Non-human primate oesophagus decellularization



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Abstract

Transplantation is an effective treatment option for patients suffering from different end-stage diseases; however it is associated with a constant shortage of donor organs and lifelong immunosuppressive therapy. Obtainment of tissuengineered scaffolds using decellularization with the following recellularization may become an alternative treatment option due to restoration, replacement and regeneration of damaged cells, tissues and organs. The main objective of this research is obtainment of decellularized esophagus matrices in non-human primate models followed by pathomorphological evaluation. A modified detergent-enzymatic method involving sodium deoxycholate and DNAse was used for esophagus decellularization. The conducted morphological investigation proved preservation of tissue architectonics as well as absence of cells and nuclear material. Evaluation of biomechanical properties of the scaffold revealed similar mechanical strength characteristics in native and decellularized samples; however, rupturing deformation was higher. The obtained results allow continuing research on the possibility of using decellularized esophagus matrix in non-human primate models for recellularization with the following differentiation, revascularization and reinnervation for hetero- and orthotopic transplantations.

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About the authors

E. A Gubareva

Kuban State Medical University

Krasnodar, Russia

S. Sjoqvist

Karolinska Institute

Stockholm, Sweden

A. S Sotnichenko

Kuban State Medical University

Krasnodar, Russia

Ling Lim Mei

Karolinska Institute

Stockholm, Sweden

N. F Torres

Karolinska Institute

Stockholm, Sweden

K. A Danilenko

Kuban State Medical University

Krasnodar, Russia

S. V Orlov

Research Institute of Medical Primatology of RAMS

Adler, Russia

S. N Chvalun

National Research Centre «Kurchatov Institute»

Moscow, Russia

T. E Grigoriev

National Research Centre «Kurchatov Institute»

Moscow, Russia

S. N Krasheninnikov

National Research Centre «Kurchatov Institute»

Moscow, Russia

VA. A Porhanov

S.V. Ochapovsky Scientific Research Institute - Regional Clinical Hospital №1

Krasnodar, Russia

I. S Polaykov

S.V. Ochapovsky Scientific Research Institute - Regional Clinical Hospital №1

Krasnodar, Russia

E. V Kuevda

Kuban State Medical University

Krasnodar, Russia

I. S Gumenyuk

Kuban State Medical University

Krasnodar, Russia

P. Macchiarini

Kuban State Medical University, Krasnodar, Russia; Karolinska Institute

Stockholm, Sweden

References

  1. Wheeler J. B., Reed C. E. Epidemiology of esophageal cancer. Surg. Clin. North Am. 2012; 92: 1077-87.
  2. Bloom D., Cafiero E., Jane-Llopis E. et al. The global economic burden of noncommunicable diseases. Program on the Global Demography of Aging; 2012. Report No.: 8712
  3. Янкин А.В. Рак пищевода: от статистики к диагностике. Практическая онкология. 2003; 4(2): 61-5.
  4. Poghosyan T., Gaujoux S., Chirica M. et al. Functional disorders and quality of life after esophagectomy and gastric tube reconstruction for cancer. J. Visc. Surg. 2011; 148: 327-35.
  5. Cowles R. A., Coran A. G. Gastric transposition in infants and children. Pediatric surgery international. 2010; 26: 1129-34.
  6. Smithers B. M., Gotley D. C., Martin I. et al. Comparison of the outcomes between open and minimally invasive esophagectomy. Ann. Surg. 2007; 245: 232-40.
  7. Stein H. J., Feith M., Bruecher B. L. et al. Early esophageal cancer: pattern of lymphatic spread and prognostic factors for longterm survival after surgical resection. Ann. Surg. 2005; 242: 566-73.
  8. Teoh A. Y. B., Chiu P. W. Y., Wong T. C. L. et al. Functional performance and quality of life in patients with squamous esophageal carcinoma receiving surgery or chemoradiation: results from a randomized trial. Ann. Surg. 2011; 253: 1-5.
  9. Doede T, Bondartschuk M, Joerck C. et al. Unsuccessful alloplastic esophageal replacement with porcine small intestinal submucosa. Artif Organs. 2009; 33(4): 328-33
  10. Lopes M.F., Cabrita A, Ilharco J. et al. Esophageal replacement in rat using porcine intestinal submucosa as a patch or a tube-shaped graft. Dis Esophagus. 2006; 19(4): 254-9.
  11. Tan B., Wei R.Q., Tan M.Y. et al. Tissue engineered esophagus by mesenchymal stem cell seeding for esophageal repair in a canine model. J Surg Res. 2013; 182(1): 40-8.
  12. Ackbar R., Ainoedhofer H., Gugatschka M. et al. Decellularized ovine esophageal mucosa for esophageal tissue engineering. Technol Health Care. 2012; 20(3): 215-23.
  13. Totonelli G., Maghsoudlou P., Georgiades F.et al. Detergent enzymatic treatment for the development of a natural acellular matrix for oesophageal regeneration. Pediatr Surg Int. 2013; 29(1): 87-95.
  14. Ott H.C., Matthiesen T.S, Goh S.K. et al. Perfusion decellularized matrix: using nature's platform to engineer a bioartificial heart. Nature Medicine. 2008; 14: 213-21.
  15. Badylak S.F., Taylor D., Uygun K. Whole-Organ Tissue Engineering: Decellularization and Recellularization of ThreeDimensional Matrix Scaffolds, Annu. Rev. Biomed. 2011; 13: 27-53.
  16. Губарева Е.А., Сотниченко А.С., Гилевич И.В. и др. Морфологическая оценка качества децеллюляризации сердца и диафрагмы крыс Гены и клетки. 2012; VII (4): 38-45.
  17. Sellaro T.L., Ravindra A.K., Stolz D.B. et al. Maintenance of hepatic sinusoidal endothelial cell phenotype in vitro using organ-specific extracellular matrix scaffolds. Tissue Eng. 2007; 13(9): 2301-10.
  18. Ott H.C, Taylor D., inventors; Regents of the University of Minnesota, assignee. Decellularization and recellularization of organs and tissues. US patent 20090202977. 2009 Aug 13.
  19. Wainwright J.M., Czajka C.A., Patel U.B. et al. Preparation of cardiac extracellular matrix from an intact porcine heart. Tissue engineering: Part C; 2010; 16(3): 525-532.
  20. Сотниченко А.С., Губарева Е.А., Гилевич И.В. и др. Децел-люляризированный матрикс сердца крысы как основа для создания тканеинженерного сердца. Гены и клетки. 2013; VIII (3): 86-94.
  21. Crapo P.M., Gilbert T.W., Badylak S.F. An overview of tissue and whole organ decellularization processes. Biomaterials 2011; 32: 3233-43.
  22. Badylak S.F. The extracellular matrix as a biologic scaffold material. Biomaterials. 2007; 28: 3587-93.
  23. Nagata S., Hanayama R., Kawane K. Autoimmunity and the clearance of dead cells. Cell. 2010; 140(5): 619-30.
  24. Zhang Q., Raoof M., Chen Y. et al. Circulating mitochondrial DAMPs cause inflammatory responses to injury. Nature 2010; 464(7285): 104-7.
  25. Gilbert T. W. Strategies for tissue and organ decellularization. Journal of cellular biochemistry. 2012. 113(7): 2217-2222.
  26. Cooper D.K., Good A.H., Koren E. et al. Identification of alpha-galactosyl and other carbohydrate epitopes that are bound by human anti-pig antibodies: Relevance to discordant xenografting in man. Transpl Immunol. 1993; 1:198-205.
  27. Galili U. The alpha-gal epitope (Gal alpha 1-3Gal beta 1-4GlcNAc-R) in enotransplantation. Biochimie. 2001; 83:557-563.

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