The present study was aimed at evaluating the possible use of inter polymer complexed (IPC) films of chitosan (CH) and carboxymethyl tamarind kernel powder (CMTKP) for colon release of budesonide. Viscosity analysis of the supernatant liquid obtained after reacting CH and CMTKP in different proportions revealed 40:60 to be the optimum stoichiometric ratio. The FTIR spectra of IPC films formed from 50:50 or 40:60 ratio of CH:CMTKP did not reveal any reduction in the peaks at 1560cm−1 and 1407cm−1 after exposure to pH 1.2, suggesting resistance of the interaction between −COO− groups of CMTKP and −NH3+ groups of CH to gastric pH. Tablets containing Avicel pH 102 as diluent and coated to a weight gain of 10%, w/w with aqueous solutions of 40:60 or 50:50 ratio of CH:CMTKP did not release budesonide in pH 1.2 buffer. Histopathology of the rat colon after oral administration of these IPC film coated tablets revealed significantly greater (p<0.05) reduction in TNBS-induced ulcerative colitis as compared to that after administration of uncoated tablets. The Cmax of budesonide achieved after oral administration of these IPC film coated tablets was comparable to that observed after administration of uncoated tablets. The results strongly indicate versatility of CH-CMTKP IPC films to deliver budesonide in the colon.
Colon delivery for achieving either maximum drug absorption or local action is being extensively investigated over the past two decades. The main advantages associated with colon delivery is that the colon offers a near neutral pH, reduced digestive enzyme activity, a long transit time and increased responsiveness to absorption enhancers. However, due to its location at the distal part of the alimentary tract, the colon is particularly difficult to access. In addition, wide range of pH values and different enzymes present throughout the GIT, through which the dosage form has to travel before reaching the target site, further complicates the reliability and delivery efficiency. The classical approaches make use of polymers with pH-dependent [
The recent innovations make use of biodegradable polymer combinations that are cross linked with each other or with ions in order to render them insoluble in acidic pH. Cross linking of hydroxyl groups of guar gum with ester groups of trisodium triphosphate is reported to yield di-polymer phosphate ester type of interaction, which reduces the swelling of guar gum [
CH is a linear polysaccharide obtained from deacetylation of chitin. Due to amino groups, it carries a net positive charge and can be easily cross-linked with other anions, oppositely charged drugs and polymers [
Tamarind kernel powder (TKP) is derived from the seeds of
Budesonide, a second generation glucocorticoid is used in the treatment of IBD. It has the highest affinity for glucocorticoid receptor as compared to other steroids (hydrocortisone, prednisolone, dexamethasone) and it does not reduce the cortisol levels. The pharmacokinetic profile of budesonide favors a high topical efficacy because of rapid uptake by mucosal tissue and enhanced receptor binding properties [
In the light of above facts, it was proposed to formulate colon release tablets of budesonide by coating them with aqueous mixtures containing CH and CMTKP in order to yield interpolymer complexed (IPC) film coated tablets. The characterization of the IPC films was done by FTIR studies. The effect of varying the composition of CH and CMTKP in the coating solution on the
The prepared CMTKP was characterized by Fourier Transform Infra Red (FTIR) spectroscopy. The appearance of a peak at 1413 cm−1 indicated the presence of −COO− ions (representing C=O stretch of −COO−) in the CMTKP specimen (
All these IPC films were exposed to pH 1.2 for 2 h followed by buffer pH 7.4 for 22 h. The peak at 1407 cm−1 corresponding to −COO− was observed to considerably decrease in intensity and the peak at 1560 cm−1 corresponding to −NH3+ ions was found to be completely abolished in the IPC films comprising of 70:30 ratio of CH:CMTKP after exposure to pH 1.2. This suggested total breakdown of COO− NH3
+ linkages in these IPC films (
The CH-CMTKP IPC films were found to exhibit swelling in acidic medium as well as in basic medium (Tab. 1). It is known that a decrease in charge density of the cross-linker decreases the cross-linking density, which leads to swelling. This swelling is favored by the protonation and repulsion of chitosan free ammonium groups. Highly acidic pH of the stomach dissociates the ionic linkages followed by dissolution of the network. This in turn is reported to result in fast drug release [
The average weight of uncoated core tablets was 24.67 ± 1.10 mg. The acceptance value calculated was 11.98% which was well below the maximum 15% USP tolerance limit [
The average weight of coated tablets was 27.20 ± 1.25 mg. The acceptance value calculated was 11.31%. Hence, the tablets passed the weight variation test. The axial and radial diameters of coated tablets, respectively, ranged from 2.02 to 2.08 mm and 4.01 to 4.15 mm. Although, these tablets exhibited swelling, they didn’t soften or crack after exposure to 0.1M HCl for 2 h.
The
The tablets coated with 50:50 or 40:60 ratio of CH:CMTKP did not release budesonide in pH 1.2. However, exposure to pH 7.4 released ∼9% budesonide from tablets coated with 50:50 ratio of CH:CMTKP. It is important to note that tablets coated with 40:60 ratio did not release budesonide at this pH The observation of <10% drug released in acidic media [
The
The release profiles of budesonide from CH-CMTKP coated tablets containing Eudragit L100-55 or CH-CMTKP solution as binder on sequential exposure to pH 1.2, 7.4 and 6.8 containing rat cecal contents are depicted in
The presence of chitosanase increased the amount of budesonide released from the coated tablets. The final exposure of tablets coated with 50:50 or 40:60 ratio of CH:CMTKP to pH 6.8 containing chitosanase for 19 h enhanced the amount of budesonide released from tablets containing Eudragit L100-55 as binder to 92.43% and 83.25% as compared to 70.5% and 59.8%, respectively, in the presence of rat cecal contents (
The release kinetics of budesonide from tablets containing Eudragit L100-55 or CH-CMTKP solution as binder and coated with 50:50 or 40:60 ratio of CH:CMTKP was analyzed by Korsmeyer–Peppas model [
The tablets coated with 50:50 or 40:60 ratio of CH:CMTKP containing Eudragit L100-55 or CH-CMTKP as binder were found to exhibit complete physical and chemical stability on storage at 40°C/ 75% RH. There was no change in the color and weight of the tablets. The value of
The plasma concentration time profiles of budesonide uncoated tablets as well as of tablets coated with 50:50 or 40:60 ratio of CH:CMTKP containing respective CH-CMTKP solution or Eudragit L100-55 as binder following oral administration to rats is depicted in
A comparison of rate (Tmax) as well as extent (AUC) of budesonide absorbed from tablets coated with CH-CMTKP IPC films containing Eudragit L 100-55 as binder or those containing CH-CMTKP solution as binder did not reveal any significant difference (p<0.05) (Tab.3). This indicated that CH-CMTKP solution as binder performed in a manner similar to Eudragit L100-55
The Colon/Body weight (C/B) ratio in rats was calculated for quantitative evaluation of the inflammatory colitis. The C/B ratio after intracolonic administration of TNBS was significantly more as compared to the group receiving normal saline (p<0.05). The C/B ratio after oral administration of uncoated or IPC film coated budesonide tablets containing Eudragit L 100-55 or CH-CMTKP (40:60) as binder was significantly decreased (p<0.05) as compared to the TNBS-induced colitis groups (
The results of the present investigation revealed distinct advantage of coating tablets with IPC films containing 50:50 or 40:60 ratio of CH:CMTKP as compared to uncoated tablets granulated with Eudragit L100-55 or CH-CMTKP solution in restraining the
Budesonide was received as a gift sample from Ranbaxy Research Labs, Gurgaon, India. TKP was received as gift sample from Encore Natural Polymers Pvt. Ltd., Ahmedabad, India. CH was purchased from Indian Sea Foods Ltd., Cochin, India. Chitosanase (Product No. C9830, enzyme activity 192.68 units/mg) was purchased from Sigma-Aldrich, Mumbai, India. Ammonium acetate, acetic acid were of analytical grade and were purchased from Qualigens Fine Chemicals, India. Acetonitrile and potassium dihydrogen orthophosphate of HPLC grade were purchased from Merck India, Ltd. All reagents and chemicals were of analytical grade and used as received.
Carboxymethylation of TKP was carried out using the method reported by Goyal
CH solution was prepared in 1.5% v/v acetic acid. CMTKP solutions were separately prepared by hydrating them in distilled water. Both the solutions were at 25°C to obtain 80:20, 70:30. 60:40, 50:50, 40:50, 30:70 and 20:80 ratio of CH:CMTKP. The samples were incubated at 37°C for 24 h. The samples were then centrifuged at 15000 rpm. The viscosity of the supernatant solution was determined using Brookefield RVDV II Pro Viscometer, UK (Spindle 21).
CH (375 mg) was dissolved in 15 ml solution of 3%, v/v acetic acid. To this mixture 8 ml of 5 M-ammonium acetate was added. CMTKP (375 mg) was separately dissolved in 7ml distilled water and slowly added with stirring to CH solution. This mixture was poured in petriplates and dried at 50 °C for 48 h. Films with a total polymer content of 2.5%, w/v containing 70:30, 60:40, 50:50, 40:60 or 30:70 ratio of CH:CMTKP were prepared using this method. The dried films were stored in a desiccator until use.
CH, CMTKP and IPC films formed by drying admixtures containing different ratios of CH:CMTKP were subjected to FTIR analysis (Perkin Elmer RXI, USA). The fresh films were sequentially exposed to pH 1.2 buffer IP for 2h and pH 7.4 buffer IP for 22 h. The exposed films were dried at 50°C for 24 h and subjected to FTIR analysis.
The swelling index of the IPC films after exposure to different pH was determined by sequentially immersing the films in pH 1.2 for 2 h and pH 7.4 for 22 h. The swelling index was calculated according to the formula
Tablets (average weight 25 mg) containing 3 mg of budesonide were prepared by wet granulation technique. Budesonide and Avicel® pH 102 were granulated using Eudragit® L100-55 (alcoholic solution) or CH:CMTKP solution (10% w/w) as binder. The granules were passed through #16 and dried at 50 ± 2°C to 2–3% w/w residual moisture content. The dried granules were passed through #20 sieve and fines were retained on #44 sieve. 10%, w/w of fines was mixed with the granules. Magnesium stearate (1%, w/w) was added to the granules. Tablets were compressed using biconvex punches in a six station rotary tablet compression machine (A K Industries, M207, Nakodar, India). These tablets were tested for dimensions (axial and radial diameters), hardness, friability and weight variation.
The axial and radial diameters of ten compressed tablets of each batch were determined by using electronic digital vernier calipers. Hardness of ten tablets was determined with the help of Pfizer hardness tester (Campbell Electronics, Mumbai). The friability test, weight variation test and disintegration test were performed in accordance with the method prescribed in USP 30, NF 25 [
The formulated budesonide tablets containing Eudragit L100-55 or CH:CMTKP solution as binder were coated with aqueous solutions containing different CH:CMTKP ratios (Composition same as IPC film) to obtain a weight gain of 10%, w/w. The total polymer concentration was kept constant at 2.5%, w/v. A separate batch of compressed tablets was coated with 2.5%, w/v solution of CH. The coating solution was sprayed at a rate of 5 ml/min with the help of peristaltic pump using a spray gun of 1 mm nozzle (Electrolab, PP201V, Mumbai, India) in a coating pan (12″diameter) being rotated at 18 rpm (AK Industries, M1107, Nakodar, India). Compressed air was introduced at a pressure of 1.5 kg/cm2. The inlet air temperature was maintained at 60°C. The inner surface of coating pan was modified by attaching inert tubes (8 mm diameter) from the centre to the periphery for easy rolling of tablets thereby ensuring efficient mass transfer of polymer.
The coated tablets were also evaluated for weight variation, disintegration time. Further, the axial and radial diameters were measured as described above.
The samples obtained from dissolution studies were filtered through 0.45 μ nitrocellulose filters (Millipore, USA) and manually injected (20 μL) using Rheodyne injector for HPLC analysis. The stationary phase consisted of C8 column (150 mm×4.6 mm, 5 μ). Acetonitrile and 25 mM phosphate buffer (pH 3.2) in the ratio of 60:40 v/v at a flow rate of 1 ml/min served as mobile phase [
The mechanism of drug release during dissolution studies in pH progression media, in the presence of rat cecal contents or in the presence of chitosanase was evaluated by using the Korsmeyer equation
Mt/M∞ = fractional release of drug, t = release time, k = kinetic constant, which incorporates structural and geometric characteristics of the device n = release exponent, which indicates the kinetic release.
When the exponent
The tablets coated with 50:50 or 40:60 ratio of CH:CMTKP were sealed in glass vials and stored under 45°C/ 75% RH for 6 month. Tablets were taken out after every 15 days and evaluated for weight variation, disintegration time, and
Spargue-dawley rats of either sex weighing 200–300 g maintained on normal diet were used for this study. Rats were divided into seven groups. Each group comprised of four rats for generation of data in one study to ascertain that not more than two blood samples were withdrawn from each rat. Each study was conducted in triplicate. Rats of Group I, Group II and Group III received oral administration of, respectively, uncoated tablets or tablets coated with admixtures containing 40:60 or 50:50 ratio of CH:CMTKP containing Eudragit L100-55 as binder. Rats of Group IV and V received uncoated tablets and tablets coated with IPC films comprising of 50:50 ratio of CH:CMTKP containing the same solution as binder. Similarly, rats of Group VI and VII received uncoated and tablets coated with admixtures containing 40:60 ratio of CH:CMTKP containing the same ratio of CH:CMTKP solution as binder. Blood samples (1 ml) were collected from retro orbital vein at 0, 1, 4, 8, 12, 16 or 24 h, mixed with 40 μl of heparin and subjected to centrifugation at 4000 rpm for 10 min. Upper layer was removed carefully and to 200 μl of plasma, methanol 20 μl and 15 μl of internal standard solution (0.005% w/v clotrimazole in methanol) was added. Ethyl acetate (2 ml) was added and the microcentrifugation tubes were vortexed for 10 min. The tubes were then centrifuged at 4000 rpm for 10 min. The upper layer was aspirated, evaporated and reconstituted with 1mL of mobile phase. 20 μl of this solution was injected for HPLC analysis. The protocol for this study was approved by the IAEC of Punjabi University, Patiala, India.
Sprague Dawley rats (200–250g) of 8–12 weeks age were used in the study. They were fed with standard laboratory chow diet and given water
The rats were fasted for 48 h before the induction of ulcerative colitis. 2,4,6 Trinitro benzene sulphonic acid (TNBS) (20mg) was dissolved in 0.25 ml of 50% v/v ethanol. This solution was instilled to each rat into the colonic part (7 cm from the anus) with the help of a catheter in order to induce ulcerative colitis [
The rats that weighed 80–100% of their initial weight (before TNBS instillation) were selected after 3 days as the ulcerative colitis positive animals. These rats were divided into four groups. Rats of Group I, Group II received oral administration of, respectively, normal saline, uncoated tablets containing Eudragit L100-55 as binder. Group III and Group IV received oral administration of tablets coated with IPC films comprising 40:60 ratio of CH:CMTKP containing Eudragit L100-55 or respective ratio of CH:CMTKP solution as binder.
All the groups received oral treatment once daily for five consecutive days. The colitis control group received 0.5 ml of normal saline instead of budesonide tablets.
Colonic inflammation following rectal administration of TNBS as well as after different treatments (as detailed above) was assessed by the following parameters.
The rats were sacrificed on the sixth day (after five days of tablet administration) and distal colon segments (6 cm length) were resected, opened longitudinally and rinsed with iced phosphate buffer. The ratio of wet weight of the colon specimen to the body weight was calculated for each rat.
Tissue segments (1 cm in length) were fixed in 10% buffered formalin for histopathological studies. Histopathological studies were carried out using haematoxylin and eosin stains at Department of Pathology, Government Rajindera Hospital, Patiala, Punjab.
The authors wish to acknowledge Encore Natural Polymers Private Limited, Ahmedabad for providing tamarind kernel powder and Dr Vineet Kumar, Scientist, FRI, Dehradun for helping in carrying out carboxymethylation of tamarind kernel powder
The authors declare no conflict of interest.
The experimental protocol was approved by the Institutional Animal Ethics Committee of the Punjabi University, Patiala, and the care and handling of the animals were in accordance with the National institutes of health guidelines.
FTIR spectra of: CH powder (A), CMTKP powder (B); films prepared by interacting CH and CMTKP in the ratio of 70:30 (C), 60:40 (D), 50:50 (E), 40:60 (F) or 30:70 (G)
Viscosity of the supernatant obtained after centrifugation of admixed aqueous solutions containing different ratios of CH and CMTKP
FTIR spectra of IPC films containing different CH:CMTKP ratios after exposure to different pH media: 70:30 (pH 1.2) (A); 70:30 (pH 7.4) (B); 60:40 (pH 1.2) (C); 60:40 (pH 7.4) (D); 50:50 (pH 1.2) (E); 50:50 (pH 7.4) (F); 40:60 (pH 1.2) (G); 40:60 (pH 7.4) (H); 30:70 (pH 1.2) (I) or 30:70 (pH 7.4) (J).
Release of budesonide from tablets containing Eudragit L100-55 alone as binder (uncoated) or after coating with IPC films comprising different ratios of CH:CMTKP in pH progression media, rat cecal contents or in presence of chitosanase
Release of budesonide from tablets containing 50:50 or 40:60 ratio of CH:CMTKP as binder alone (uncoated) or coated with respective IPC film in pH progression media, rat cecal contents or in the presence of chitosanase
Pharmacokinetic profile of budesonide following oral administration of tablets containing Eudragit L100 55 as binder without coating; coated with aqueous solution containing CH:CMTKP in the ratio of 40:60 or 50:50; containing CH:CMTKP (40:60) as binder and coated with the same solution or containing CH:CMTKP (50:50) as binder and coated with the same solution.
Colon/Body weight ratio determined after 5 days of administration of different formulations. Data presented is mean ± SD (n= 3 animals/ group)
Light microscopic photographs of colon: normal colon (A); TNBS induced ulcerative colon (B); after treatment with : uncoated budesonide tablets containing Eudragit as binder (C); coated budesonide tablets containing Eudragit as binder and coated with 40:60 ratio of CH:CMTKP IPC film (D); coated budesonide tablets containing CH:CMTKP (40:60) as binder and coated with the same IPC film (E)
Swelling indices of freshly prepared IPC films
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| 70:30 | 2.56 ± 0.11 | 1.41 ± 0.07 |
| 60:40 | 2.13 ± 0.10 | 1.16 ± 0.09 |
| 50:50 | 1.57 ± 0.08 | 1.01 ± 0.05 |
| 40:60 | 1.24 ± 0.05 | 0.89 ± 0.07 |
| 30:70 | 2.18 ± 0.10 | 1.24 ± 0.04 |
Mean ± S.D of three experiments
Release kinetics of budesonide from tablets containing Eudragit L100-55 or CH:CMTKP as binder and coated with respective CH-CMTKP IPC films
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| Eudragit L100 55 | CH:CMTKP 50:50 | A | 0.9451 | Super Case II |
| B | 0.9534 | Super Case II | ||
| C | 0.9743 | Super Case II | ||
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| CH:CMTKP 40:60 | A | 0.9763 | Super Case II | |
| B | 0.9528 | Super Case II | ||
| C | 0.9778 | Super Case II | ||
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| CH:CMTKP 50:50 | CH:CMTKP 50:50 | A | 0.9127 | Super Case II |
| B | 0.9690 | Super Case II | ||
| C | 0.9760 | Super Case II | ||
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| CH:CMTKP 40:60 | CH:CMTKP 40:60 | A | 0.9760 | Super Case II |
| B | 0.9675 | Super Case II | ||
| C | 0.9742 | Super Case II | ||
Dissolution Media; A: pH progression media; B: In rat cecal contents; C: In presence of chitosanase
Pharmacokinetic parameters of budesonide tablets containing Eudragit L100-55 as binder and coated with CH-CMTKP IPC films
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| Eudragit L100 55 | Uncoated | 2 | 1091.9 ± 218.38 | 5019 |
| CH:CMTK P 50:50 | 8 | 998.21 ± 229.98 | 8882 | |
| CH:CMTK P 40:60 | 8 | 1009.63 ± 203.6 | 11531 | |
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| CH:CMTKP 50:50 | CH:CMTK P 50:50 | 8 | 1012.65 ± 263.36 | 9355 |
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| CH:CMTKP 40:60 | CH:CMTK P 40:60 | 8 | 1045.54 ± 203.67 | 11816 |