130
Views
0
CrossRef citations to date
0
Altmetric
Research Articles

Bacterial outer membrane vesicles-cloaked modified zein nanoparticles for oral delivery of paclitaxel

, , , , , , & show all
Pages 414-424 | Received 10 Apr 2022, Accepted 14 Apr 2023, Published online: 22 Apr 2023

References

  • Abdelsalam AM, Somaida A, Ayoub AM, Alsharif FM, Preis E, Wojcik M, Bakowsky U. 2021. Surface-tailored zein nanoparticles: strategies and applications. Pharmaceutics. 13(9):1354.
  • Argos P, Pedersen K, Marks MD, Larkins BA. 1982. A structural model for maize zein proteins. J Biol Chem. 257(17):9984–9990.
  • Arranja AG, Pathak V, Lammers T, Shi Y. 2017. Tumor-targeted nanomedicines for cancer theranostics. Pharmacol Res. 115:87–95.
  • Authier N, Gillet JP, Fialip J, Eschalier A, Coudore F. 2001. Assessment of neurotoxicity following repeated cremophor/ethanol injections in rats. Neurotox Res. 3(3):301–306.
  • Bhattacharya T, Maishu SP, Akter R, Rahman MH, Akhtar MF, Saleem A, Bin-Jumah M, Kamel M, Abdel-Latif MA, Abdel-Daim MM. 2021. A review on natural sources derived protein nanoparticles as anticancer agents. Curr Top Med Chem. 21(12):1014–1026.
  • Bhushani JA, Kurrey NK, Anandharamakrishnan C. 2017. Nanoencapsulation of green tea catechins by electrospraying technique and its effect on controlled release and in-vitro permeability. J Food Eng. 199:82–92.
  • Carvalho AL, Fonseca S, Miquel-Clopés A, Cross K, Kok K-S, Wegmann U, Gil-Cardoso K, Bentley EG, Al Katy SHM, Coombes JL, et al. 2019. Bioengineering commensal bacteria-derived outer membrane vesicles for delivery of biologics to the gastrointestinal and respiratory tract. J Extracell Vesicles. 8(1):1632100.
  • Chen Q, Bai H, Wu W, Huang G, Li Y, Wu M, Tang G, Ping Y. 2020. Bioengineering bacterial vesicle-coated polymeric nanomedicine for enhanced cancer immunotherapy and metastasis prevention. Nano Lett. 20(1):11–21.
  • Chen Y, Ye R, Liu J. 2014. Effects of different concentrations of ethanol and isopropanol on physicochemical properties of zein-based films. Ind Crops Prod. 53:140–147.
  • Cheng CJ, Jones OG. 2017. Stabilizing zein nanoparticle dispersions with ι-carrageenan. Food Hydrocolloids. 69:28–35.
  • Chu Y, Zhang J, Pan H, Shi J, Wang J, Chen L. 2020. Preparation and evaluation of long circulating erythrocyte membrane-cloaked anti-cancer drug delivery system. Drug Deliv Transl Res. 10(5):1278–1287.
  • Diao D, Cai K, Liu X, Yang J. 2020. Lung cancer immunochemotherapy: codelivery of EGFR tki and PTX via an immunostimulatory dual functional nanocarrier. J Clin Oncol. 38(15_suppl):e15177–e15177.
  • Gelderblom H, Verweij J, Nooter K, Sparreboom A. 2001. Cremophor EL: the drawbacks and advantages of vehicle selection for drug formulation. Eur J Cancer. 37(13):1590–1598.
  • Giteru SG, Ali MA, Oey I. 2021. Recent progress in understanding fundamental interactions and applications of zein. Food Hydrocolloids. 120:106948.
  • Guérin J, Buchanan SK. 2021. Protein import and export across the bacterial outer membrane. Curr Opin Struct Biol. 69:55–62.
  • Gujrati V, Kim S, Kim SH, Min JJ, Choy HE, Kim SC, Jon S. 2014. Bioengineered bacterial outer membrane vesicles as cell-specific drug-delivery vehicles for cancer therapy. ACS Nano. 8(2):1525–1537.
  • Huang W, Zhang Q, Li W, Yuan M, Zhou J, Hua L, Chen Y, Ye C, Ma Y. 2020. Development of novel nanoantibiotics using an outer membrane vesicle-based drug efflux mechanism. J Control Release. 317:1–22.
  • Jones EJ, Booth C, Fonseca S, Parker A, Cross K, Miquel-Clopés A, Hautefort I, Mayer U, Wileman T, Stentz R, et al. 2020. The uptake, trafficking, and biodistribution of bacteroides thetaiotaomicron generated outer membrane vesicles. Front Microbiol. 11:57.
  • Kaparakis-Liaskos M, Ferrero RL. 2015. Immune modulation by bacterial outer membrane vesicles. Nat Rev Immunol. 15(6):375–387.
  • Kim OY, Park HT, Dinh NTH, Choi SJ, Lee J, Kim JH, Lee SW, Gho YS. 2017. Bacterial outer membrane vesicles suppress tumor by interferon-gamma-mediated antitumor response. Nat Commun. 8(1):626.
  • Lakowicz JR. 2006. Quenching of Fluorescence. Principles of Fluorescence Spectroscopy. Boston, MA: Springer US; p. 277–330.
  • Li B, Tan T, Chu W, Zhang Y, Ye Y, Wang S, Qin Y, Tang J, Cao X. 2022. Co-delivery of paclitaxel (PTX) and docosahexaenoic acid (DHA) by targeting lipid nanoemulsions for cancer therapy. Drug Deliv. 29(1):75–88.
  • Li H, Xu Y, Sun X, Wang S, Wang J, Zhu J, Wang D, Zhao L. 2018. Stability, bioactivity, and bioaccessibility of fucoxanthin in zein-caseinate composite nanoparticles fabricated at neutral pH by antisolvent precipitation. Food Hydrocolloids. 84:379–388.
  • Li M, Zhou H, Yang C, Wu Y, Zhou X, Liu H, Wang Y. 2020. Bacterial outer membrane vesicles as a platform for biomedical applications: an update. J Control Release. 323:253–268.
  • Li S, Tang L, Bi H. 2016. Study on the interaction between pelargonidin-3-O-glucoside and bovine serum albumin using spectroscopic, transmission electron microscopy and molecular modeling techniques. Luminescence. 31(2):442–452.
  • Li S, Wang X, Li W, Yuan G, Pan Y, Chen H. 2016. Preparation and characterization of a novel conformed bipolymer paclitaxel-nanoparticle using tea polysaccharides and zein. Carbohydr Polym. 146:52–57.
  • Li Z, Clarke AJ, Beveridge TJ. 1998. Gram-negative bacteria produce membrane vesicles which are capable of killing other bacteria. J Bacteriol. 180(20):5478–5483.
  • Li Z, Wang Y, Liu J, Rawding P, Bu J, Hong S, Hu Q. 2021. Chemically and biologically engineered bacteria-based delivery systems for emerging diagnosis and advanced therapy. Adv Mater. 33(38):e2102580. eng.
  • Liu J, Zhang Y, He S, Zhou A, Gao B, Yan M, Yu L. 2021. Microbial transglutaminase-induced cross-linking of sodium caseinate as the coating stabilizer of zein nanoparticles. LWT. 138:110624.
  • Liu Q, Chen J, Qin Y, Jiang B, Zhang T. 2020. Zein/fucoidan-based composite nanoparticles for the encapsulation of pterostilbene: preparation, characterization, physicochemical stability, and formation mechanism. Int J Biol Macromol. 158:461–470.
  • Liu Q, Qin Y, Chen J, Jiang B, Zhang T. 2021. Fabrication, characterization, physicochemical stability and simulated gastrointestinal digestion of pterostilbene loaded zein-sodium caseinate-fucoidan nanoparticles using pH-driven method. Food Hydrocolloids. 119:106851.
  • Liu Q, Qin Y, Jiang B, Chen J, Zhang T. 2022. Development of self-assembled zein-fucoidan complex nanoparticles as a delivery system for resveratrol. Colloids Surf B Biointerfaces. 216:112529.
  • Luo Y, Teng Z, Wang TTY, Wang Q. 2013. Cellular uptake and transport of zein nanoparticles: effects of sodium caseinate. J Agric Food Chem. 61(31):7621–7629.
  • Luo Y, Wang TTY, Teng Z, Chen P, Sun J, Wang Q. 2013. Encapsulation of indole-3-carbinol and 3,3′-diindolylmethane in zein/carboxymethyl chitosan nanoparticles with controlled release property and improved stability. Food Chem. 139(1-4):224–230.
  • Luo Y. 2020. Food colloids binary and ternary nanocomplexes: innovations and discoveries. Colloids Surf B Biointerfaces. 196:111309.
  • Parris N, Dickey LC. 2001. Extraction and solubility characteristics of zein proteins from dry-milled corn. J Agric Food Chem. 49(8):3757–3760.
  • Reboredo C, Gonzalez-Navarro CJ, Martinez-Lopez AL, Martinez-Oharriz C, Sarmento B, Irache JM. 2021. Zein-based nanoparticles as oral carriers for insulin delivery. Pharmaceutics. 14(1):39.
  • Ross PD, Subramanian S. 1981. Thermodynamics of protein association reactions: forces contributing to stability. Biochemistry. 20(11):3096–3102.
  • Rossignoli F, Spano m, Grisendi G, Foppiani E, Golinelli G, Mastrolia I, Bestagno M, Candini O, Petrachi T, Recchia A, et al. 2019. MSC-delivered soluble TRAIL and paclitaxel as novel combinatory treatment for pancreatic adenocarcinoma. Theranostics. 9(2):436–448.
  • Shen F, Niu F, Li J, Su Y, Liu Y, Yang Y. 2014. Interactions between tea polyphenol and two kinds of typical egg white proteins—ovalbumin and lysozyme: effect on the gastrointestinal digestion of both proteins in vitro. Food Res Int. 59:100–107.
  • Solanki KS, Pal D, Kaur G, Kumar P, Sahoo M, Chaudhuri P. 2016. Isolation and characterization of OMPs and OMVs of Brucella abortus S19 and Brucella abortus S19[DELTA]per – document – gale academic onefile. J Pure Appl Microbiol. 10(13):2121–2126.
  • Sousa FFO, Luzardo-Álvarez A, Blanco-Méndez J, Martín-Pastor M. 2012. NMR techniques in drug delivery: application to zein protein complexes. Int J Pharm. 439(1-2):41–48.
  • Spasojević L, Bučko S, Kovačević D, Bohinc K, Jukić J, Abram A, Požar J, Katona J. 2020. Interactions of zein and zein/rosin nanoparticles with natural polyanion gum arabic. Colloids Surf B Biointerfaces. 196:111289.
  • Stentz R, Osborne S, Horn N, Li AW, Hautefort I, Bongaerts R, Rouyer M, Bailey P, Shears SB, Hemmings AM, et al. 2014. A bacterial homolog of a eukaryotic inositol phosphate signaling enzyme mediates cross-kingdom dialog in the mammalian gut. Cell Rep. 6(4):646–656.
  • Toyofuku M, Nomura N, Eberl L. 2019. Types and origins of bacterial membrane vesicles. Nat Rev Microbiol. 17(1):13–24.
  • Tran PHL, Duan W, Lee B-J, Tran TTD. 2019. Drug stabilization in the gastrointestinal tract and potential applications in the colonic delivery of oral zein-based formulations. Int J Pharm. 569:118614.
  • Urbánková L, Sedláček T, Kašpárková V, Bordes R. 2021. Formation of oleogels based on emulsions stabilized with cellulose nanocrystals and sodium caseinate. J Colloid Interface Sci. 596:245–256.
  • Wang H, Zhang X, Zhu W, Jiang Y, Zhang Z. 2018. Self-assembly of zein-based microcarrier system for colon-targeted oral drug delivery. Ind Eng Chem Res. 57(38):12689–12699.
  • Wani MC, Taylor HL, Wall ME, Coggon P, Mcphail AT. 1971. Plant antitumor agents. VI. The isolation and structure of taxol, a novel antileukemic and antitumor agent from Taxus brevifolia. J Am Chem Soc. 93(9):2325–2327.
  • Weaver BA. 2014. How taxol/paclitaxel kills cancer cells. Mol Biol Cell. 25(18):2677–2681.
  • Wu J, Wang Q, Dong X, Xu M, Yang J, Yi X, Chen B, Dong X, Wang Y, Lou X, et al. 2021. Biocompatible AIEgen/p-glycoprotein siRNA reduction-sensitive paclitaxel polymeric prodrug nanoparticles for overcoming chemotherapy resistance in ovarian cancer. Theranostics. 11(8):3710–3724.
  • Xue J, Zhang Y, Huang G, Liu J, Slavin M, Yu L. 2018. Zein-caseinate composite nanoparticles for bioactive delivery using curcumin as a probe compound. Food Hydrocolloids. 83:25–35.
  • Yan H, Shao D, Lao YH, Li M, Hu H, Leong KW. 2019. Engineering cell membrane-based nanotherapeutics to target inflammation. Adv Sci. 6(15):1900605.
  • Yuan Y, Ma M, Xu Y, Wang D. 2022. Surface coating of zein nanoparticles to improve the application of bioactive compounds: a review. Trends in Food Science & Technology. 120:1–15.
  • Zhang W, Gu X, Liu X, Wang Z. 2021. Fabrication of pickering emulsion based on particles combining pectin and zein: effects of pectin methylation. Carbohydr Polym. 256:117515.
  • Zhao Z, Lu M, Mao Z, Xiao J, Huang Q, Lin X, Cao Y. 2020. Modulation of interfacial phenolic antioxidant distribution in Pickering emulsions via interactions between zein nanoparticles and gallic acid. Int J Biol Macromol. 152:223–233.
  • Zhong Q, Jin M. 2009. Zein nanoparticles produced by liquid–liquid dispersion. Food Hydrocolloids. 23(8):2380–2387.
  • Zhou M, Han S, Aras O, An F. 2021. Recent advances in paclitaxel-based self-delivery nanomedicine for cancer therapy. Curr Med Chem. 28(31):6358–6374.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.