Chakrabotry, S.
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Development of reverse phase high performance liquid chromatographic method and method validation of paracetamol by using economical single mobile phase Saha, S.; Dey, B. K.; Chakrabotry, S.; Choudhury, T.
Journal of Applied Pharmaceutical Research Vol. 1 No. 1 (2013)
Publisher : Creative Pharma Assent

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Abstract

The computerization of method development and validation are useful in analysis of pharmaceuticals in pharmaceutical industry. In this article a simple, sensitive, and precise high performance liquid chromatographic (HPLC) method for the analysis of Paracetamol with ultraviolet detection at 257 nm has been developed, validated, and used for the determination of compounds in commercial pharmaceutical products. Paracetamol tablet dosage form (two brands) was purchased from market and was from Glaxo Smith Kline (Calpol) and from IPCA (Pacimol) respectively. The compounds were well separated on a Hypersil ODS C18 reversed-phase column by use of a mobile phase consisting of methanol and water (90:10v/v at a flow rate of 1.0 ml.min). The linearity ranges were 20- 100µg/ ml for Paracetamol. Limits of detection (LOD) obtained 3.298g/ml limit of quantitation (LOQ) were 9.875g/ml Paracetamol. The study showed that reversed-phase liquid chromatography is sensitive and selective for the determination of Paracetamol using single mobile phase.
Design and evaluation of floating microspheres of amoxicillin trihydrate by ionotropic gelation method Chakrabotry, S.; Dey, B. K.; Saha, S.; Kar, A.; Saha, B.
Journal of Applied Pharmaceutical Research Vol. 2 No. 1 (2014)
Publisher : Creative Pharma Assent

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Abstract

The purpose of this investigation was to design and develop floating microspheres of Amoxicillin Trihydrate by ionotropic gelation method with combination of two polymers and to get the best possible formulation out of that with the various aspects. Floating drug delivery system have a bulk density less than gastric fluids and so remains buoyant in the stomach without affecting gastric emptying rate for a prolonged period of time. The floating microspheres were prepared using Ethyl cellulose and Hydroxy propylmethyl cellulose K4M as polymer to achieve an extended retention in upper GIT and there by improved bioavailability. The microspheres were evaluated for particle size analysis, Drug Entrapment Efficiency, Drug Loading Capacity, Floating efficiency, Swelling Study, Loose Surface Crystal Study , drug entrapment efficiency, drug- polymer compatibility study, Micromeritic properties like Bulk Density, Tapped Density, Carr’s Index, and Hausner’s Ratio, In-vitro release studies and surface morphology characterized by Scanning electron microscopy (SEM). The Microspheres have an average size range of 743.00±7.000 to 837.00±8.544μm. The entrapment efficiency was found to be in the range of 66.96±1.944 to 82.03±0.657 %. The In-vitro release studies of the drug from the best formulation F6 exhibited a sustained release of 93.46±0.684 % as studied over 10hrs. Release was best explained by zero-order kinetics model and it shows that the drug release follows diffusion mechanism. FT-IR data revealed that, compatible and there was no interaction between the drug and excipients added in the formulation. The data obtained in this study thus suggest that a floating microspheres of Amoxicillin Trihydrate are promising for sustained drug delivery which can reduce dosing frequency.