Interpenetrating hydrogels of O-carboxymethyl Tamarind gum and alginate for monitoring delivery of acyclovir

被引:54
|
作者
Jana, Sougata [1 ]
Sharma, Rashmi [1 ]
Maiti, Sabyasachi [1 ]
Sen, Kalyan Kumar [1 ]
机构
[1] Gupta Coll Technol Sci, Dept Pharmaceut, GT Rd, Asansol 713301, W Bengal, India
关键词
O-Carboxymethyl Tamarind gum; Sodium alginate; Acyclovir; Hydrogels; Interpenetrating network; Controlled release; CONTROLLED-RELEASE; DRUG-DELIVERY; IN-VITRO; BEADS; MICROSPHERES; CALCIUM; ACETAMINOPHEN; CYCLODEXTRIN; SOLUBILITY; PREDICTION;
D O I
10.1016/j.ijbiomac.2016.08.017
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
In this work, an interpenetrating hydrogel network was constructed using varying combination of O-carboxymethyl Tamarind gum (CTG) and alginate by Ca+2 ion induced gelation method. The hydrogels were characterized by FTIR spectroscopy, Field emission scanning electron microscopy (FESEM), energy dispersive X-ray (EDX) and differential scanning calorimetry (DSC) analyses. The hydrogels were spherical in shape with rough surface textures. Depending on the alginate: CTG mass ratio, the hydrogel particles entrapped a maximum of similar to 70% acyclovir. The drug release from interpenetrating hydrogels was 18-23% in HCl solution (pH1.2) in 2h. The drug release became faster in phosphate buffer solution (pH6.8) as the proportion of CTG was increased from 25% to 50%. However, the drug release was still slower than that observed for hydrogel particles of sodium alginate alone. Overall, the drug release tendency of the particles was higher in phosphate buffer solution than that in HCl solution. The non-Fickian drug release behavior was assumed after fitting the drug release data into Korsmeyer-Peppas model. The drug release was found to control by diffusion and swelling kinetics of the hydrogels. Thus, CTG gum could effectively retard drug release when used in combination with sodium alginate at an optimized mass ratio. (C) 2016 Elsevier B.V. All rights reserved.
引用
收藏
页码:1034 / 1039
页数:6
相关论文
共 50 条
  • [31] In situ-gelling starch nanoparticle (SNP)/O-carboxymethyl chitosan (CMCh) nanoparticle network hydrogels for the intranasal delivery of an antipsychotic peptide
    Majcher, Michael J.
    Babar, Ali
    Lofts, Andrew
    Leung, Ashlyn
    Li, Xiaoyun
    Abu-Hijleh, Fahed
    Smeets, Niels M. B.
    Mishra, Ram K.
    Hoare, Todd
    JOURNAL OF CONTROLLED RELEASE, 2021, 330 : 738 - 752
  • [32] Controlled delivery of aspirin from nanocellulose-sodium alginate interpenetrating network hydrogels
    Ma, Huazhong
    Zhao, Jianglin
    Liu, Ying
    Liu, Liang
    Yu, Juan
    Fan, Yimin
    INDUSTRIAL CROPS AND PRODUCTS, 2023, 192
  • [33] Comparison of chitosan microsphere versus O-carboxymethyl chitosan microsphere for drug delivery systems
    Zhou, Gang
    Zhang, Jing
    Tai, Jun
    Han, Qianyi
    Wang, Lei
    Wang, Kunpeng
    Wang, Shengcai
    Fan, Yubo
    JOURNAL OF BIOACTIVE AND COMPATIBLE POLYMERS, 2017, 32 (05) : 469 - 486
  • [34] Preparation of N,O-carboxymethyl chitosan coated alginate microcapsules and their application to Bifidobacterium longum BIOMA 5920
    Mi, Yu
    Su, Ran
    Fan, Dai-Di
    Zhu, Xiao-Li
    Zhang, Wen-Ni
    MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2013, 33 (05): : 3047 - 3053
  • [35] Development and evaluation of gelatin/polyacrylamide/carboxymethyl tamarind kernel gum hydrogel for delivery of ampicillin sodium
    Kumari, Tanuja
    Nitin
    Meena, Priyanka
    Warkar, Sudhir G.
    INDIAN JOURNAL OF CHEMICAL TECHNOLOGY, 2024, 31 (05) : 681 - 690
  • [36] Semi-interpenetrating hydrogels from carboxymethyl guar gum and gelatin for ciprofloxacin sustained release
    Ghosh, Sumanta Kumar
    Das, Aatrayee
    Basu, Aalok
    Halder, Asim
    Das, Suvadra
    Basu, Sreyasree
    Abdullah, Md Farooque
    Mukherjee, Arup
    Kundu, Sonia
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2018, 120 : 1823 - 1833
  • [37] O-Carboxymethyl chitosan nanoparticles for metformin delivery to pancreatic cancer cells
    Snima, K. S.
    Jayakumar, R.
    Unnikrishnan, A. G.
    Nair, Shantikurnar. V.
    Lakshmanan, Vinoth-Kumar
    CARBOHYDRATE POLYMERS, 2012, 89 (03) : 1003 - 1007
  • [38] Evaluation of TEOS Plasma Polymerized Carboxymethyl Starch/Alginate Hydrogels as Controlled Drug Delivery Systems
    Dalei, Ganeswar
    Das, Subhraseema
    Das, Smruti Prava
    STARCH-STARKE, 2022, 74 (3-4):
  • [39] Food-based biomaterials: pH-responsive alginate/gellan gum/ carboxymethyl cellulose hydrogel beads for lactoferrin delivery
    Cao, Lin
    Van de Walle, Davy
    Hirmz, Hannah
    Wynendaele, Evelien
    Dewettinck, Koen
    Parakhonskiy, Bogdan V.
    Skirtach, Andre G.
    BIOMATERIALS ADVANCES, 2024, 165
  • [40] Fabrication of in situ crosslinking hydrogels based on oxidized alginate/N,O-carboxymethyl chitosan/f3-tricalcium phosphate for bone regeneration
    Vu, Binh Thanh
    Hua, Van My
    Tang, Tuan-Ngan
    Dang, Nhi Ngoc-Thao
    Cao, Hang Thi-Thuy
    Phan, Thang Bach
    Ta, Hanh Thi-Kieu
    Pham, Viet Hung
    Tran, Quyen Ngoc
    Le, Thanh Dinh
    Vo, Toi Van
    Nguyen, Hiep Thi
    JOURNAL OF SCIENCE-ADVANCED MATERIALS AND DEVICES, 2022, 7 (04):