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Dive into the research topics where Weixia Zhang is active.

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Featured researches published by Weixia Zhang.


Nano Letters | 2017

Microfluidic Fabrication of Colloidal Nanomaterials-Encapsulated Microcapsules for Biomolecular Sensing

Xi Xie; Weixia Zhang; Alireza Abbaspourrad; Jiyoung Ahn; Andrew Bader; Suman Bose; Arturo Vegas; Jiaqi Lin; Jun Tao; Tian Hang; Hyomin Lee; Nicole M. Iverson; Gili Bisker; Linxian Li; Michael S. Strano; David A. Weitz; Daniel G. Anderson

Implantable sensors that detect biomarkers in vivo are critical for early disease diagnostics. Although many colloidal nanomaterials have been developed into optical sensors to detect biomolecules in vitro, their application in vivo as implantable sensors is hindered by potential migration or clearance from the implantation site. One potential solution is incorporating colloidal nanosensors in hydrogel scaffold prior to implantation. However, direct contact between the nanosensors and hydrogel matrix has the potential to disrupt sensor performance. Here, we develop a hollow-microcapsule-based sensing platform that protects colloidal nanosensors from direct contact with hydrogel matrix. Using microfluidics, colloidal nanosensors were encapsulated in polyethylene glycol microcapsules with liquid cores. The microcapsules selectively trap the nanosensors within the core while allowing free diffusion of smaller molecules such as glucose and heparin. Glucose-responsive quantum dots or gold nanorods or heparin-responsive gold nanorods were each encapsulated. Microcapsules loaded with these sensors showed responsive optical signals in the presence of target biomolecules (glucose or heparin). Furthermore, these microcapsules can be immobilized into biocompatible hydrogel as implantable devices for biomolecular sensing. This technique offers new opportunities to extend the utility of colloidal nanosensors from solution-based detection to implantable device-based detection.


Nature Communications | 2017

Bioinspired graphene membrane with temperature tunable channels for water gating and molecular separation

Liu J; Nü Wang; Li-Juan Yu; Amir Karton; Wen Li; Weixia Zhang; Fengyun Guo; Lanlan Hou; Qunfeng Cheng; Lei Jiang; David A. Weitz; Yong Zhao

Smart regulation of substance permeability through porous membranes is highly desirable for membrane applications. Inspired by the stomatal closure feature of plant leaves at relatively high temperature, here we report a nano-gating membrane with a negative temperature-response coefficient that is capable of tunable water gating and precise small molecule separation. The membrane is composed of poly(N-isopropylacrylamide) covalently bound to graphene oxide via free-radical polymerization. By virtue of the temperature tunable lamellar spaces of the graphene oxide nanosheets, the water permeance of the membrane could be reversibly regulated with a high gating ratio. Moreover, the space tunability endows the membrane with the capability of gradually separating multiple molecules of different sizes. This nano-gating membrane expands the scope of temperature-responsive membranes and has great potential applications in smart gating systems and molecular separation.The smart regulation of substance permeability is highly desirable for membrane separation technologies. Here, the authors design a poly(N-isopropylacrylamide)-grafted graphene oxide membrane with temperature tunable lamellar spaces, allowing for water gating and size-variable molecular separations.


Advanced Materials | 2018

Biodegradable Spheres Protect Traumatically Injured Spinal Cord by Alleviating the Glutamate-Induced Excitotoxicity

Dongfei Liu; Jian Chen; Tao Jiang; Wei Li; Yao Huang; Xiyi Lu; Zehua Liu; Weixia Zhang; Zheng Zhou; Qirui Ding; Hélder A. Santos; Guoyong Yin; Jin Fan

New treatment strategies for spinal cord injury with good therapeutic efficacy are actively pursued. Here, acetalated dextran (AcDX), a biodegradable polymer obtained by modifying vicinal diols of dextran, is demonstrated to protect the traumatically injured spinal cord. To facilitate its administration, AcDX is formulated into microspheres (≈7.2 µm in diameter) by the droplet microfluidic technique. Intrathecally injected AcDX microspheres effectively reduce the traumatic lesion volume and inflammatory response in the injured spinal cord, protect the spinal cord neurons from apoptosis, and ultimately, recover the locomotor function of injured rats. The neuroprotective feature of AcDX microspheres is achieved by sequestering glutamate and calcium ions in cerebrospinal fluid. The scavenging of glutamate and calcium ion reduces the influx of calcium ions into neurons and inhibits the formation of reactive oxygen species. Consequently, AcDX microspheres attenuate the expression of proapoptotic proteins, Calpain, and Bax, and enhance the expression of antiapoptotic protein Bcl-2. Overall, AcDX microspheres protect traumatically injured spinal cord by alleviating the glutamate-induced excitotoxicity. This study opens an exciting perspective toward the application of neuroprotective AcDX for the treatment of severe neurological diseases.


Advanced Functional Materials | 2016

Biodegradable Photothermal and pH Responsive Calcium Carbonate@Phospholipid@Acetalated Dextran Hybrid Platform for Advancing Biomedical Applications

Feng Kong; Hongbo Zhang; Xu Zhang; Dongfei Liu; Dong Chen; Weixia Zhang; Liyuan Zhang; Hélder A. Santos; Mingtan Hai


Advanced Functional Materials | 2017

Osmotic Pressure Triggered Rapid Release of Encapsulated Enzymes with Enhanced Activity

Weixia Zhang; Alireza Abbaspourrad; Dong Chen; Elizabeth Campbell; Hong Zhao; Yiwei Li; Qingning Li; David A. Weitz


Advanced Functional Materials | 2017

Rapid Assembly of Large Scale Transparent Circuit Arrays Using PDMS Nanofilm Shaped Coffee Ring

Yiwei Li; Weixia Zhang; Jiliang Hu; Yachao Wang; Xiaojun Feng; Wei Du; Ming Guo; Bi-Feng Liu


Chemical Society Reviews | 2018

Microfluidic fabrication of microparticles for biomedical applications

Wen Li; Liyuan Zhang; Xuehui Ge; Biyi Xu; Weixia Zhang; Liangliang Qu; Chang-Hyung Choi; Jianhong Xu; Afang Zhang; Hyomin Lee; David A. Weitz


Advanced Materials Interfaces | 2018

A Versatile Strategy to Fabricate 3D Conductive Frameworks for Lithium Metal Anodes

Li‐Ya Qi; Luoran Shang; Xi Chen; Luhan Ye; Weixia Zhang; Peijian Feng; Wei Zou; Naizhen Cao; Heng‐Hui Zhou; David A. Weitz; Xin Li


Advanced Materials | 2018

Neuroprotection: Biodegradable Spheres Protect Traumatically Injured Spinal Cord by Alleviating the Glutamate‐Induced Excitotoxicity (Adv. Mater. 14/2018)

Dongfei Liu; Jian Chen; Tao Jiang; Wei Li; Yao Huang; Xiyi Lu; Zehua Liu; Weixia Zhang; Zheng Zhou; Qirui Ding; Hélder A. Santos; Guoyong Yin; Jin Fan


Advanced Functional Materials | 2017

Microfluidics: Osmotic Pressure Triggered Rapid Release of Encapsulated Enzymes with Enhanced Activity (Adv. Funct. Mater. 29/2017)

Weixia Zhang; Alireza Abbaspourrad; Dong Chen; Elizabeth Campbell; Hong Zhao; Yiwei Li; Qingning Li; David A. Weitz

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Dongfei Liu

University of Helsinki

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