2006
DOI: 10.1007/s00383-006-1799-0
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Regeneration of the esophagus using gastric acellular matrix: an experimental study in a rat model

Abstract: Recently, tissue engineering of the autologous esophagus has been thought to provide a promising strategy for esophageal substitution. In this study, gastric acellular matrix (GAM) was used as a scaffold for regeneration of the esophagus in a rat model. Usage of GAM has an advantage that naturally derived extracellular matrix autograft can be prepared less invasively in a clinical setting. Twenty-seven F344 female rats were used as recipients. Patch defects created in the abdominal esophagus were replaced by G… Show more

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Cited by 64 publications
(32 citation statements)
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“…Traditionally, two main classes of biomaterials have been utilized for the engineering of hollow organs; acellular matrices derived from donor tissues (3)(4)(5)(6)(7)(8), (e.g., bladder submucosa (lamina propria) and small intestinal submucosa), and synthetic polymers such as polyglycolic acid (PGA) (9,10), polylactic acid (PLA), and poly(lactic-co-glycolic acid) (PLGA). These materials have been tested in respect to their biocompatibility in the host tissues (11,12).…”
Section: Introductionmentioning
confidence: 99%
See 1 more Smart Citation
“…Traditionally, two main classes of biomaterials have been utilized for the engineering of hollow organs; acellular matrices derived from donor tissues (3)(4)(5)(6)(7)(8), (e.g., bladder submucosa (lamina propria) and small intestinal submucosa), and synthetic polymers such as polyglycolic acid (PGA) (9,10), polylactic acid (PLA), and poly(lactic-co-glycolic acid) (PLGA). These materials have been tested in respect to their biocompatibility in the host tissues (11,12).…”
Section: Introductionmentioning
confidence: 99%
“…In contrast, synthetic polymers can be manufactured reproducibly on a large scale with controlled properties of their strength, degradation rate and ultrastructure (26,27). Both classes of biomaterials have been used either with or without cells for the tissue engineering of hollow organs and tissues, including the bladder (5, 6, 10), urethra (3,4,9), ureter (7), esophagus (8,28), intestine (28), uterus (29), vagina (29,30) and blood vessels (31,32).…”
Section: Introductionmentioning
confidence: 99%
“…La constitution d'un épithélium kératinisé était complète 2 semaines après l'implantation. Il n'y avait pas de sténose ou de dilatation [85]. Badylak [94].…”
Section: Méthodesunclassified
“…Not only reepithelization but also muscle formation was discovered in the cell-seeded SIS after implantation in animal body for 8 weeks [19]. Urita et al used the decellularized stomach tissue to evaluate the esophageal mucosa regeneration [13]. Isch et al implanted a commercial decellularized product, AlloDerm® (LifeCell TM ), for the esophagoplasty of canine cervical esophagus.…”
Section: Natural Biomaterialsmentioning
confidence: 99%