2,485
Views
13
CrossRef citations to date
0
Altmetric
Research Article

Novel mitochondrial targeting charge-reversal polysaccharide hybrid shell/core nanoparticles for prolonged systemic circulation and antitumor drug delivery

, , , , , & ORCID Icon show all
Pages 1125-1139 | Received 06 Oct 2019, Accepted 29 Oct 2019, Published online: 18 Nov 2019

References

  • Babu P, Manu PM, Dhanya TJ, et al. (2017). Bis(3,5-diiodo-2,4,6-trihydroxyphenyl)squaraine photodynamic therapy disrupts redox homeostasis and induce mitochondria-mediated apoptosis in human breast cancer cells. Sci Rep 7:42126.
  • Besson E, Gastaldi S, Bloch E, et al. (2019). Embedding cyclic nitrone in mesoporous silica particles for EPR spin trapping of superoxide and other radicals. Analyst 144:4194.
  • Borri C, Centi S, Ratto F, et al. (2018). Polylysine as a functional biopolymer to couple gold nanorods to tumor-tropic cells. J Nanobiotechnol 16:50.
  • Chen J, Ding J, Wang Y, et al. (2017). Sequentially responsive shell-stacked nanoparticles for deep penetration into solid tumors. Adv Mater 29: 1701170.
  • Chuang C, Wu PC, Tsai TH, et al. (2017). Development of pH-sensitive cationic PEGylated solid lipid nanoparticles for selective cancer-targeted therapy. J Biomed Nanotechnol 13:192–203.
  • Dai Q, Wilhelm S, Ding D, et al. (2018). Quantifying the ligand-coated nanoparticle delivery to cancer cells in solid tumours. ACS Nano 12:8423.
  • Fan B, Kang L, Chen L, et al. (2017). Systemic siRNA delivery with a dual pH-responsive and tumor-targeted nanovector for inhibiting tumor growth and spontaneous metastasis in orthotopic murine model of breast carcinoma. Theranostics 7:357–76.
  • Gulzar A, Xu J, Wang C, et al. (2019). Tumour microenvironment responsive nanoconstructs for cancer theranostic. Nano Today 26:16–56.
  • Hu L, Zhang P, Wang X, et al. (2017). pH-sensitive carboxymethyl chitosan hydrogels via acid-labile ortho ester linkage for potential biomedical applications. Carbohydr Polymers 178:166–79.
  • Huang Q, Wang L, Yu H, et al. (2019). Advances in phenylboronic acid-based closed-loop smart drug delivery system for diabetic therapy. J Control Release 305:50–64.
  • Huo C, Xiao K, Zhang S, et al. (2018). H5N1 influenza a virus replicates productively in pancreatic cells and induces apoptosis and pro-inflammatory cytokine response. Front Cell Infect Microbiol 8:386.
  • Jeong JY, Hong EH, Lee SY, et al. (2017). Boronic acid-tethered amphiphilic hyaluronic acid derivative-based nanoassemblies for tumor targeting and penetration. Acta Biomater 53:414–26.
  • Jiang D, Mu W, Pang X, et al. (2018). Cascade cytosol delivery of dual-sensitive micelle-tailored vaccine for enhancing cancer immunotherapy. ACS Appl Mater Interfaces 10:37797–811.
  • Jing Y, Xiong X, Ming Y, et al. (2018). A multifunctional micellar nanoplatform with pH-triggered cell penetration and nuclear targeting for effective cancer therapy and inhibition to lung metastasis. Adv Healthcare Mater 7:1700974.
  • Kim J, Lee YM, Kim H, et al. (2016). Phenylboronic acid-sugar grafted polymer architecture as a dual stimuli-responsive gene carrier for targeted anti-angiogenic tumor therapy. Biomaterials 75:102–11.
  • Kundu M, Sadhukhan P, Ghosh N, et al. (2019). pH-responsive and targeted delivery of curcumin via phenylboronic acid-functionalized ZnO nanoparticles for breast cancer therapy. J Adv Res 18:161–72.
  • Lang T, Dong X, Zheng Z, et al. (2019). Tumor microenvironment-responsive docetaxel-loaded micelle combats metastatic breast cancer. Sci Bull 64:91–100.
  • Ling M, Liu Y, Rao J, et al. (2018). Enhanced tumor retention effect by click chemistry for improved cancer immunochemotherapy. ACS Appl Mater Interfaces 10:17582–17593.
  • Lv Q, Yang X, Wang M, et al. (2018). Mitochondria-targeted prostate cancer therapy using a near-infrared fluorescence dye–monoamine oxidase A inhibitor conjugate. J Control Release 279:234.
  • Ma X, Ren X, Guo X, et al. (2019). Multifunctional iron-based Metal-Organic framework as biodegradable nanozyme for microwave enhancing dynamic therapy. Biomaterials 214:119223.
  • Pan G, Jia H, Zhu Y, et al. (2018). Cyanine-containing polymeric nanoparticles with imaging/therapy-switchable capability for mitochondria-targeted cancer theranostics. ACS Appl Nano Mater 1:2885.
  • Ranalli A, Santi M, Capriotti L, et al. (2017). Peptide-based stealth nanoparticles for targeted and pH-triggered delivery. Bioconjugate Chem 28:627.
  • Roma-Rodrigues C, Pombo I, Raposo L, et al. (2019). Nanotheranostics targeting the tumor microenvironment. Front Bioeng Biotechnol 7:197.
  • Seidi K, Neubauer HA, Moriggl R, et al. (2018). Tumor target amplification: implications for nano drug delivery systems. J Control Release 275:142–61.
  • Song H, Wang C, Zhang H, et al. (2019). A high-loading drug delivery system based on magnetic nanomaterials modified by hyperbranched phenylboronic acid for tumor-targeting treatment with pH response. Colloids Surf B Biointerfaces 182:110375.
  • Song J, Lin C, Yang X, et al. (2019). Mitochondrial targeting nanodrugs self-assembled from 9-O-octadecyl substituted berberine derivative for cancer treatment by inducing mitochondrial apoptosis pathways. J Control Release 294:27–42.
  • Sun C, Cao Y, Zhu P, et al. (2017). A mitochondria-targeting artemisinin derivative with sharply increased antitumor but depressed anti-yeast and anti-malaria activities. Sci Rep 7:45665.
  • Taleb M, Ding Y, Wang B, et al. (2019). Dopamine delivery via pH-sensitive nanoparticles for tumor blood vessel normalization and an improved effect of cancer chemotherapeutic drugs. Adv Healthcare Mater 8:1900283.
  • Tan Y, Zhu Y, Zhao Y, et al. (2018). Mitochondrial alkaline pH-responsive drug release mediated by celastrol loaded glycolipid-like micelles for cancer therapy. Biomaterials 154:169–81.
  • Tuo J, Xie Y, Song J, et al. (2016). Development of a novel berberine-mediated mitochondria-targeting nano-platform for drug-resistant cancer therapy. J Mater Chem B 4:6856–64.
  • Wang S, Zhang J, Wang Y, et al. (2016). Hyaluronic acid-coated PEI-PLGA nanoparticles mediated co-delivery of doxorubicin and miR-542-3p for triple negative breast cancer therapy. Nanomedicine 12:411–20.
  • Wang Y, Xie Y, Li J, et al. (2017). Tumor-penetrating nanoparticles for enhanced anticancer activity of combined photodynamic and hypoxia-activated therapy. ACS Nano 2:2227–38.
  • Wang Y, Yang M, Qian J, et al. (2019a). Sequentially self-assembled polysaccharide-based nanocomplexes for combined chemotherapy and photodynamic therapy of breast cancer. Carbohydr Polym 203:203–13.
  • Wang Y, Zhang T, Hou C, et al. (2019b). Mitochondria-specific anticancer drug delivery based on reduction-activated polyprodrug for enhancing the therapeutic effect of breast cancer chemotherapy. ACS Appl Mater Interfaces 11:29330–40.
  • Xu X, Saw PE, Tao W, et al. (2017). Tumor microenvironment-responsive multistaged nanoplatform for systemic RNAi and cancer therapy. Nano Lett 17:4427–35.
  • Xue Y, Tian J, Xu L, et al. (2019). Ultrasensitive redox-responsive porphyrin-based polymeric nanoparticles for enhanced photodynamic therapy. Eur Polym J 110:344–54.
  • Yang G, Xu L, Xu J, et al. (2018). Smart nanoreactors for pH-responsive tumor homing, mitochondria-targeting, and enhanced photodynamic-immunotherapy of cancer. Nano Lett 18:2475. acs.nanolett.8b00040.
  • Zhang Y, Cai K, Li C, et al. (2018). Macrophage-membrane-coated nanoparticles for tumor-targeted chemotherapy. Nano Lett 18:1908–15.
  • Zhang Z, Huang M, Xu W, et al. (2019). Stimulus-responsive nanoscale delivery systems triggered by the enzymes in the tumor microenvironment. Eur J Pharm Biopharm 137:122–30.
  • Zheng Y, Lu H, Zhu J, et al. (2017). A low-power white light triggered AIE polymer nanoparticles with high ROS quantum yield for mitochondria-targeted and image-guided photodynamic therapy. J Mater Chem B 5:6277.
  • Zhou H, Fu C, Chen X, et al. (2018). Mitochondria-targeted zirconium metal-organic frameworks for enhancing the efficacy of microwave thermal therapy against tumors. Biomater Sci 6:1535.
  • Zhou Q, Hou Y, Li Z, et al. (2017). Dual-pH sensitive charge-reversal nanocomplex for tumor-targeted drug delivery with enhanced anticancer activity. Theranostics 7:1806–19.
  • Zhou Z, Zhang M, Liu Y, et al. (2018). Reversible covalent cross-linked polycations with enhanced stability and ATP-responsive behavior for improved siRNA delivery. Biomacromolecules 19:3776–87.