Journal of Inorganic Materials, Volume. 37, Issue 11, 1203(2022)
[1] J K CULLEN, J L SIMMONS, PG PARSONS et al. Topical treatments for skin cancer. Advance Drug Delivery Reviews(2020).
[2] A JEMA, F BRAY, M M CENTER et al. Global cancer statistics. CA-A Caner Journal for Clinicians, 69-90(2011).
[3] Q CHEN, H KE, Z DAI et al. Nanoscale theranostics for physical stimulus-responsive cancer therapies. Biomaterials(2015).
[4] B MA, W DANG, Z YANG et al. MoS2 nanoclusters-based biomaterials for disease-impaired wound therapy. Applied Material Today(2020).
[5] H MA, Q ZHOU, J CHANG et al. Grape seed-inspired smart hydrogel scaffolds for melanoma therapy and wound healing. ACS Nano, 4302-4311(2019).
[8] X DAI, T DU, K HAN. Engineering nanoparticles for optimized photodynamic therapy. ACS Biomaterials Science & Engineering, 6342-6354(2019).
[10] H LI, J CHANG. Bioactive silicate materials stimulate angiogenesis in fibroblast and endothelial cell co-culture system through paracrine effect. Acta Biomaterialia, 6981-6991(2013).
[11] H LI, W ZHAI, J CHANG. Effects of wollastonite on proliferation and differentiation of human bone marrow-derived stromal cells in PHBV/wollastonite composite scaffolds. Journal of Biomaterials Applications, 231-246(2009).
[13] W ZHAI, H LU, L CHEN et al. Silicate bioceramics induce angiogenesis during bone regeneration. Acta Biomaterialia, 341-349(2012).
[14] H LI, J HE, H YU et al. Bioglass promotes wound healing by affecting gap junction connexin 43 mediated endothelial cell behavior. Biomaterials(2016).
[15] H YU, J PENG, Y XU et al. Bioglass activated skin tissue engineering constructs for wound healing. ACS Applied Materials & Interfaces, 703-715(2016).
[17] C WU, Y ZHOU, M XU et al. Copper-containing mesoporous bioactive glass scaffolds with multifunctional properties of angiogenesis capacity, osteostimulation and antibacterial activity. Biomaterials, 422-433(2013).
[19] J CHEN, Y CAO, S LIN et al. A responsive microneedle system for efficient anti-melanoma by combining self-enhanced chemodynamic therapy with photothermal therapy. Chemical Engineering Journal, 133466(2022).
[20] N KONG, K LIN, H LI et al. Synergy effects of copper and silicon ions on stimulation of vascularization by copper-doped calcium silicate. Journal of Materials Chemistry B, 1100-1110(2014).
[21] V GIANNOULATU, G S THEODOROUS, T ZORBA et al. Magnesium calcium silicate bioactive glass doped with copper ions: synthesis and
[22] D JAIRTON, F ROBERTOB, D SOUZA et al. Ionic liquid (molten salt) phase organometallic catalysis. Chemical Reviews, 3667-3692(2002).
[26] I P S FERNANDO, W LEE, E J HAN et al. Alginate-based nano materials: fabrication techniques, properties, and applications. Chemical Engineering Journal(2020).
[28] W MA, H MA, P QIU et al. Sprayable
[31] Y LI, H SHAO, Z LIN et al. A general Lewis acidic etching route for preparing MXenes with enhanced electrochemical performance in non-aqueous electrolyte. Nature Materials, 894-900(2020).
[34] M GUO, J HE, S MA et al. Determination of Hg2+ based on the selective enhancement of peroxidase mimetic activity of hollow porous gold nanoparticles. Nano Brief Reports and Reviews, 1750050-11(2017).
[35] M KATHLEEN, L JOCHEN. Synthesis-structure-activity relationships in Co3O4 catalyzed CO oxidation. Frontiers in Chemistry(2018).
[38] D SHENG, T LIU, L DENG et al. Perfluorooctyl bromide & indo- cyanine green co-loaded nanoliposomes for enhanced multimodal imaging-guided phototherapy. Biomaterials(2018).
Get Citation
Copy Citation Text
Aijun WU, Min ZHU, Yufang ZHU.
Category: RESEARCH ARTICLE
Received: Mar. 21, 2022
Accepted: --
Published Online: Jan. 12, 2023
The Author Email: ZHU Min (mzhu@usst.edu.cn), ZHU Yufang (zjf2412@163.com)