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Original Articles

Hydrophobic ion-pairing assembled liposomal Rhein with efficient loading for acute pancreatitis treatment

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Pages 559-571 | Received 26 Mar 2021, Accepted 11 Oct 2021, Published online: 26 Oct 2021

References

  • AboulFotouh, K., et al., 2018. Role of self-emulsifying drug delivery systems in optimizing the oral delivery of hydrophilic macromolecules and reducing interindividual variability. Colloids and surfaces. B, biointerfaces, 167, 82–92.
  • Agafonov, M., Ivanov, S., and Terekhova, I., 2021. Improvement of pharmacologically relevant properties of methotrexate by solid dispersion with Pluronic F127. Materials science & engineering. C, materials for biological applications, 124, 112059.
  • Belfiore, L., et al., 2018. Towards clinical translation of ligand-functionalized liposomes in targeted cancer therapy: challenges and opportunities. Journal of controlled release, 277, 1–13.
  • Boxhoorn, L., et al., 2020. Acute pancreatitis. The lancet, 396 (10252), 726–734.
  • Couvreur, P., 2013. Nanoparticles in drug delivery: past, present and future. Advanced drug delivery reviews, 65 (1), 21–23.
  • de Freitas, C., et al., 2019. PEG-coated vesicles from Pluronic/lipid mixtures for the carrying of photoactive erythrosine derivatives. Colloids and surfaces. B, biointerfaces, 175, 530–544.
  • Decuzzi, P., et al., 2010. Size and shape effects in the biodistribution of intravascularly injected particles. Journal of controlled release, 141 (3), 320–327.
  • Ding, D., et al., 2019. Integration of phospholipid-drug complex into self-nanoemulsifying drug delivery system to facilitate oral delivery of paclitaxel. Asian journal of pharmaceutical sciences, 14 (5), 552–558.
  • Ding, X., et al., 2020. Designing aptamer-gold nanoparticle-loaded pH-sensitive liposomes encapsulate morin for treating cancer. Nanoscale research letters, 15 (1), 68.
  • Ebada, H., et al., 2021. Novel rhein-phospholipid complex targeting skin diseases: development, in vitro, ex vivo, and in vivo studies. Drug delivery and translational research, 11 (3), 1107–1118.
  • El-Say, K.M., et al., 2016. Diacerein niosomal gel for topical delivery: development, in vitro and in vivo assessment. Journal of liposome research, 26 (1), 57–68.
  • Filipczak, N., et al., 2020. Recent advancements in liposome technology. Advanced drug delivery reviews, 156, 4–22.
  • Ge, L., et al., 2017. A dabigatran etexilate phospholipid complex nanoemulsion system for further oral bioavailability by reducing drug-leakage in the gastrointestinal tract. Nanomedicine: nanotechnology, biology, and medicine.
  • Gopi, S., and Balakrishnan, P., 2021. Evaluation and clinical comparison studies on liposomal and non-liposomal ascorbic acid (vitamin C) and their enhanced bioavailability. Journal of liposome research, 31 (4), 356–359.
  • Gu, Y., et al., 2020. Liposome as drug delivery system enhance anticancer activity of iridium (III) complex. Journal of liposome research, 31, 342–355.
  • Gubernator, J., 2011. Active methods of drug loading into liposomes: recent strategies for stable drug entrapment and increased in vivo activity. Expert opinion on drug delivery, 8 (5), 565–580.
  • Gwon, K., et al., 2018. Improved near infrared-mediated hydrogel formation using diacrylated Pluronic F127-coated upconversion nanoparticles. Materials science & engineering. C, materials for biological applications, 90, 77–84.
  • Hassib, S., et al., 2017. Quantitative analysis of anti-inflammatory drugs using FTIR-ATR spectrometry. Spectrochimica acta. Part A, molecular and biomolecular spectroscopy, 186, 59–65.
  • Hou, J., et al., 2016. Preparation and evaluation of icariside II-loaded binary mixed micelles using Solutol HS15 and Pluronic F127 as carriers. Drug delivery, 23 (9), 3248–3256.
  • Huang, Y., et al., 2014. Optimization on preparation conditions of Rehmannia glutinosa polysaccharide liposome and its immunological activity. Carbohydrate polymers, 104, 118–126.
  • Jensen, G., 2017. The care and feeding of a commercial liposomal product: liposomal amphotericin B (AmBisome®)). Journal of liposome research, 27 (3), 173–179.
  • Jensen, G.M., and Hodgson, D.F., 2020. Opportunities and challenges in commercial pharmaceutical liposome applications. Advanced drug delivery reviews, 154-155, 2–12.
  • Joshi, S., et al., 2019. Liposomes: a promising carrier for respiratory syncytial virus therapeutics. Expert opinion on drug delivery, 16 (9), 969–980.
  • Kassem, A., et al., 2017. Phospholipid complex enriched micelles: a novel drug delivery approach for promoting the antidiabetic effect of repaglinide. European journal of pharmaceutical sciences, 99, 75–84.
  • Lakowicz, J. R., (Third edition). Principles of Fluorescence Spectroscopy.pdf.
  • Lee, P., and Papachristou, G., 2019. New insights into acute pancreatitis. Nature reviews. Gastroenterology & hepatology, 16 (8), 479–496.
  • Li, L., et al., 2016. Large amino acid transporter 1 mediated glutamate modified docetaxel-loaded liposomes for glioma targeting. Colloids and surfaces. B, biointerfaces, 141, 260–267.
  • Li, Y., et al., 2015b. Self-assembled nanoparticles based on amphiphilic anticancer drug-phospholipid complex for targeted drug delivery and intracellular dual-controlled release. ACS applied materials & interfaces, 7 (32), 17573–17581.
  • Li, Z., et al., 2018b. Pluronics modified liposomes for curcumin encapsulation: sustained release, stability and bioaccessibility. Food research international, 108, 246–253.
  • Li, Z., et al., 2020. Novel folated pluronic F127 modified liposomes for delivery of curcumin: preparation, release, and cytotoxicity. Journal of microencapsulation, 37 (3), 220–229.
  • Li, J., et al., 2018a. Preparation, characterization and systemic application of self-assembled hydroxyethyl starch nanoparticles-loaded flavonoid Morin for hyperuricemia therapy. International journal of nanomedicine, 13, 2129–2141.
  • Li, J., et al., 2015a. Dual pancreas- and lung-targeting therapy for local and systemic complications of acute pancreatitis mediated by a phenolic propanediamine moiety. Journal of controlled release, 212, 19–29.
  • Luo, J., et al., 2019. Low molecular weight chitosan-based conjugates for efficient Rhein oral delivery: synthesis, characterization, and pharmacokinetics. Drug development and industrial pharmacy, 45 (1), 96–104.
  • Mendes, C., et al., 2017. Self-nanoemulsified drug delivery system of hydrochlorothiazide for increasing dissolution rate and diuretic activity. Aaps pharmscitech, 18 (7), 2494–2504.
  • Phan, T.N.Q., Shahzadi, I., and Bernkop-Schnürch, A., 2019. Hydrophobic ion-pairs and lipid-based nanocarrier systems: The perfect match for delivery of BCS class 3 drugs. Journal of controlled release, 304, 146–155.
  • Qiang, H., et al., 2021. Distribution of systemically administered nanoparticles during acute pancreatitis: effects of particle size and disease severity. Die pharmazie, 76 (5), 180–188.
  • Rotstein, O.D., 2014. Circulating cytokines in predicting development of severe acute pancreatitis. Critical care, 18 (5), 575.
  • Shah, A.P., Mourad, M.M., and Bramhall, S.R., 2018. Acute pancreatitis: current perspectives on diagnosis and management. Journal of inflammation research, 11, 77–85.
  • Shen, C., et al., 2019. Rhein suppresses lung inflammatory injury induced by human respiratory syncytial virus through inhibiting NLRP3 inflammasome activation via NF-κB pathway in mice. Frontiers in pharmacology, 10, 1600.
  • Solomon, D., et al., 2017. Role of in vitro release methods in liposomal formulation development: challenges and regulatory perspective. The AAPS journal, 19 (6), 1669–1681.
  • Suo, X., et al., 2010. Liposomal encapsulation of free anthraquinones in rhizoma et radix rhei and its quality control. Zhong yao cai = zhongyaocai = journal of Chinese medicinal materials, 33 (4), 614–616. [].
  • Vu-Quang, H., et al., 2019. Pluronic F127-folate coated super paramagenic iron oxide nanoparticles as contrast agent for cancer diagnosis in magnetic resonance imaging. Polymers, 11 (4), 743.
  • Walunj, M., et al., 2020. Preparation, characterization, and in vivo evaluation of cyclosporine cationic liposomes for the treatment of psoriasis. Journal of liposome research, 30 (1), 68–79.
  • Wang, M., and Kim, J., 2014. Light- and temperature-responsive liposomes incorporating cinnamoyl Pluronic F127. International journal of pharmaceutics, 468 (1–2), 243–249.
  • Wang, G., et al., 2019. Kidney-targeted rhein-loaded liponanoparticles for diabetic nephropathy therapy via size control and enhancement of renal cellular uptake. Theranostics, 9 (21), 6191–6208.
  • Wang, J., et al., 2020. A novel β-cyclodextrin-rhein conjugate for improving the water solubility and bioavailability of rhein. Carbohydrate research, 490, 107958.
  • Wu, C., et al., 2017. Research progress on the antitumor effects of rhein: literature review. Anti-cancer agents in medicinal chemistry, 17 (12), 1624–1632.
  • Yang, D., et al., 2018. Intestinal mucin induces more endocytosis but less transcytosis of nanoparticles across enterocytes by triggering nanoclustering and strengthening the retrograde pathway. ACS applied materials & interfaces, 10 (14), 11443–11456.
  • Yuan, Z., and Gu, X., 2015. Preparation, characterization, and in vivo study of rhein-loaded poly(lactic-co-glycolic acid) nanoparticles for oral delivery. Drug design, development and therapy, 9, 2301–2309.
  • Zhang, J., et al., 2015. Mechanism of enhanced oral absorption of morin by phospholipid complex based self-nanoemulsifying drug delivery system. Molecular pharmaceutics, 12 (2), 504–513.
  • Zhang, J., et al., 2011a. Preparation, characterization, and in vivo evaluation of a self-nanoemulsifying drug delivery system (SNEDDS) loaded with morin-phospholipid complex. Int J nanomedicine, 6, 3405–3414.
  • Zhang, W., et al., 2011b. Multifunctional Pluronic P123/F127 mixed polymeric micelles loaded with paclitaxel for the treatment of multidrug resistant tumors. Biomaterials, 32 (11), 2894–2906.
  • Zhang, J., et al., 2016. Biodistribution, hypouricemic efficacy and therapeutic mechanism of morin phospholipid complex loaded self-nanoemulsifying drug delivery systems in an experimental hyperuricemic model in rats. The journal of pharmacy and pharmacology, 68 (1), 14–25.
  • Zhao, Y.Q., et al., 2013. Preparation and characterization of tetrandrine-phospholipid complex loaded lipid nanocapsules as potential oral carriers. International journal of nanomedicine, 8, 4169–4181.
  • Zhao, Y.L., et al., 2011. Rhein protects against acetaminophen-induced hepatic and renal toxicity. Food and chemical toxicology, 49 (8), 1705–1710.
  • Zheng, J., et al., 2019. Directed self-assembly of herbal small molecules into sustained release hydrogels for treating neural inflammation. Nature communications, 10 (1), 1604.
  • Zhou, X., et al., 2019. Inflammation-targeted delivery of celastrol via neutrophil membrane-coated nanoparticles in the management of acute pancreatitis. Molecular pharmaceutics, 16 (3), 1397–1405.
  • Zhou, Y., et al., 2015. Rhein: a review of pharmacological activities. Evidence-based complementary and alternative medicine, 2015, 578107.
  • Zhuang, S., et al., 2019. Rhein protects against barrier disruption and inhibits inflammation in intestinal epithelial cells. International immunopharmacology, 71, 321–327.
  • Zhu, Q., et al., 2013. Pluronic F127-modified liposome-containing tacrolimus-cyclodextrin inclusion complexes: improved solubility, cellular uptake and intestinal penetration. The journal of pharmacy and pharmacology, 65 (8), 1107–1117.
  • Zhu, X., et al., 2014. Penetratin derivative-based nanocomplexes for enhanced intestinal insulin delivery. Molecular pharmaceutics, 11 (1), 317–328.

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