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Research Article

Alginate nanogels-based thermosensitive hydrogel to improve antidepressant-like effects of albiflorin via intranasal delivery

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Pages 2137-2149 | Received 02 Aug 2021, Accepted 20 Sep 2021, Published online: 07 Oct 2021

References

  • Armstrong GA, Rodgers CI, Money TG, et al. (2009). Suppression of spreading depression-like events in locusts by inhibition of the NO/cGMP/PKG pathway. J Neurosci 29:8225–35.
  • Bergantin LB. (2020). Depression rises the risk of hypertension incidence: discussing the link through the Ca2+/cAMP signalling. Curr Hypertens Rev 16:73–8.
  • Berton O, Nestler EJ. (2006). New approaches to antidepressant drug discovery: beyond monoamines. Nat Rev Neurosci 7:137–51.
  • Chen BY, Luo M, Liang JM, et al. (2018). Surface modification of PGP for a neutrophil-nanoparticle co-vehicle to enhance the anti-depressant effect of baicalein. Acta Pharm Sin B 8:64–73.
  • Chen X, Wang M, Yang X, et al. (2019). Injectable hydrogels for the sustained delivery of a HER2-targeted antibody for preventing local relapse of HER2+ breast cancer after breast-conserving surgery. Theranostics 9:6080–98.
  • Chen X, Zhang J, Wu K, et al. (2020). Visualizing the in vivo evolution of an injectable and thermosensitive hydrogel using tri‐modal bioimaging. Small Methods 4:2000310.
  • Craparo EF, Bondì ML, Pitarresi G, et al. (2011). Nanoparticulate systems for drug delivery and targeting to the central nervous system. CNS Neurosci Ther 17:670–7.
  • Cristea IA, Naudet F. (2019). US Food and Drug Administration approval of esketamine and brexanolone. Lancet Psychiatry 6:975–7.
  • Darwin BD. (2019). Alkaline treatment for preventing acidosis in the rumen culture fermenting carbohydrates: an experimental study in vitro. J Adv Vet Anim Res 6:100–7.
  • Deng XQ, Zhang HB, Wang GF, et al. (2019). Colon-specific microspheres loaded with puerarin reduce tumorigenesis and metastasis in colitis-associated colorectal cancer. Int J Pharm 570:118644.
  • DiSilvestro RA. (2000). Zinc in relation to diabetes and oxidative disease. J Nutr 130:1509S–11S.
  • Druzhkova T, Pochigaeva K, Yakovlev A, et al. (2019). Acute stress response to a cognitive task in patients with major depressive disorder: potential metabolic and proinflammatory biomarkers. Metab Brain Dis 34:621–9.
  • du Sert NP, Hurst V, Ahluwalia A, et al. (2020). The ARRIVE guidelines 2.0: updated guidelines for reporting animal research. J Cereb Blood Flow Metab 40:1769–77.
  • Fang K, Xu JX, Chen XX, et al. (2020). Differential serum exosome microRNA profile in a stress-induced depression rat model. J Affect Disord 274:144–58.
  • Fasick V, Spengler RN, Samankan S, et al. (2015). The hippocampus and TNF: common links between chronic pain and depression. Neurosci Biobehav Rev 53:139–59.
  • Gronli J, Murison R, Fiske E, et al. (2005). Effects of chronic mild stress on sexual behavior, locomotor activity and consumption of sucrose and saccharine solutions. Physiol Behav 84:571–7.
  • Han J, Xia Y, Lin L, et al. (2018). Next-generation metabolomics in the development of new antidepressants: using albiflorin as an example. Curr Pharm Des 24:2530–40.
  • Hanson LR, Frey WH. (2008). Intranasal delivery bypasses the blood–brain barrier to target therapeutic agents to the central nervous system and treat neurodegenerative disease. BMC Neurosci 9:1–4.
  • Ho SL, Poon CY, Lin C, et al. (2015). Inhibition of β-amyloid aggregation by albiflorin, aloeemodin and neohesperidin and their neuroprotective effect on primary hippocampal cells against β-amyloid induced toxicity. Curr Alzheimer Res 12:424–33.
  • Lindqvist D, Dhabhar FS, James SJ, et al. (2017). Oxidative stress, inflammation and treatment response in major depression. Psychoneuroendocrinology 76:197–205.
  • Liu CJ, Guo XL, Ruan CP, et al. (2019). An injectable thermosensitive photothermal-network hydrogel for near-infrared-triggered drug delivery and synergistic photothermal-chemotherapy. Acta Biomater 96:281–94.
  • Madry H, Gao L, Rey-Rico A, et al. (2020). Thermosensitive hydrogel based on PEO-PPO-PEO poloxamers for a controlled in situ release of recombinant adeno-associated viral vectors for effective gene therapy of cartilage defects. Adv Mater 32:1906508.
  • Mitchell AJ. (2006). Two-week delay in onset of action of antidepressants: new evidence. Br J Psychiatry 188:105–6.
  • Morales-Medina JC, Iannitti T, Freeman A, et al. (2017). The olfactory bulbectomized rat as a model of depression: the hippocampal pathway. Behav Brain Res 317:562–75.
  • Nigam K, Kaur A, Tyagi A, et al. (2019). Nose-to-brain delivery of lamotrigine-loaded PLGA nanoparticles. Drug Deliv Transl Res 9:879–90.
  • Nirmal J, Babu CS, Harisudhan T, et al. (2008). Evaluation of behavioural and antioxidant activity of Cytisus scoparius Link in rats exposed to chronic unpredictable mild stress. BMC Complement Altern Med 8:15–8.
  • Qi Y, Jiang M, Cui YL, et al. (2015). Synthesis of quercetin loaded nanoparticles based on alginate for Pb(II) adsorption in aqueous solution. Nanoscale Res Lett 10:408.
  • Ruan CP, Liu CJ, Hu HL, et al. (2019). NIR-II light-modulated thermosensitive hydrogel for light-triggered cisplatin release and repeatable chemo-photothermal therapy. Chem Sci 10:4699–706.
  • Rufino MS, Fernandes FA, Alves RE, et al. (2009). Free radical-scavenging behaviour of some north-east Brazilian fruits in a DPPH system. Food Chem 114:693–5.
  • Sellimi S, Younes I, Ben Ayed H, et al. (2015). Structural, physicochemical and antioxidant properties of sodium alginate isolated from a Tunisian brown seaweed. Int J Biol Macromol 72:1358–67.
  • Shi J, Yu L, Ding J. (2021). PEG-based thermosensitive and biodegradable hydrogels. Acta Biomater 21:00246–4.
  • Sikora A, Shard AG, Minelli C. (2016). Size and ζ-potential measurement of silica nanoparticles in serum using tunable resistive pulse sensing. Langmuir 32:2216–24.
  • Song J, Hou X, Hu X, et al. (2015). Not only serotonergic system, but also dopaminergic system involved in albiflorin against chronic unpredictable mild stress-induced depression-like behavior in rats. Chem Biol Interact 242:211–7.
  • Suh KS, Choi EM, Lee YS, et al. (2013). Protective effect of albiflorin against oxidative-stress-mediated toxicity in osteoblast-like MC3T3-E1 cells. Fitoterapia 89:33–41.
  • Szuster-Ciesielska A, Plewka K, Daniluk J, et al. (2009). Zinc supplementation attenuates ethanol- and acetaldehyde-induced liver stellate cell activation by inhibiting reactive oxygen species (ROS) production and by influencing intracellular signaling. Biochem Pharmacol 78:301–14.
  • TCMSP. (2012). Traditional Chinese Medicine systems pharmacology database and analysis platform. Available at: http://tcmspw.com/molecule.php [last accessed 6 Apr 2021].
  • Trotta V, Pavan B, Ferraro L, et al. (2018). Brain targeting of resveratrol by nasal administration of chitosan-coated lipid microparticles. Eur J Pharm Biopharm 127:250–9.
  • Vanavil B, Selvaraj K, Aanandhalakshmi R, et al. (2020). Bioactive and thermostable sulphated polysaccharide from Sargassum swartzii with drug delivery applications. Int J Biol Macromol 153:190–200.
  • Varghese J, Faith M, Jacob M. (2009). Zinc prevents indomethacin-induced renal damage in rats by ameliorating oxidative stress and mitochondrial dysfunction. Eur J Pharmacol 614:114–21.
  • Voican CS, Corruble E, Naveau S, et al. (2014). Antidepressant-induced liver injury: a review for clinicians. Am J Psychiatry 171:404–15.
  • Wang QS, Gao T, Cui YL, et al. (2014). Comparative studies of paeoniflorin and albiflorin from Paeonia lactiflora on anti-inflammatory activities. Pharm Biol 52:1189–95.
  • Wang QS, Yan K, Li KD, et al. (2021). Targeting hippocampal phospholipid and tryptophan metabolism for antidepressant-like effects of albiflorin. Phytomedicine 153735.
  • Wang Y, Yang F, Liu YF, et al. (2011). Acetylsalicylic acid as an augmentation agent in fluoxetine treatment resistant depressive rats. Neurosci Lett 499:74–9.
  • Wang YL, Wang JX, Hu XX, et al. (2016). Antidepressant-like effects of albiflorin extracted from Radix Paeoniae Alba. J Ethnopharmacol 179:9–15.
  • WHO. (2021). World Health Organization. Available at: https://www.who.int/health-topics/depression [last accessed 6 Apr 2021].
  • Willner P. (1984). The validity of animal models of depression. Psychopharmacology 83:1–16.
  • Willner P, Towell A, Sampson D, et al. (1987). Reduction of sucrose preference by chronic unpredictable mild stress, and its restoration by a tricyclic antidepressant. Psychopharmacology 93:358–64.
  • Wu X, Wang X, Chen X, et al. (2021). Injectable and thermosensitive hydrogels mediating a universal macromolecular contrast agent with radiopacity for noninvasive imaging of deep tissues. Bioact Mater 6:4717–28.
  • Xu D, Lu Y-R, Kou N, et al. (2020). Intranasal delivery of icariin via a nanogel-thermoresponsive hydrogel compound system to improve its antidepressant-like activity. Int J Pharm 586:119550.
  • Xu D, Qiu C, Wang Y, et al. (2021). Intranasal co-delivery of berberine and evodiamine by self-assembled thermosensitive in-situ hydrogels for improving depressive disorder. Int J Pharm 603:120667.
  • Yang X, Chen X, Wang Y, et al. (2020). Sustained release of lipophilic gemcitabine from an injectable polymeric hydrogel for synergistically enhancing tumor chemoradiotherapy. Chem Eng J 396:125320.
  • Zhang YH, Zhang YM, Yu J, et al. (2019). Boronate-crosslinked polysaccharide conjugates for pH-responsive and targeted drug delivery. Chem Commun 55:1164–7.
  • Zhao ZX, Fu J, Ma SR, et al. (2018). Gut-brain axis metabolic pathway regulates antidepressant efficacy of albiflorin. Theranostics 8:5945–59.