ovary(MCO)with mouse follicles by the microsphere-templated technique,where sacrificial gelatin microspheres were mixed with photo-crosslinkable gelatin methacryloyl(GelMA)to engineer a micro-cavity niche for follicle growth.The semi-opened MCO could support the follicle growing to the antral stage,secreting hormones,and ovulating cumulus-oocyte complex out of the MCO without extra manipulation.The MCO-ovulated oocyte exhibits a highly similar transcriptome to the in vivo counterpart(correlation of 0.97)and can be fertilized.Moreover,we found that a high ROS level could affect the cumulus expansion,which may result in anovulation disorder.The damage could be rescued by melatonin,but the end of cumulus expansion was 3h earlier than anticipation,validating that MCO has the potential for investigating ovarian toxic agents in vitro.We provide a novel approach for building an in vitro ovarian model to recapitulate ovarian functions and test chemical toxicity,suggesting it has the potential for clinical research in the future. 展开更多
关键词 Bio-engineered ovary SOCS Semi-opened MCO Ovarian model Drug study
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