Intranasal delivery of Huperzine A to the brain using lactoferrin-conjugated N-trimethylated chitosan surface-modified PLGA nanoparticles for treatment of Alzheimer's disease

被引:241
作者
Meng, Qingqing [1 ]
Wang, Aiping [1 ,2 ]
Hua, Hongchen [1 ]
Jiang, Ying [1 ]
Wang, Yiyun [1 ]
Mu, Hongjie [1 ]
Wu, Zimei [1 ]
Sun, Kaoxiang [1 ]
机构
[1] Yantai Univ, Collaborat Innovat Ctr Adv Drug Delivery Syst & B, Sch Pharm, 30 Qingquan Rd, Laishan 264005, Yantai, Peoples R China
[2] Shandong Luye Pharmaceut Co Ltd, State Key Lab Long Acting & Targeting Drug Delive, Yantai, Peoples R China
关键词
Huperzine A; lactoferrin; N-trimethyl chitosan; nose-to-brain; nanoparticles; Alzheimer's disease; IN-SITU GEL; DRUG-DELIVERY; PARKINSONS-DISEASE; MOUSE MODEL; SYSTEM; NOSE; ABSORPTION; MECHANISM; PROTEINS; VITRO;
D O I
10.2147/IJN.S151474
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Background: Safe and effective delivery of therapeutic drugs to the brain is important for successful therapy of Alzheimer's disease (AD). Purpose: To develop Huperzine A (HupA)-loaded, mucoadhesive and targeted polylactide-co-glycoside (PLGA) nanoparticles (NPs) with surface modification by lactoferrin (Lf)-conjugated N-trimethylated chitosan (TMC) (HupA Lf-TMC NPs) for efficient intranasal delivery of HupA to the brain for AD treatment. Methods: HupA Lf-TMC NPs were prepared using the emulsion-solvent evaporation method and optimized using the Box-Behnken design. The particle size, zeta potential, drug entrapment efficiency, adhesion and in vitro release behavior were investigated. The cellular uptake was investigated by fluorescence microscopy and flow cytometry. MTT assay was used to evaluate the cytotoxicity of the NPs. In vivo imaging system was used to investigate brain targeting effect of NPs after intranasal administration. The biodistribution of Hup-A NPs after intranasal administration was determined by liquid chromatography-tandem mass spectrometry. Results: Optimized HupA Lf-TMC NPs had a particle size of 153.2 +/- 13.7 nm, polydispersity index of 0.229 +/- 0.078, zeta potential of +35.6 +/- 5.2 mV, drug entrapment efficiency of 73.8%+/- 5.7%, and sustained release in vitro over a 48 h period. Adsorption of mucin onto Lf-TMC NPs was 86.9%+/- 1.8%, which was significantly higher than that onto PLGA NPs (32.1%+/- 2.5%). HupA Lf-TMC NPs showed lower toxicity in the 16HBE cell line compared with HupA solution. Qualitative and quantitative cellular uptake experiments indicated that accumulation of Lf-TMC NPs was higher than nontargeted analogs in 16HBE and SH-SY5Y cells. In vivo imaging results showed that Lf-TMC NPs exhibited a higher fluorescence intensity in the brain and a longer residence time than nontargeted NPs. After intranasal administration, Lf-TMC NPs facilitated the distribution of HupA in the brain, and the values of the drug targeting index in the mouse olfactory bulb, cerebrum (with hippocampus removal), cerebellum, and hippocampus were about 2.0, 1.6, 1.9, and 1.9, respectively. Conclusion: Lf-TMC NPs have good sustained-release effect, adhesion and targeting ability, and have a broad application prospect as a nasal drug delivery carrier.
引用
收藏
页码:705 / 718
页数:14
相关论文
共 45 条
[1]   Regional dissociations within the hippocampus - memory and anxiety [J].
Bannerman, DM ;
Rawlins, JNP ;
McHugh, SB ;
Deacon, RMJ ;
Yee, BK ;
Bast, T ;
Zhang, WN ;
Pothuizen, HHJ ;
Feldon, J .
NEUROSCIENCE AND BIOBEHAVIORAL REVIEWS, 2004, 28 (03) :273-283
[2]   Surface charge-specific cytotoxicity and cellular uptake of tri-block copolymer nanoparticles [J].
Bhattacharjee, Sourav ;
Ershov, Dmitry ;
van der Gucht, Jasper ;
Alink, Gerrit M. ;
Rietjens, Ivonne M. C. M. ;
Zuilhof, Han ;
Marcelis, Antonius T. M. .
NANOTOXICOLOGY, 2013, 7 (01) :71-84
[3]   Intranasal delivery of rotigotine to the brain with lactoferrin-modified PEG-PLGA nanoparticles for Parkinson's disease treatment [J].
Bi, Chenchen ;
Wang, Aiping ;
Chu, Yongchao ;
Liu, Sha ;
Mu, Hongjie ;
Liu, Wanhui ;
Wu, Zimei ;
Sun, Kaoxiang ;
Li, Youxin .
INTERNATIONAL JOURNAL OF NANOMEDICINE, 2016, 11 :6547-6559
[4]   Chitosan in nasal delivery systems for therapeutic drugs [J].
Casettari, Luca ;
Illum, Lisbeth .
JOURNAL OF CONTROLLED RELEASE, 2014, 190 :189-200
[5]   NASAL ABSORPTION OF DESMOPRESSIN IN RATS AND SHEEP - EFFECT OF A BIOADHESIVE MICROSPHERE DELIVERY SYSTEM [J].
CRITCHLEY, H ;
DAVIS, SS ;
FARRAJ, NF ;
ILLUM, L .
JOURNAL OF PHARMACY AND PHARMACOLOGY, 1994, 46 (08) :651-656
[6]   Nasal drug delivery devices: characteristics and performance in a clinical perspective-a review [J].
Djupesland, Per Gisle .
DRUG DELIVERY AND TRANSLATIONAL RESEARCH, 2013, 3 (01) :42-62
[7]   Studies on the internalization mechanism of cationic cell-penetrating peptides [J].
Drin, G ;
Cottin, S ;
Blanc, E ;
Rees, AR ;
Temsamani, J .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2003, 278 (33) :31192-31201
[8]   Nasal and rectal delivery of insulin with chitosan and N-trimethyl chitosan chloride [J].
du Plessis, Lissinda H. ;
Kotze, Awie F. ;
Junginger, Hans E. .
DRUG DELIVERY, 2010, 17 (06) :399-407
[9]   Characterization of lactoferrin as a targeting ligand for nonviral gene delivery to airway epithelial cells [J].
Elfinger, Markus ;
Maucksch, Christof ;
Rudolph, Carsten .
BIOMATERIALS, 2007, 28 (23) :3448-3455
[10]   Huperzine A from Huperzia serrata: a review of its sources, chemistry, pharmacology and toxicology [J].
Ferreira, Ana ;
Rodrigues, Marcio ;
Fortuna, Ana ;
Falcao, Amilcar ;
Alves, Gilberto .
PHYTOCHEMISTRY REVIEWS, 2016, 15 (01) :51-85