» Articles » PMID: 21713772

Basal Level Insulin Delivery: in Vitro Release, Stability, Biocompatibility, and in Vivo Absorption from Thermosensitive Triblock Copolymers

Overview
Journal J Pharm Sci
Publisher Elsevier
Specialties Pharmacology
Pharmacy
Date 2011 Jun 30
PMID 21713772
Citations 7
Authors
Affiliations
Soon will be listed here.
Abstract

The major goal of this study was to develop the biodegradable and biocompatible thermosensitive polylactic acid-polyethylene glycol-polylactic acid triblock copolymer-based delivery systems for controlled release of basal level insulin for a longer duration after single subcutaneous injection. Insulin was dispersed into aqueous copolymer solutions to prepare the delivery system. The in vitro release profile of insulin from delivery systems was studied at 37°C in phosphate-buffered saline. Stability of released insulin was investigated using circular dichroism, differential scanning calorimetry, and matrix-assisted laser desorption/ionization-time-of-flight mass spectrometry. A 3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide assay and skin histology were used to determine the in vitro and in vivo biocompatibility of the delivery systems, respectively. Streptozotocin-induced diabetic rat model was used to study the in vivo absorption and bioactivity of insulin. In vitro release studies indicated that the delivery systems released insulin over 3 months in structurally stable form. The delivery systems were biocompatible in vitro and in vivo. In vivo absorption and bioactivity studies demonstrated elevated insulin level and corresponding decreased blood glucose level in diabetic rats. Thus, the delivery systems released insulin at a controlled rate in vitro in conformationally and chemically stable form and in vivo in biologically active form up to 3 months.

Citing Articles

Advances in Subcutaneous Delivery Systems of Biomacromolecular Agents for Diabetes Treatment.

Li C, Wan L, Luo J, Jiang M, Wang K Int J Nanomedicine. 2021; 16:1261-1280.

PMID: 33628020 PMC: 7898203. DOI: 10.2147/IJN.S283416.


Smart Thermosensitive Copolymer Incorporating Chitosan-Zinc-Insulin Electrostatic Complexes for Controlled Delivery of Insulin: Effect of Chitosan Chain Length.

Sharma D, Arora S, Singh J Int J Polym Mater. 2020; 69(16):1054-1068.

PMID: 33012880 PMC: 7529327. DOI: 10.1080/00914037.2019.1655750.


Long-term glycemic control and prevention of diabetes complications in vivo using oleic acid-grafted-chitosan‑zinc-insulin complexes incorporated in thermosensitive copolymer.

Sharma D, Singh J J Control Release. 2020; 323:161-178.

PMID: 32283211 PMC: 7299807. DOI: 10.1016/j.jconrel.2020.04.012.


Physicochemical Evaluation of Insulin Complexes with QPDMAEMA--PLMA--POEGMA Cationic Amphiphlic Triblock Terpolymer Micelles.

Skandalis A, Murmiliuk A, Stepanek M, Pispas S Polymers (Basel). 2020; 12(2).

PMID: 32028685 PMC: 7077422. DOI: 10.3390/polym12020309.


In Vitro and in Vivo Optimization of Phase Sensitive Smart Polymer for Controlled Delivery of Rivastigmine for Treatment of Alzheimer's Disease.

Lipp L, Sharma D, Banerjee A, Singh J Pharm Res. 2020; 37(3):34.

PMID: 31942651 PMC: 6996875. DOI: 10.1007/s11095-020-2757-6.