Effect of Acellular Bovine Pericardium and Urinary Bladder Submucosa Matrixes in Reconstruction of Ventro-Lateral Hernias in Bucks; Molecular Evaluation

Main Article Content

Areeg K. M. Al-ebadi
Ahmed H. F. Al-Bayati

Abstract

The present study aimed to estimate the efficiency of both a cellular bovine pericardium and bovine urinary bladder matrix sheets in the reconstruction of large ventro-lateral hernias in Iraqi bucks by using of molecular evaluation depending on real time-polymerase chain reaction technique to investigate the level of basic-fibroblast growth factor  and vascular endothelial growth factor  genes during the healing process and reconstruction of the abdominal defects. Under sedation and local anesthesia, (6cm X 8cm size) of ventro-lateral hernias were induced in 24 of Iraqi bucks. The animals were divided randomly into two main equal groups. In bovine pericardium-treatment group, the hernias were treated with onlay implantation of bovine pericardium. While, the hernias in UBM-treatment group were treated with onlay implantation of urinary bladder matrix, 30 days post-inducing of hernias. The molecular evaluation along the period of following-up recorded a significant up-regulation of the level of basic-fibroblast growth factor gene specific for presence of fibroblasts, myofibroblasts and collagen deposition in urinary bladder matrix -treatment group in comparison to bovine pericardium -treatment group with significant difference even at the end of the study. While, a significant up regulation of the levels of angiogenesis classic gene vascular endothelial growth factor  were recorded in the bucks of bovine pericardium -treatment group compared to urinary bladder matrix -treatment group. In conclusion; molecular detection of the level of growth factors in target tissue can be used as an important criterion.

Downloads

Download data is not yet available.

Article Details

How to Cite
Effect of Acellular Bovine Pericardium and Urinary Bladder Submucosa Matrixes in Reconstruction of Ventro-Lateral Hernias in Bucks; Molecular Evaluation. (2022). The Iraqi Journal of Veterinary Medicine, 43(1), 67-74. https://doi.org/10.30539/iraqijvm.v43i1.474 (Original work published 2019)
Section
Articles

How to Cite

Effect of Acellular Bovine Pericardium and Urinary Bladder Submucosa Matrixes in Reconstruction of Ventro-Lateral Hernias in Bucks; Molecular Evaluation. (2022). The Iraqi Journal of Veterinary Medicine, 43(1), 67-74. https://doi.org/10.30539/iraqijvm.v43i1.474 (Original work published 2019)

References

Jettennavar, P.S.; Kalmath, G.P. and Anilkumar, M.C. (2010). Ventral abdominal hernia in a goat. J. VetWorld, 3(2):93.

Das, B.C.; Nath, B.K.; Pallab, M.S.; Mannan, A. and Biswas, D. (2012). Successful management of ventral abdominal hernia in goat: a case report .International J. of Natural Sci., 2(2):60-62.

Abdin-Bey, M.R. and Ramadan, R.O. (2001). Retrospective study of hernias in goats. Scientific J. of King Faisal University (Basic and Applied Sciences ), 2(1):77-88.

Gandhi, D.; Marcin, S.; Xin, Z.; Asha, B.; Kaswala, D. and Zamir, B. (2011). Chronic abdominal pain secondary to mesh erosion into cecum following incisional hernia repair: a case report and literature review. Ann. Gastroenterol., 24(4):321–324.

Song, Z.; Peng, Z.; Liu, Z. and Yang, J. (2013). Reconstruction of abdominal wall musculofascial defects with small intestinal submucosa scaffolds seeded with tenocytes in rats. Tissue Eng. Part A, 19(13-14):1543–1553.

Bellows, C.F.; Wheatley, B.M.; Moroz, K.; Rosales, S.C. and Morici, L.A. (2011). The effect of bacterial infection on the biomechanical properties of biological mesh in a rat model. Pub Med., 6(6):212-228 .

Abdollahi, A.; Maddah G.H.; Mehrabi, B.M.; Jangjoo, A.; Forghani, M.N. and Sharbaf, N. (2010). Prosthetic incisional hernioplasty: clinical experience with 354 cases. Hernia, 14:569-573.

Reid, R.I. (2011). A comparative analysis of biomaterials currently used in pelvic reconstructive surgery. New Techniques in Genital Prolepses. Surgery, Pp:1-30.

Badylak, S.F. and Gilbert, T. W. (2008). Immune response to biologic scaffold materials. Seminars in Immunology, 20(2):109-116.

Crapo, P.M.; Gilbert, T.W. and Badylak, S.F. (2011). An overview of tissue and whole organ decellularization processes. J. Biomaterials, 32(12):3233–3243.

Campbell, K.T.; Burns, N.; Rios, C.N.; Mathur, A.B. and Butler, C.E. (2011). Human versus non-cross-linked porcine acellular dermal matrix used for ventral hernia repair: comparison of in vivo fibrovascular remodeling and mechanical repair strength. Plast. Reconstr. Surg., 127:2321–2332.

Al-Asadi, R.N. (2005). A comparative study of three surgical techniques for reconstruction of experimentally induced large ventral hernia in goats. Ph.D. Thesis. University of Baghdad, Baghdad-Iraq.

AL-Khazraji, K.I. (2007). A comparative study about the repair of induced large abdominal ventral hernia by use polyester and Vipro mesh in sheep. MSc. Thesis. University of Baghdad. Baghdad-Iraq.

Hummadi, S.K. (2011). Hernioplasty of experimentally induced ventrolateral hernia in bucks using silk suture versus polypropylene suture. Msc. Thesis in Veterinary MedicineVeterinary Surgery. University of Baghdad, Baghdad-Iraq.

Zhang, Y.; Zhang, X-D.; Liu, X.; Li, Y-S.; Ding, J.P.; Zhang, X.R. and Zhang, Y.H. (2013). Reference Gene Screening for Analyzing Gene

Expression Across Goat Tissue. AsianAustralas J. Anim. Sci., 26(12):1665-1671.

Livak, K.J. and Schmittgen, T.D. (2001). Analysis of relative gene expression data using real-time quantitative PCR and the 2 Delta (CT) Method, 25(4):402-409.

Hatakeyama, M.; Imaizumi, T.; Terasaki, T.; Mori, F.; Tanji, K.; Sato, F.; Kijima, H.; Suma, H.; Wakabayashi, K.; Yoshida, H.; Fukuda, I. and Satoh, K. (2007). Interferon-γ upregulates retinoic acidinducible gene-I in human pericardial mesothelial cells. Acta. Cardiologica,

(6):553-557 .

Hoganson, D.M.; O'Doherty, E.M.; Owens, G.E.; Harilal, D.O.; Goldman, S.M.; Bowley, C.M.; Neville, C.M.; Kronengold, R.T. and Vacanti, J.P. (2010). The retention of extracellular matrix proteins and angiogenic and mitogenic cytokines in a decellularized

porcine dermis. Biomaterial, 31(26):6730-6737 .

1Nielsen, P.S.; Nielsen, B.; Jespersen., L.K. and Patent, U.S .)2011( .Biodegradable scaffold with ECM material. Hernia, 2:45-53.

Badylak, S.F. (2005). Regenerative medicine and developmental biology: The role of the extracellular matrix.

The anatomical record. 287B(1):36–41.

Londono, R. and Badylak, S.F. (2015). Biologic Scaffolds for Regenerative Medicine: Mechanisms of In vivo Remodeling. Annals of Biomedical Engineering, 43 (3):577–592 .

Yona, S.; Kim, K.; Wolf, Y.; Mildner, A.; Varol, D.; Breker, M.; StrausAuale, D.; Hume, D.; Perlmine, H.; Malissen, B.Zelzer, E. and Jung, S. (2013). Fate Mapping Reveals Origins and Dynamics of Monocytes and Tissue Macrophages Under Homeostasis. Immunity

, 38(1):79-91.

Koffler, J.; Kaufman-Francis, K.; Shandalov, Y.; Egozi, D.; Pavlov, D.A.; Landesberg, A. and Levenberg, S. (2011). Improved vascular organization enhances functional integration of engineered skeletal muscle grafts. Proc. Natl. Acad.

Sci. J., 108(36):14789–14794.

Choi, J.J.; Palaniappa, N.C.; Dallas, K.B.; Rudich, T.B.; Colon, M.J. and Divino, C.M. (2012). Use of mesh during ventral hernia repair in clean 14 contaminated and contaminated cases: outcomes of 33,832 cases. Ann. Surg., 255:176–180.

Agrawal, l.V., Kelly, J., Tottey, S., Daly, K.A., Johnson, S.A., Siu, B.F. and Breier, G. (2011). An isolated cryptic peptide influences osteogenesis and bone remodeling in an adult mammalian model of digit amputation. Tissue Eng. Part A, 17(23- 24):3033-3044.

Hodde J.P.; Ernst, D.M. and Hiles, M.C. (2005). An investigation of the long-term bioactivity of endogenous growth factor in OASIS Wound Matrix. J. Wound Care, 14:23–25 .

Badylak, S.F.; Freytes, D.O. and Gilbert, T.W. (2009). Extracellular matrix as a biological scaffold material: structure and function. Acta. Biomater., 5:1-13.

Zuki, A.B.; Hafeez, Y.M.; Loqman, M.Y.; Noordin, M.M. and Norimah, Y. (2007). Effect of Preservation Methods on the Performance of Bovine Pericardium Graft in a Rat Mode. J. of Anatomia Histologia Emberiologia, 36(5):349–356.

Juichl, I. (2015). Regenerative medicine in otolaryngeology. ISBN.,1(3):78-85.

Ota, T.; Gilbert, T.W.; Schwartzman, D.; McTiernan, C.F.; Kitajima, T.; Ito,Y.; Sawa, Y.; Badylak, S.F. and Zenati, A.M. (2008). Fusion Protein of Hepatocyte Growth Factor Enhances Reconstruction of Myocardium in a Cardiac Patch Derived from Porcine Urinary Bladder Matrix. J. Thorac. Cardiovasc. Surg., 136(5):1309–1317.

Sasse, K.C.; Warner, D.L.; Ackerman, E. and Brandt, J. (2016). Hiatal Hernia Repair with Novel Biological Graft Reinforcement. JSLS., 20(2):1-16.32. AL-Abedi, A.H. (2014). Effect of bovine urinary bladder sub-mucosa on tendon reconstruction in equine species. MSc. Thesis in Veterinary Surgery. University of Baghdad. Baghdad–Iraq

Similar Articles

You may also start an advanced similarity search for this article.