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3D Printing of Tough Hydrogel Scaffolds with Functional Surface Structures for Tissue Regeneration
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作者 Ke Yao Gaoying Hong +11 位作者 Ximin Yuan Weicheng Kong Pengcheng Xia Yuanrong Li Yuewei Chen Nian Liu Jing He Jue Shi zihe hu Yanyan Zhou Zhijian Xie Yong He 《Nano-Micro Letters》 SCIE EI CAS 2025年第2期18-45,共28页
Hydrogel scaffolds have numerous potential applications in the tissue engineering field.However,tough hydrogel scaffolds implanted in vivo are seldom reported because it is difficult to balance biocompatibility and hi... Hydrogel scaffolds have numerous potential applications in the tissue engineering field.However,tough hydrogel scaffolds implanted in vivo are seldom reported because it is difficult to balance biocompatibility and high mechanical properties.Inspired by Chinese ramen,we propose a universal fabricating method(printing-P,training-T,cross-linking-C,PTC&PCT)for tough hydrogel scaffolds to fill this gap.First,3D printing fabricates a hydrogel scaffold with desired structures(P).Then,the scaffold could have extraordinarily high mechanical properties and functional surface structure by cycle mechanical training with salting-out assistance(T).Finally,the training results are fixed by photo-cross-linking processing(C).The tough gelatin hydrogel scaffolds exhibit excellent tensile strength of 6.66 MPa(622-fold untreated)and have excellent biocompatibility.Furthermore,this scaffold possesses functional surface structures from nanometer to micron to millimeter,which can efficiently induce directional cell growth.Interestingly,this strategy can produce bionic human tissue with mechanical properties of 10 kPa-10 MPa by changing the type of salt,and many hydrogels,such as gelatin and silk,could be improved with PTC or PCT strategies.Animal experiments show that this scaffold can effectively promote the new generation of muscle fibers,blood vessels,and nerves within 4 weeks,prompting the rapid regeneration of large-volume muscle loss injuries. 展开更多
关键词 3D printing Tough hydrogel scaffold Functional surface structure Tissue regeneration BIOMATERIALS
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Gelatin-Based Metamaterial Hydrogel Films with High Conformality for Ultra-Soft Tissue Monitoring 被引量:1
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作者 Yuewei Chen Yanyan Zhou +10 位作者 zihe hu Weiying Lu Zhuang Li Ning Gao Nian Liu Yuanrong Li Jing He Qing Gao Zhijian Xie Jiachun Li Yong He 《Nano-Micro Letters》 SCIE EI CAS CSCD 2024年第2期347-364,共18页
Implantable hydrogel-based bioelectronics(IHB)can precisely monitor human health and diagnose diseases.However,achieving biodegradability,biocompatibility,and high conformality with soft tissues poses significant chal... Implantable hydrogel-based bioelectronics(IHB)can precisely monitor human health and diagnose diseases.However,achieving biodegradability,biocompatibility,and high conformality with soft tissues poses significant challenges for IHB.Gelatin is the most suitable candidate for IHB since it is a collagen hydrolysate and a substantial part of the extracellular matrix found naturally in most tissues.This study used 3D printing ultrafine fiber networks with metamaterial design to embed into ultra-low elastic modulus hydrogel to create a novel gelatin-based conductive film(GCF)with mechanical programmability.The regulation of GCF nearly covers soft tissue mechanics,an elastic modulus from 20 to 420 kPa,and a Poisson’s ratio from-0.25 to 0.52.The negative Poisson’s ratio promotes conformality with soft tissues to improve the efficiency of biological interfaces.The GCF can monitor heartbeat signals and respiratory rate by determining cardiac deformation due to its high conformability.Notably,the gelatin characteristics of the biodegradable GCF enable the sensor to monitor and support tissue restoration.The GCF metamaterial design offers a unique idea for bioelectronics to develop implantable sensors that integrate monitoring and tissue repair and a customized method for endowing implanted sensors to be highly conformal with soft tissues. 展开更多
关键词 Implantable hydrogel-based bioelectronics Conformality 3D printing Metamaterial design
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Extracellular vesicles derived from neural EGFL-Like 1-modified mesenchymal stem cells improve acellular bone regeneration via the miR-25-5p-SMAD2 signaling axis 被引量:4
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作者 Yanhua Lan huizhi Xie +9 位作者 Qianrui Jin Xiaomin Zhao Yang Shi Yanyan Zhou zihe hu Yi Ye Xiaoyuan huang Yingjia Sun Zhuo Chen Zhijian Xie 《Bioactive Materials》 SCIE 2022年第11期457-470,共14页
Stem cell based transplants effectively regenerate tissues;however, limitations such as immune rejection and teratoma formation prevent their application. Extracellular vesicles (EVs)-mediated acellular tissue regener... Stem cell based transplants effectively regenerate tissues;however, limitations such as immune rejection and teratoma formation prevent their application. Extracellular vesicles (EVs)-mediated acellular tissue regeneration is a promising alternative to stem cell based transplants. Although neural EGFL-like 1 (Nell1) is known to contribute to the osteogenic differentiation of bone marrow stem cells (BMSCs), it remains unknown whether EVs are involved in this process. Here, we present that EVs derived from Nell1-modified BMSCs (Nell1/EVs) have a stronger ability to promote BMSC osteogenesis owing to miR-25–5p downregulation. MiR-25–5p inhibits osteogenesis by targeting Smad2 and suppressing the SMAD and extracellular signal-related kinase 1 and 2 (ERK1/2) pathway activation. In addition, we demonstrate that the 3D-Nell1/EV-hydrogel system is beneficial for bone regeneration in vivo, probably stemming from a slow, continuous release and high concentration of EVs in the bone defect area. Thus, our results have shown the potential of Nell1/EVs as a novel acellular bone regeneration strategy. Mechanistically, the identification of miR-25-5p-SMAD2 signaling axis expands the knowledge of Nell1/EVs induced osteogenesis. 展开更多
关键词 Extracellular vesicles Mesenchymal stem cells Bone regeneration Cell-free scaffolds MIRNAS
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An asymmetric Janus membrane with anti-bacteria adhesion and rapid hemostasis properties for wound healing
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作者 zihe hu Gaoying Hong +6 位作者 Mumian Chen Haiyan Wu Weiying Lu Yuewei Chen Zhijian Xie Changyu Shao Jue Shi 《Journal of Materials Science & Technology》 2024年第25期201-214,共14页
Currently,commercial intraoral dressings have limitations as they only serve a single purpose and fail to meet various needs,such as hemostasis,wound protection,and dressing fixation.Here,we success-fully fabricated a... Currently,commercial intraoral dressings have limitations as they only serve a single purpose and fail to meet various needs,such as hemostasis,wound protection,and dressing fixation.Here,we success-fully fabricated a multifunctional polycaprolactone-chitosan Janus membrane(PCJM)with simultaneous hydrophobic and hydrophilic properties.The hydrophobic layer consists of a dense and disordered poly-caprolactone,preventing bacterial adhesion,resisting fouling,and enhancing mechanical strength.The hydrophilic layer is a highly porous chitosan sponge,which facilitates cell and protein adhesion,as well as rapid absorption of blood and activation of the coagulation process.These results are confirmed by hemostasis experiments,which demonstrate that the PCJM had superior coagulation ability compared to commercial gelatin sponges and gauze,and by an early gingival healing model of beagle tooth extraction wounds,which exhibited excellent performance in promoting wound healing.Our work demonstrates the multifunctional PCJM wound dressing not only protects wounds from bacterial infections but also facili-tates rapid hemostasis and early healing of beagle gingival soft tissue,which holds significant potential for clinical translation and large-scale production. 展开更多
关键词 Janus membrane Anti-bacteria Rapid hemostasis Wound healing
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