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| 1 | Effects of individual branched-chain amino acids deprivation on insulin sensitivity and glucose metabolism in mice显示文摘 | Fei Xiao Junjie Yu Yajie Guo Jiali Deng Kai Li Ying Du Shanghai Chen Jianmin Zhu Hongguang Sheng Feifan Guo | 2014 | Metabolism2014,,: | 1 |
| 2 | High-Efficiency Wastewater Purification System Based on Coupled Photoelectric–Catalytic Action Provided by Triboelectric Nanogenerator显示文摘It is of great importance to explore a creative route to improve the degradation e ciency of organic pollutants in wastewater.Herein,we construct a unique hybrid system by combining self-powered triboelectric nanogenerator(TENG)with carbon dots-TiO_(2)sheets doped three-dimensional graphene oxide photocatalyst(3 DGA@CDs-TNs),which can significantly enhance the degradation e ciency of brilliant green(BG)and direct blue 5 B(DB)owing to the powerful interaction of TENG and 3 DGA@CDs-TNs photocatalyst.The power output of TENG can be applied for wastewater purification directly,which exhibits a selfpowered electrocatalytic technology.Furthermore,the results also verify that TENG can replace conventional electric catalyst to remove pollutants e ectively from wastewater without any consumption.Subsequently,the unstable fragments and the plausible removal pathways of the two pollutants are proposed.Our work sheds light on the development of e cient and sustainable TENG/photocatalyst system,opening up new opportunities and possibilities for comprehensive utilization of random energy. | Shen Shen Jiajia Fu Jia Yi Liyun Ma Feifan Sheng Chengyu Li Tingting Wang Chuan Ning Hongbo Wang Kai Dong Zhong Lin Wang | 2021 | Nano-Micro Letters2021,13,12: | 1 |
| 3 | Wearable energy harvesting-storage hybrid textiles as on-body self-charging power systems显示文摘The rapid development of wearable electronics requires its energy supply part to be flexible,wearable,integratable and sustainable.However,some of the energy supply units cannot meet these requirements at the same time,and there is also a capacity limitation of the energy storage units,and the development of sustainable wearable self-charging power supplies is crucial.Here,we report a wearable sustainable energy harvesting-storage hybrid self-charging power textile.The power textile consists of a coaxial fiber-shaped polylactic acid/reduced graphene oxide/polypyrrole(PLA-rGO-PPy)triboelectric nanogenerator(fiber-TENG)that can harvest low-frequency and irregular energy during human motion as a power generation unit,and a novel coaxial fiber-shaped supercapacitor(fiber-SC)prepared by functionalized loading of a wet-spinning graphene oxide fiber as an energy storage unit.The fiber-TENG is flexible,knittable,wearable and adaptable for integration with various portable electronics.The coaxial fiber-SC has high volumetric energy density and good cycling stability.The fiber-TENG and fiber-SC are flexible yarn structures for wearable continuous human movement energy harvesting and storage as on-body self-charging power systems,with light-weight,ease of preparation,great portability and wide applicability.The integrated power textile can provide an efficient route for sustainable working of wearable electronics. | Feifan Sheng Bo Zhang Renwei Cheng Chuanhui Wei Shen Shen Chuan Ning Jun Yang Yunbing Wang Zhong Lin Wang Kai Dong | 2023 | Nano Research Energy2023,2,4: | 0 |
| 4 | Effects of LPLI on microglial phagocytosis in LPS-induced neuroinflammation model显示文摘Microglial activation plays an important role in neurodegenerative diseases.Once activated,they have macrophage-like capabilities,which can be beneficial by phagocytosis and harmful by se-cretion of neurotoxins.However,the resident microglia always fail to trigger an effective pha-gocytic response to clear dead cells or Aβdeposits during the progression of neurodegeneration.Therefore,the regulation of microglial phagocytosis is considered a useful strategy in searchingfor neuroprotective treatments.In this study,our results showed that low-power laser iradiation(LPLI)(20 J/cm²)could enhance microglial phagocytic function in LPS-activated microglia.Wefound that LPLI-mediated microglial phagocytosis is a Rac-1-dependent actin-based process,that a constitutively activated form of Rac1(RaclQ61L)induced a higher level of actin pol-ymerization than cells transfected with wild-type Racl,whereas a dominant negative form ofRacl(RaclT17N)markedly suppressed actin polymerization.In addition,the involvement of Racl activation after LPLI treatment was also observed by using a Raichu fluorescence resonance energy transfer(FRET)-based biosensor.We also found that PI3K/Akt pathway was required inthe LPLI-induced Raci activation.Our research may provide a feasible therapeutic approach tocontrol the progression of neurodegenerative diseases. | Sheng Song Wei Chen Feifan Zhou | 2014 | Journal of Innovative Optical Health Sciences2014,7,3: | 0 |
| 5 | ANTI-TUMOR RESPONSES INDUCED BY LASER IRRADIATION AND IMMUNOLOGICAL STIMULATION USING A MOUSE MAMMARY TUMOR MODEL显示文摘Anti-tunor immunological response induced by local intervention is ideal for treatment of metastatic tumors.Laser immunot herapy was developed to synergize photot hermal interaction with immunological stimulation for cancer treatment.Using an infrared laser,indocyanine green(ICG,as a light abeorbing agent),and glycated chitosan(GC,as an immunostimulant),.laser imm unot herapy has resulted in tumor suppression and anti-tumor responses in pre-clinical as well as clinical studies.To further understand the mechanism of laser immunotherapy,the efects of laser and GC treatment without specifc enhancement of laser absorption were studied.Passive adoptive immunity transfer was perfomed using splenocytes as immune cells.Spleen cells harvested from tumor-bearing mice treated by laser+GC provided 60%immunity in naive recipients.Furthermore,cytotoxicity and TNF-ar secretion by splenocytes from treated mice also indicated that laser+GC induced immunity was tumor-specific.The high level of infiltrating T cells in tumors after laser+GC treatment furt her confirned a specific anti-tumor immune response.Therefore,laser+GC could prove to be a promisi ng selective local trea tment modality that induces a systemic anti-tumor response,with appropriate laser parameters and GC doses. | FEIFAN ZHOU XIAOSONG LI SHENG SONG JOSEPH T.ACQUAVIVA III ROMAN F.WOLF ERIC W.HOWARD WEI R.CHEN | 2013 | Journal of Innovative Optical Health Sciences2013,6,4: | 0 |
| 6 | Scalable one-step wet-spinning of triboelectric fibers for large-area power and sensing textiles显示文摘Textile-based electronic devices have attracted increasing interest in recent years due to their wearability,breathability,comfort.Among them,textile-based triboelectric nanogenerators(T-TENGs)exhibit remarkable advantages in mechanical energy harvesting and self-powered sensing.However,there are still some key challenges to the development and application of triboelectric fibers(the basic unit of T-TENG).Scalable production and large-scale integration are still significant factors hindering its application.At the same time,there are some difficulties to overcome in the manufacturing process,such as achieving good stretchability and a quick production,overcoming incompatibility between conductive and triboelectric materials.In this study,triboelectric fibers are produced continuously by one-step coaxial wet spinning.They are only 0.18 mm in diameter and consist of liquid metal(LM)core and polyurethane(PU)sheath.Due to the good mechanical properties between them,there is no interface incompatibility of the triboelectric fibers.In addition,triboelectric fibers can be made into large areas of T-TENG by means of digital embroidery and plain weave.The T-TENGs can be used for energy harvesting and self-powered sensing.When they are fixed on the forearm can monitor various strokes in badminton.This work provides a promising strategy for the large-scale fabrication and large-area integration of triboelectric fibers,promotes the development of wearable T-TENGs. | Chuan Ning Chuanhui Wei Feifan Sheng Renwei Cheng Yingying Li Guoqiang Zheng Kai Dong Zhong Lin Wang | 2023 | Nano Research2023,16,5: | 0 |