期刊文献+
共找到41篇文章
< 1 2 3 >
每页显示 20 50 100
Can AI transform biofabrication for clinical translation?
1
作者 Yongcong Fang Huayong Yang 《Bio-Design and Manufacturing》 2026年第1期1-3,共3页
“By successfully integrating artificial intelligence(AI)into research workflows,researchers could substantially increase scientific productivity”[1].In biofabrication,AI is dr iving a paradigm shift from empiricism ... “By successfully integrating artificial intelligence(AI)into research workflows,researchers could substantially increase scientific productivity”[1].In biofabrication,AI is dr iving a paradigm shift from empiricism toward intelligen t,data centric manufacturing[2].By integrating computation,automation,and biology,AI gives rise to self-evolving,adaptive systems that learn from data,predict complex behaviors,and autonomously optimize fabrication outcomes.Such systems translate experimental insights into patient-specific and clinically relevant solutions,bridging laboratory research and regenerative therapies[3].This emerging frontier is rapidly advancing from concept to application.This Special Column highlights how AI-driven advanc es in materials,design,and manufacturing are reshaping biof abrication for regenerative medicine and clinical translation. 展开更多
关键词 clinical translation artificial intelligence ai artificial intelligence BIOFABRICATION MATERIALS research workflowsresearchers paradigm shift learn datapredict
在线阅读 下载PDF
Advancements in 3D skin bioprinting:processes,bioinks,applications and sensor integration 被引量:1
2
作者 I Deniz Derman Taino Rivera +4 位作者 Laura Garriga Cerda Yogendra Pratap Singh Shweta Saini Hasan Erbil Abaci Ibrahim T Ozbolat 《International Journal of Extreme Manufacturing》 2025年第1期237-275,共39页
This comprehensive review explores the multifaceted landscape of skin bioprinting,revolutionizing dermatological research.The applications of skin bioprinting utilizing techniques like extrusion-,droplet-,laser-and li... This comprehensive review explores the multifaceted landscape of skin bioprinting,revolutionizing dermatological research.The applications of skin bioprinting utilizing techniques like extrusion-,droplet-,laser-and light-based methods,with specialized bioinks for skin biofabrication have been critically reviewed along with the intricate aspects of bioprinting hair follicles,sweat glands,and achieving skin pigmentation.Challenges remain with the need for vascularization,safety concerns,and the integration of automated processes for effective clinical translation.The review further investigates the incorporation of biosensor technologies,emphasizing their role in monitoring and enhancing the wound healing process.While highlighting the remarkable progress in the field,critical limitations and concerns are critically examined to provide a balanced perspective.This synthesis aims to guide scientists,engineers,and healthcare providers,fostering a deeper understanding of the current state,challenges,and future directions in skin bioprinting for transformative applications in tissue engineering and regenerative medicine. 展开更多
关键词 3D bioprinting skin models skin tissue engineering BIOFABRICATION biosensors
暂未订购
Microporous 3D bioprinting:a novel technology for biofabrication
3
作者 Hongxiang Cai Yongrui Cai +8 位作者 Zichuan Ding Jiaxuan Fan Yahao Lai Chao Huang Boyi Jiang Can Zhou Zongke Zhou Xingcai Zhang Zeyu Luo 《Bio-Design and Manufacturing》 2025年第5期847-876,I0069,共31页
Three-dimensional(3D)bioprinting provides a rapid and efficient method for fabricating customized bioprinted tissues that replicate the complex architecture of native tissues.However,in 3D bioprinting,the need for den... Three-dimensional(3D)bioprinting provides a rapid and efficient method for fabricating customized bioprinted tissues that replicate the complex architecture of native tissues.However,in 3D bioprinting,the need for dense biomaterial networks to ensure mechanical strength and structural fidelity often restricts the spreading,migration,and proliferation of encapsulated cells,as well as the transport of materials.This review summarizes effective strategies for manufacturing microporous bioprinted tissues via 3D bioprinting.The term“microporous”refers to interconnected,micrometer-sized pore-like structures within the internal materials of bioprinted tissues,including the microstructure of a single extruded fiber in extrusion printing.This differs from the macroscopic pore structure formed between fibers composed of print tracks or computer-aided design presets.These micropores play a crucial role in advancing biomanufacturing and 3D bioprinting by providing space for cell adhesion and proliferation while facilitating the timely transport of nutrients and metabolic waste essential for cell growth.Additionally,microporous bioprinted tissues offer the mechanical support needed for cell seeding and serve as sites for extracellular matrix deposition.As microporous 3D bioprinting continues to advance,it has the potential to address unresolved challenges in fields such as organ transplantation,tissue regeneration,and tissue replacement. 展开更多
关键词 BIOPRINTING MICROPOROUS HYDROGEL BIOFABRICATION
在线阅读 下载PDF
Advanced bioprinting strategies for fabrication of biomimetic tissues and organs
4
作者 Wei Long Ng Cian Vyas +2 位作者 Boyang Huang Wai Yee Yeong Paulo Bartolo 《International Journal of Extreme Manufacturing》 2025年第6期198-245,共48页
Bioprinting is a revolutionary technology within the field of tissue engineering that enables the precise fabrication of three-dimensional(3D)tissue constructs.It combines the principles of engineering and biology to ... Bioprinting is a revolutionary technology within the field of tissue engineering that enables the precise fabrication of three-dimensional(3D)tissue constructs.It combines the principles of engineering and biology to create structures that closely mimic the complexity of native human tissues,facilitating advancements in regenerative medicine and personalized healthcare.This review paper systematically explores the challenges and design requirements in the fabrication of 3D biomimetic tissue constructs,emphasizing the need for advanced bioprinting strategies.Achieving biomimicry involves creating 3D anatomically relevant structures,biomimetic microenvironments,and vascularization.The focus is on overcoming existing bottlenecks through advancements in both fabrication techniques and bio-inks.Future directions in bioprinting are outlined,including multi-modal bioprinting systems,in-situ bioprinting,and the integration of machine learning into bioprinting processes.The critical role of bio-inks and printing methodologies in influencing cell viability is highlighted,providing insights into strategies for enhancing cellular functionality throughout the bioprinting process.Furthermore,the paper addresses post-fabrication considerations,particularly in accelerating tissue maturation,as a pivotal component for advancing the clinical applicability of bioprinted tissues.By navigating through the challenges,innovations,and prospects of advanced bioprinting strategies,this review highlights the transformative impact on tissue engineering.Pushing the boundaries of technological capabilities,these strategies hold the promise of groundbreaking advancements in regenerative medicine and personalized healthcare.Ultimately,the integration of these advanced techniques into bioprinting processes will pave the way for the development of more highly biomimetic and functional bioprinted tissues. 展开更多
关键词 3D bioprinting BIOFABRICATION bio-inks machine learning multi-modal bioprinting tissue engineering
在线阅读 下载PDF
Biofabrication of brain-like living tissue:structure to intelligence
5
作者 Ling Wang Sen Wang +8 位作者 Yingjie Liu Bowen Zhang Zhaoyu Pan Luge Bai Siqi Yao Chenrui Zhang Huangfan Xie Jiankang He Dichen Li 《International Journal of Extreme Manufacturing》 2025年第3期160-181,共22页
Brain,the material foundation of human intelligence,is the most complex tissue in the human body.Brain diseases are among the leading threats to human life,yet our understanding of their pathogenic mechanisms and drug... Brain,the material foundation of human intelligence,is the most complex tissue in the human body.Brain diseases are among the leading threats to human life,yet our understanding of their pathogenic mechanisms and drug development remains limited,largely due to the lack of accurate brain-like tissue models that replicate its complex structure and functions.Therefore,constructing brain-like models—both in morphology and function—possesses significant scientific value for advancing brain science and pathological pharmacology research,representing the frontiers in the biomanufacturing field.This review outlines the primary requirements and challenges in biomanufacturing brain-like tissue,addressing its complex structures,functions,and environments.Also,the existing biomanufacturing technologies,strategies,and characteristics for brain-like models are depicted,and cutting-edge developments in biomanufacturing central neural repair prosthetics,brain development models,brain disease models,and brain-inspired biocomputing models are systematically reviewed.Finally,the paper concludes with future perspectives on the biomanufacturing of brain-like tissue transitioning from structural manufacturing to intelligent functioning. 展开更多
关键词 BIOFABRICATION brain-like tissue multicellular printing nerve repair prostheses brain-inspired biocomputing pharmacopathological models
暂未订购
Uniting an academic community via Bio-Design and Manufacturing
6
作者 Huayong Yang 《Bio-Design and Manufacturing》 2025年第5期705-708,共4页
As a follow-up to the successful International Conference on Biomaterials,Bio-Design and Manufacturing(BDMC)held at the National University of Singapore in 2023[1]and at the University of Tokyo in 2024[2],BDMC2025 too... As a follow-up to the successful International Conference on Biomaterials,Bio-Design and Manufacturing(BDMC)held at the National University of Singapore in 2023[1]and at the University of Tokyo in 2024[2],BDMC2025 took place at the University of Oxford in the UK from August 8th to August 10th this year.After the meeting,a participant from the University of Cambridge described his experience of attending BDMC2025 on the social media platform LinkedIn in the following terms:“Many thanks to the organizers for a fantastic event bringing together nearly everyone at the interface of Biofabrication,Materials Science,and Biomedical Engineering”[3].The conference was held on the campus of the University of Oxford and 190 researchers from 55 academic institutions across 10 countries and regions attended(Fig.1). 展开更多
关键词 bio design biomedical engineering MANUFACTURING BIOMATERIALS University Oxford social media platform linkedin BIOFABRICATION academic community
暂未订购
Biofabrication of Ag nanoparticles using Moringa oleifera leaf extract and their antimicrobial activity 被引量:7
7
作者 Prasad TNVKV Elumalai EK 《Asian Pacific Journal of Tropical Biomedicine》 SCIE CAS 2011年第6期439-442,共4页
Objective:To formulate a simple rapid procedure for bioreduction of silver nanoparticles using aqueous leaves extract of Moringa oleifera(M.oleifera).Methods:10 mL of leaf extract was mixed to 90 mL of 1 mM aqueous of... Objective:To formulate a simple rapid procedure for bioreduction of silver nanoparticles using aqueous leaves extract of Moringa oleifera(M.oleifera).Methods:10 mL of leaf extract was mixed to 90 mL of 1 mM aqueous of AgNO_3 and was heated at 60-80 ℃ for 20 min.A change from brown to reddish color was observed.Characterization using UV-Vis spectrophotometry, Transmission Electron Microscopy(TEM) was performed.Results:TEM showed the formation of silver nanoparticles with an average size of 57 nm.Conclusions:M.oleifera demonstrates strong potential for synthesis of silver nanoparticles by rapid reduction of silver ions(Ag^+ to Ag^0). Biological methods are good competents for the chemical procedures,which are eco-friendly and convenient. 展开更多
关键词 biofabreication SILVER NANOPARTICLES Moringa oleifera BIOREDUCTION
在线阅读 下载PDF
Three-dimensional bioprinting of gelatin methacryloyl (GelMA) 被引量:10
8
作者 Guoliang Ying Nan Jiang +1 位作者 Cunjiang Yu Yu Shrike Zhang 《Bio-Design and Manufacturing》 SCIE 2018年第4期215-224,共10页
The three-dimensional (3D)bioprinting technology has progressed tremendously over the past decade.By controlling the size, shape,and architecture of the bioprinted constructs,3D bioprinting allows for the fabrication ... The three-dimensional (3D)bioprinting technology has progressed tremendously over the past decade.By controlling the size, shape,and architecture of the bioprinted constructs,3D bioprinting allows for the fabrication of tissue/organ-like constructs with strong structural-functional similarity with their in vivo counterparts at high fidelity.The bioink,a blend of biomaterials and living cells possessing both high biocompatibility and printability,is a critical component of bioprinting.In particular, gelatin methacryloyl (GelMA)has shown its potential as a viable bioink material due to its suitable biocompatibility and readily tunable physicochemical properties.Current GelMA-based bioinks and relevant bioprinting strategies for GelMA bioprinting are briefly reviewed. 展开更多
关键词 BIOPRINTING Bioink GELATIN methacryloyl (GelMA) BIOFABRICATION -Tissue ENGINEERING TISSUE model
在线阅读 下载PDF
Current research progress of photopolymerized hydrogels in tissue engineering 被引量:8
9
作者 Ao Sun Xinye He +4 位作者 Xiao Ji Danrong Hu Meng Pan Linghong Zhang Zhiyong Qian 《Chinese Chemical Letters》 SCIE CAS CSCD 2021年第7期2117-2126,共10页
Owing to the special fo rmation of photopolymerized hydrogels,they can effectively control the formation of hydrogels in space and time.Moreover,the photopolymerized hydrogels have mild formation conditions and biocom... Owing to the special fo rmation of photopolymerized hydrogels,they can effectively control the formation of hydrogels in space and time.Moreover,the photopolymerized hydrogels have mild formation conditions and biocompatibility;therefore,they can be widely used in tissue engineering.With the development and application of manufacturing technology,photopolymerized hydrogels can be widely used in cell encapsulation,scaffold materials,and other tissue engineering fields through more elaborate manufacturing methods.This review covers the types of photoinitiators,manu facturing technologies for photopolymerized hydrogels as well as the materials used,and a summary of the applications of photopolymerized hydrogels in tissue engineering. 展开更多
关键词 HYDROGELS PHOTOPOLYMERIZATION PHOTOINITIATORS BIOFABRICATION Tissue engineering
原文传递
Photo-crosslinkable hydrogel and its biological applications 被引量:4
10
作者 Yuting Wang Shu Zhang Jian Wang 《Chinese Chemical Letters》 SCIE CAS CSCD 2021年第5期1603-1614,共12页
In the past few years,photo-crosslinkable hydrogels have drawn a great attention in tissue engineering applications due to their high biocompatibility and extracellular matrix(ECM)-like structure.They can be easily bi... In the past few years,photo-crosslinkable hydrogels have drawn a great attention in tissue engineering applications due to their high biocompatibility and extracellular matrix(ECM)-like structure.They can be easily biofabricated through exposure of a photosensitive system composed of photo-crosslinkable hydrogels,photo-initiators and other compounds such as cells and therapeutic molecules,to ultraviolet or visible light.With the development ofbiofabrication methods,many researchers studied the biological applications of photo-crosslinkable hydrogels in tissue engineering,such as vascular,wound dressing and bone engineering.This review highlights the biomaterials for photo-crosslinkable hydrogels,biofabrication techniques and their biological applications in tissue engineering.Meanwhile,the challenges and prospects of photo-crosslinkable hydrogels are discussed as well. 展开更多
关键词 Photo-crossli nkable Biomaterial HYDROGEL BIOFABRICATION Biological application
原文传递
3D bioprinting:current status and trends-a guide to the literature and industrial practice 被引量:4
11
作者 Silvia Santoni Simone G.Gugliandolo +2 位作者 Mattia Sponchioni Davide Moscatelli Bianca M.Colosimo 《Bio-Design and Manufacturing》 SCIE EI CAS CSCD 2022年第1期14-42,共29页
The multidisciplinary research field of bioprinting combines additive manufacturing,biology and material sciences to cre-ate bioconstructs with three-dimensional architectures mimicking natural living tissues.The high... The multidisciplinary research field of bioprinting combines additive manufacturing,biology and material sciences to cre-ate bioconstructs with three-dimensional architectures mimicking natural living tissues.The high interest in the possibility of reproducing biological tissues and organs is further boosted by the ever-increasing need for personalized medicine,thus allowing bioprinting to establish itself in the field of biomedical research,and attracting extensive research efforts from companies,universities,and research institutes alike.In this context,this paper proposes a scientometric analysis and critical review of the current literature and the industrial landscape of bioprinting to provide a clear overview of its fast-changing and complex position.The scientific literature and patenting results for 2000-2020 are reviewed and critically analyzed by retrieving 9314 scientific papers and 309 international patents in order to draw a picture of the scientific and industrial landscape in terms of top research countries,institutions,journals,authors and topics,and identifying the technology hubs worldwide.This review paper thus offers a guide to researchers interested in this field or to those who simply want to under-stand the emerging trends in additive manufacturing and 3D bioprinting. 展开更多
关键词 Additive manufacturing 3D bioprinting BIOFABRICATION Organ-on-a-chip Tissue engineering
暂未订购
3D tumor model biofabrication 被引量:4
12
作者 Ming Li Xueer Song +1 位作者 Sha Jin Kaiming Ye 《Bio-Design and Manufacturing》 SCIE EI CSCD 2021年第3期526-540,共15页
Animal models have been extensively used in cancer pathology studies and drug discovery.These models,however,fail to reflect the complex human tumor microenvironment and do not allow for high-throughput drug screening... Animal models have been extensively used in cancer pathology studies and drug discovery.These models,however,fail to reflect the complex human tumor microenvironment and do not allow for high-throughput drug screening in more human-like physiological conditions.Three-dimensional(3D)cancer models present an alternative to automated high-throughput cancer drug discovery and oncology.In this review,we highlight recent technology innovations in building 3D tumor models that simulate the complex human tumor microenvironment and responses of patients to treatment.We discussed various biofabrication technologies,including 3D bioprinting techniques developed for characterizing tumor progression,metastasis,and response to treatment. 展开更多
关键词 Tumor models BIOFABRICATION Tumor spheroids Microfluidic devices 3D bioprinting
暂未订购
Polyvinylpyrrolidone-based bioink:influence of bioink properties on printing performance and cell proliferation during inkjet-based bioprinting 被引量:3
13
作者 Wei Long Ng Xi Huang +2 位作者 Viktor Shkolnikov Ratima Suntornnond Wai Yee Yeong 《Bio-Design and Manufacturing》 SCIE EI CAS CSCD 2023年第6期676-690,共15页
Among the different bioprinting techniques,the drop-on-demand(DOD)jetting-based bioprinting approach facilitates contactless deposition of pico/nanoliter droplets ofmaterials and cells for optimal cell–matrix and cel... Among the different bioprinting techniques,the drop-on-demand(DOD)jetting-based bioprinting approach facilitates contactless deposition of pico/nanoliter droplets ofmaterials and cells for optimal cell–matrix and cell–cell interactions.Although bioinks play a critical role in the bioprinting process,there is a poor understanding of the influence of bioink properties on printing performance(such as filament elongation,formation of satellite droplets,and droplet splashing)and cell health(cell viability and proliferation)during the DOD jetting-based bioprinting process.An inert polyvinylpyrrolidone(PVP360,molecular weight=360 kDa)polymerwas used in this study to manipulate the physical properties of the bioinks and investigate the influence of bioink properties on printing performance and cell health.Our experimental results showed that a higher bioink viscoelasticity helps to stabilize droplet filaments before rupturing from the nozzle orifice.The highly stretched droplet filament resulted in the formation of highly aligned“satellite droplets,”which minimized the displacement of the satellite droplets away from the predefined positions.Next,a significant increase in the bioink viscosity facilitated droplet deposition on the wetted substrate surface in the absence of splashing and significantly improved the accuracy of the deposited main droplet.Further analysis showed that cell-laden bioinks with higher viscosity exhibited higher measured average cell viability(%),as the presence of polymer within the printed droplets provides an additional cushioning effect(higher energy dissipation)for the encapsulated cells during droplet impact on the substrate surface,improves the measured average cell viability even at higher droplet impact velocity and retains the proliferation capability of the printed cells.Understanding the influence of bioink properties(e.g.,bioink viscoelasticity and viscosity)on printing performance and cell proliferation is important for the formulation of new bioinks,and we have demonstrated precise DOD deposition of living cells and fabrication of tunable cell spheroids(nL–μL range)using multiple types of cells in a facile manner. 展开更多
关键词 BIOFABRICATION 3D bioprinting Drop-on-demand bioprinting Bioink properties POLYVINYLPYRROLIDONE
在线阅读 下载PDF
Process,Material,and Regulatory Considerations for 3D Printed Medical Devices and Tissue Constructs 被引量:3
14
作者 Wei Long Ng Jia An Chee Kai Chua 《Engineering》 SCIE EI CAS CSCD 2024年第5期146-166,共21页
Three-dimensional(3D)printing is a highly automated platform that facilitates material deposition in a layer-by-layer approach to fabricate pre-defined 3D complex structures on demand.It is a highly promising techniqu... Three-dimensional(3D)printing is a highly automated platform that facilitates material deposition in a layer-by-layer approach to fabricate pre-defined 3D complex structures on demand.It is a highly promising technique for the fabrication of personalized medical devices or even patient-specific tissue constructs.Each type of 3D printing technique has its unique advantages and limitations,and the selection of a suitable 3D printing technique is highly dependent on its intended application.In this review paper,we present and highlight some of the critical processes(printing parameters,build orientation,build location,and support structures),material(batch-to-batch consistency,recycling,protein adsorption,biocompatibility,and degradation properties),and regulatory considerations(sterility and mechanical properties)for 3D printing of personalized medical devices.The goal of this review paper is to provide the readers with a good understanding of the various key considerations(process,material,and regulatory)in 3D printing,which are critical for the fabrication of improved patient-specific 3D printed medical devices and tissue constructs. 展开更多
关键词 3D printing BIOPRINTING BIOFABRICATION Medical devices Tissue constructs
在线阅读 下载PDF
Digital biofabrication to realize the potentials of plant roots for product design 被引量:3
15
作者 Jiwei Zhou Bahareh Barati +2 位作者 Jun Wu Diana Scherer Elvin Karana 《Bio-Design and Manufacturing》 SCIE EI CSCD 2021年第1期111-122,共12页
Technological and economic opportunities,alongside the apparent ecological benefits,point to biodesign as a new industrial paradigm for the fabrication of products in the twenty-first century.The presented work studie... Technological and economic opportunities,alongside the apparent ecological benefits,point to biodesign as a new industrial paradigm for the fabrication of products in the twenty-first century.The presented work studies plant roots as a biodesign material in the fabrication of self-supported 3D structures,where the biologically and digitally designed materials provide each other with structural stability.Taking a material-driven design approach,we present our systematic tinkering activities with plant roots to better understand and anticipate their responsive behaviour.These helped us to identify the key design parameters and advance the unique potential of plant roots to bind discrete porous structures.We illustrate this binding potential of plant roots with a hybrid 3D object,for which plant roots connect 600 computationally designed,optimized,and fabricated bioplastic beads into a low stool. 展开更多
关键词 Plant roots Biodesign Digital biofabrication Material-driven design Living organisms
在线阅读 下载PDF
Preparation,Mechanical and Biological Properties of Inkjet Printed Alginate/Gelatin Hydrogel 被引量:2
16
作者 Tian Jiao Qin Lian +2 位作者 Tingze Zhao Huichao Wang Dichen Li 《Journal of Bionic Engineering》 SCIE EI CSCD 2021年第3期574-583,共10页
3D printing has made remarkable progress in soft tissue reconstruction enabling the custom design of complex material implants with patient specific geometry.The aim of this study was to inkjet print mechanically rein... 3D printing has made remarkable progress in soft tissue reconstruction enabling the custom design of complex material implants with patient specific geometry.The aim of this study was to inkjet print mechanically reinforced biocompatible hydrogels.Here,we developed a double crosslinked ink by optimizing the rheological properties of solutions of sodium alginate(NaAlg),NaAlg/transglutaminase(TG),CaCl_(2)and gelatin/CaCl_(2).The results showed that a two-component ink system comprising NaAlg(4%w/v)/TG(0.8%w/v)and gelatin(4%w/v)/CaCl_(2)(3%w/v)gave optimum printability.The mechanical and biological properties of printed alginate/gelatin hydrogels prepared from inks with different gelatin contents,and incorporated fibroblasts,were characterized by Scanning Electron Microscope(SEM),mechanical testing and laser confocal microscopy.The compressive moduli of alginate/gelatin hydrogels could be adjusted from 19.2 kPa±1.2 kPa to 65.9 kPa±3.3 kPa by increasing the content of gelatin.After incubation for 7 d,fibroblasts had permeated all printed hydrogels and the rate of proliferation increased with increasing gelatin content.The highest cell proliferation rate(497%)was obtained in a hydrogel containing 4.5%(w/v)gelatin.This study offers a new strategy for the fabrication of 3D structures used to mimic the function of native tissues. 展开更多
关键词 BIOFABRICATION inkjet printing double crosslinking ink mechanical and biological properties hydrogel preparation
在线阅读 下载PDF
Leading Approaches to Vascularize Kidney Constructs in Tissue Engineering 被引量:1
17
作者 Diana S.Lim John D.Jackson +1 位作者 Anthony Atala James J.Yoo 《Engineering》 SCIE EI CAS 2022年第12期117-127,共11页
There is an unprecedented need for new treatments for renal failure,as the incidence of this disease is increasing disproportionately to advancements in therapies.Current treatments are limited by the availability of ... There is an unprecedented need for new treatments for renal failure,as the incidence of this disease is increasing disproportionately to advancements in therapies.Current treatments are limited by the availability of viable organs,for which there is a worldwide lack.These treatment modalities also require a substantial amount of infrastructure,significantly limiting the access to care in most countries.Kidney tissue engineering approaches promise to develop alternative solutions that address many of the inadequacies in current care.Although many advancements have been made—primarily in the past decade—in biofabrication and whole-organ tissue engineering,many challenges remain.One major hindrance to the progress of current tissue engineering approaches is establishing successful vascularization of developed engineered tissue constructs.This review focuses on the recent advancements that address the vascular challenge,including the biofabrication of vasculature,whole-organ engineering through decellularization and recellularization approaches,microscale organogenesis,and vascularization using organoids in the context of kidney tissue engineering.We also highlight the specific challenges that remain in developing successful strategies capable of clinical translation. 展开更多
关键词 KIDNEY VASCULARIZATION Tissue engineering BIOFABRICATION ORGANOIDS
暂未订购
Jetting-based bioprinting:process,dispense physics,and applications 被引量:1
18
作者 Wei Long Ng Viktor Shkolnikov 《Bio-Design and Manufacturing》 SCIE EI CAS CSCD 2024年第5期771-799,共29页
Jetting-based bioprinting facilitates contactless drop-on-demand deposition of subnanoliter droplets at well-defined positions to control the spatial arrangement of cells,growth factors,drugs,and biomaterials in a hig... Jetting-based bioprinting facilitates contactless drop-on-demand deposition of subnanoliter droplets at well-defined positions to control the spatial arrangement of cells,growth factors,drugs,and biomaterials in a highly automated layer-by-layer fabrication approach.Due to its immense versatility,jetting-based bioprinting has been used for various applications,including tissue engineering and regenerative medicine,wound healing,and drug development.A lack of in-depth understanding exists in the processes that occur during jetting-based bioprinting.This review paper will comprehensively discuss the physical considerations for bioinks and printing conditions used in jetting-based bioprinting.We first present an overview of different jetting-based bioprinting techniques such as inkjet bioprinting,laser-induced forward transfer bioprinting,electrohydrodynamic jet bioprinting,acoustic bioprinting and microvalve bioprinting.Next,we provide an in-depth discussion of various considerations for bioink formulation relating to cell deposition,print chamber design,droplet formation and droplet impact.Finally,we highlight recent accomplishments in jetting-based bioprinting.We present the advantages and challenges of each method,discuss considerations relating to cell viability and protein stability,and conclude by providing insights into future directions of jetting-based bioprinting. 展开更多
关键词 3D bioprinting BIOFABRICATION Jetting-based Dispense physics Machine learning
在线阅读 下载PDF
Retrospective:Advances and Opportunities of 3D Bioprinting in China over Three Decades 被引量:2
19
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
暂未订购
Spheroid construction strategies and application in 3D bioprinting
20
作者 Chunxiang Lu Chuang Gao +4 位作者 Hao Qiao Yi Zhang Huazhen Liu Aoxiang Jin Yuanyuan Liu 《Bio-Design and Manufacturing》 SCIE EI CAS CSCD 2024年第5期800-818,共19页
Tissue engineering has been striving toward designing and producing natural and functional human tissues.Cells are the fundamental building blocks of tissues.Compared with traditional two-dimensional cultured cells,ce... Tissue engineering has been striving toward designing and producing natural and functional human tissues.Cells are the fundamental building blocks of tissues.Compared with traditional two-dimensional cultured cells,cell spheres are threedimensional(3D)structures that can naturally form complex cell–cell and cell–matrix interactions.This structure is close to the natural environment of cells in living organisms.In addition to being used in disease modeling and drug screening,spheroids have significant potential in tissue regeneration.The 3D bioprinting is an advanced biofabrication technique.It accurately deposits bioinks into predesigned 3D shapes to create complex tissue structures.Although 3D bioprinting is efficient,the time required for cells to develop into complex tissue structures can be lengthy.The 3D bioprinting of spheroids significantly reduces the time required for their development into large tissues/organs during later cultivation stages by printing them with high cell density.Combining spheroid fabrication and bioprinting technology should provide a new solution to many problems in regenerative medicine.This paper systematically elaborates and analyzes the spheroid fabrication methods and 3D bioprinting strategies by introducing spheroids as building blocks.Finally,we present the primary challenges faced by spheroid fabrication and 3D bioprinting with future requirements and some recommendations. 展开更多
关键词 SPHEROIDS STRATEGIES 3D bioprinting BIOFABRICATION
在线阅读 下载PDF
上一页 1 2 3 下一页 到第
使用帮助 返回顶部