BibTex RIS Cite

Gastroretentive floating tablets: An investigation of excipients effect on tablet properties

Year 2016, Volume: 20 Issue: 2, 100 - 110, 10.01.2016

Abstract

Present communication was aimed to investigate the effect of excipients on buoyancy and drug release properties from the floating tablets. Gastroretentive floating tablets were developed by the wet granulation method using hydroxypropyl methylcellulose (HPMC K4M), carbopol 934P, carbopol 971P and crospovidone as a rate controlling polymers. Sodium bicarbonate and PVP K30 were used as a gas generating agent and granulating agent, respectively. The effect of formulation variables on tablet performance was examined quantitatively based on buoyancy properties, swelling behavior and drug release profiles. The drug release mechanism was investigated using mathematical models. It was found that HPMC/carbopol matrices at 1:1 ratio with crospovidone and sodium bicarbonate gave the sustained and better drug release profile as compared to HPMC or carbopol matrices alone. The mechanism of drug release was found to be anomalous non Fickian. From the swelling and drug release profiles it is suggested that HPMC/carbopol matrices with crospovidone and sodium bicarbonate had better release profile upto 24 h.

References

  • Awasthi R and Kulkarni GT. Decades of research in drug targeting to the upper gastrointestinal tract using gastroretention technology: Where do we stand?. Drug Deliv 2014a; Early Online: 1-17. Published on 15.07.2014; DOI:10.3109/10717544.2014.936535
  • Awasthi R and Kulkarni GT. Development of novel gastroretentive drug delivery system of gliclazide: Hollow beads. Drug Dev Ind Pharm 2014b; 40: 398–408.
  • Chavanpatil M, Jain P, Chaudhari S, Shear R, Vavia P. Novel sustained release, swellable and bioadhesive gastroretentive drug delivery system for ofloxacin. Int J Pharm 2006; 316: 86–92.
  • Costa P and Lobo JMS. Modeling and comparison of dissolution profiles. Eur J Pharm Sci 2001; 13: 123–133.
  • Fukuda M, Peppas NA, McGinity JW. Floating hot-melt extruded tablets for gastroretentive controlled drug release system. J Control Release 2006; 115: 121–129.
  • Higuchi T. Mechanism of sustained action medication. Theoretical analysis of rate of release of solid drugs dispersed in solid matrices. J Pharm Sci 1963; 52: 1145–1149.
  • Jamzad S, Tutunji L, Fassihi R. Analysis of macromolecular changes and drug release from hydrophilic matrix systems. Int J Pharm 2005; 292: 75–85.
  • Kavanagh N and Corrigan OI. Swelling and erosion properties of hydroxypropyl methylcellulose (Hypromellose) matrices: Influence of agitation and dissolution medium composition. Int J Pharm 2004; 279: 141–152.
  • Khan F, Razzak Md SMI, Khan Md ZR, Azad Md AK, Chowdhury JA, Reza Md S. Theophylline loaded gastroretentive floating tablets based on hydrophilic polymers: preparation and in vitro evaluation. Pak J Pharm Sci 2009; 22: 155–161.
  • Kiran MK, Shah MH, Ketkar A, Mahadik KR, Paradkar A. Effect of drug solubility and different excipients on floating behavior and release from glyceryl monooleate matrices. Int J Pharm 2004; 272: 151–160.
  • Okeri HA and Arhewoh IM. Analytical profile of the fluoroquinolone antibacterials ofloxacin. African J Biotechnol 2008; 7: 670–680.
  • Patel VF and Patel NM. Statistical evaluation of influence of viscosity and content of polymer on Dipyridamole release from floating matrix tablets: A technical note. AAPS PharmSciTech 2007; 8 (69): E1–E6.
  • Sangekar S, Vadino WA, Chaudry I, Parr A, Beihn R, Digenis G. Evaluation of the effect of food and specific gravity of tablets on gastric retention time. Int J Pharm 1987; 35: 187–191.
  • Sharma N and Awasthi R. Development and characterization of novel gastroretentive raft forming floating film of atenolol. Indian Drugs 2015; 52: 15-23.
  • Siepmann J and Peppas NA. Modeling of drug release from delivery systems based on hydroxypropyl methylcellulose (HPMC). Adv Drug Deliv Rev 2001; 48: 139–157.
  • Singh BN and Kim KH. Floating drug delivery systems: an approach to oral controlled drug delivery via gastric retention. J Control Release 2000; 63: 235–239.
  • Srivastava AK, Wadhwa S, Ridhurkar D, Mishra B. Oral sustained delivery of atenolol from floating matrix tablets - formulation and in vitro evaluation. Drug Dev Ind Pharm 2005; 31: 367–374.

Gastroretentive floating tablets: An investigation of excipients effect on tablet properties

Year 2016, Volume: 20 Issue: 2, 100 - 110, 10.01.2016

Abstract

References

  • Awasthi R and Kulkarni GT. Decades of research in drug targeting to the upper gastrointestinal tract using gastroretention technology: Where do we stand?. Drug Deliv 2014a; Early Online: 1-17. Published on 15.07.2014; DOI:10.3109/10717544.2014.936535
  • Awasthi R and Kulkarni GT. Development of novel gastroretentive drug delivery system of gliclazide: Hollow beads. Drug Dev Ind Pharm 2014b; 40: 398–408.
  • Chavanpatil M, Jain P, Chaudhari S, Shear R, Vavia P. Novel sustained release, swellable and bioadhesive gastroretentive drug delivery system for ofloxacin. Int J Pharm 2006; 316: 86–92.
  • Costa P and Lobo JMS. Modeling and comparison of dissolution profiles. Eur J Pharm Sci 2001; 13: 123–133.
  • Fukuda M, Peppas NA, McGinity JW. Floating hot-melt extruded tablets for gastroretentive controlled drug release system. J Control Release 2006; 115: 121–129.
  • Higuchi T. Mechanism of sustained action medication. Theoretical analysis of rate of release of solid drugs dispersed in solid matrices. J Pharm Sci 1963; 52: 1145–1149.
  • Jamzad S, Tutunji L, Fassihi R. Analysis of macromolecular changes and drug release from hydrophilic matrix systems. Int J Pharm 2005; 292: 75–85.
  • Kavanagh N and Corrigan OI. Swelling and erosion properties of hydroxypropyl methylcellulose (Hypromellose) matrices: Influence of agitation and dissolution medium composition. Int J Pharm 2004; 279: 141–152.
  • Khan F, Razzak Md SMI, Khan Md ZR, Azad Md AK, Chowdhury JA, Reza Md S. Theophylline loaded gastroretentive floating tablets based on hydrophilic polymers: preparation and in vitro evaluation. Pak J Pharm Sci 2009; 22: 155–161.
  • Kiran MK, Shah MH, Ketkar A, Mahadik KR, Paradkar A. Effect of drug solubility and different excipients on floating behavior and release from glyceryl monooleate matrices. Int J Pharm 2004; 272: 151–160.
  • Okeri HA and Arhewoh IM. Analytical profile of the fluoroquinolone antibacterials ofloxacin. African J Biotechnol 2008; 7: 670–680.
  • Patel VF and Patel NM. Statistical evaluation of influence of viscosity and content of polymer on Dipyridamole release from floating matrix tablets: A technical note. AAPS PharmSciTech 2007; 8 (69): E1–E6.
  • Sangekar S, Vadino WA, Chaudry I, Parr A, Beihn R, Digenis G. Evaluation of the effect of food and specific gravity of tablets on gastric retention time. Int J Pharm 1987; 35: 187–191.
  • Sharma N and Awasthi R. Development and characterization of novel gastroretentive raft forming floating film of atenolol. Indian Drugs 2015; 52: 15-23.
  • Siepmann J and Peppas NA. Modeling of drug release from delivery systems based on hydroxypropyl methylcellulose (HPMC). Adv Drug Deliv Rev 2001; 48: 139–157.
  • Singh BN and Kim KH. Floating drug delivery systems: an approach to oral controlled drug delivery via gastric retention. J Control Release 2000; 63: 235–239.
  • Srivastava AK, Wadhwa S, Ridhurkar D, Mishra B. Oral sustained delivery of atenolol from floating matrix tablets - formulation and in vitro evaluation. Drug Dev Ind Pharm 2005; 31: 367–374.
There are 17 citations in total.

Details

Primary Language English
Journal Section Articles
Authors

Shammy Jindal This is me

Kamya Jindal This is me

Ghanshyam Gupta This is me

Rajeev Garg This is me

Rajendra Awasthi

Publication Date January 10, 2016
Published in Issue Year 2016 Volume: 20 Issue: 2

Cite

APA Jindal, S., Jindal, K., Gupta, G., Garg, R., et al. (2016). Gastroretentive floating tablets: An investigation of excipients effect on tablet properties. Marmara Pharmaceutical Journal, 20(2), 100-110. https://doi.org/10.12991/mpj.20162018166
AMA Jindal S, Jindal K, Gupta G, Garg R, Awasthi R. Gastroretentive floating tablets: An investigation of excipients effect on tablet properties. J Res Pharm. February 2016;20(2):100-110. doi:10.12991/mpj.20162018166
Chicago Jindal, Shammy, Kamya Jindal, Ghanshyam Gupta, Rajeev Garg, and Rajendra Awasthi. “Gastroretentive Floating Tablets: An Investigation of Excipients Effect on Tablet Properties”. Marmara Pharmaceutical Journal 20, no. 2 (February 2016): 100-110. https://doi.org/10.12991/mpj.20162018166.
EndNote Jindal S, Jindal K, Gupta G, Garg R, Awasthi R (February 1, 2016) Gastroretentive floating tablets: An investigation of excipients effect on tablet properties. Marmara Pharmaceutical Journal 20 2 100–110.
IEEE S. Jindal, K. Jindal, G. Gupta, R. Garg, and R. Awasthi, “Gastroretentive floating tablets: An investigation of excipients effect on tablet properties”, J Res Pharm, vol. 20, no. 2, pp. 100–110, 2016, doi: 10.12991/mpj.20162018166.
ISNAD Jindal, Shammy et al. “Gastroretentive Floating Tablets: An Investigation of Excipients Effect on Tablet Properties”. Marmara Pharmaceutical Journal 20/2 (February 2016), 100-110. https://doi.org/10.12991/mpj.20162018166.
JAMA Jindal S, Jindal K, Gupta G, Garg R, Awasthi R. Gastroretentive floating tablets: An investigation of excipients effect on tablet properties. J Res Pharm. 2016;20:100–110.
MLA Jindal, Shammy et al. “Gastroretentive Floating Tablets: An Investigation of Excipients Effect on Tablet Properties”. Marmara Pharmaceutical Journal, vol. 20, no. 2, 2016, pp. 100-1, doi:10.12991/mpj.20162018166.
Vancouver Jindal S, Jindal K, Gupta G, Garg R, Awasthi R. Gastroretentive floating tablets: An investigation of excipients effect on tablet properties. J Res Pharm. 2016;20(2):100-1.

.