The Pathogenesis of Resection-Associated Intestinal Adaptation
Tài liệu tham khảo
Rubin, 1998, Regulation of PC4/TIS7 expression in adapting remnant intestine after resection, Am J Physiol, 275, G506
Sacks, 1995, Early proliferative events following intestinal resection in the rat, J Pediatr Gastroenterol Nutr, 21, 158, 10.1097/00005176-199508000-00007
Helmrath, 1996, Intestinal adaptation following massive small bowel resection in the mouse, J Am Coll Surg, 183, 441
McDuffie, 2011, Intestinal adaptation after small bowel resection in human infants, J Pediatr Surg, 46, 1045, 10.1016/j.jpedsurg.2011.03.027
Doldi, 1991, Intestinal adaptation following jejuno-ileal bypass, Clin Nutr, 10, 138, 10.1016/0261-5614(91)90049-I
Joly, 2010, Drastic changes in fecal and mucosa-associated microbiota in adult patients with short bowel syndrome, Biochimie, 92, 753, 10.1016/j.biochi.2010.02.015
O'Keefe, 1994, Long-acting somatostatin analogue therapy and protein metabolism in patients with jejunostomies, Gastroenterology, 107, 379, 10.1016/0016-5085(94)90162-7
Porus, 1965, Epithelial hyperplasia following massive small bowel resection in man, Gastroenterology, 48, 753, 10.1016/S0016-5085(65)80064-6
Ziegler, 2002, Distribution of the H+/peptide transporter PepT1 in human intestine: up-regulated expression in the colonic mucosa of patients with short-bowel syndrome, Am J Clin Nutr, 75, 922, 10.1093/ajcn/75.5.922
Tappenden, 2014, Intestinal adaptation following resection, JPEN J Parenter Enteral Nutr, 38, 23S, 10.1177/0148607114525210
Sangild, 2014, Animal models of gastrointestinal and liver diseases. Animal models of infant short bowel syndrome: translational relevance and challenges, Am J Physiol Gastrointest Liver Physiol, 307, G1147, 10.1152/ajpgi.00088.2014
Williamson, 1978, Intestinal adaptation (first of two parts). Structural, functional and cytokinetic changes, N Engl J Med, 298, 1393, 10.1056/NEJM197806222982505
Dowling, 1967, Structural and functional changes following small intestinal resection in the rat, Clin Sci, 32, 139
Altmann, 1970, Factors influencing villus size in the small intestine of adult rats as revealed by transposition of intestinal segments, Am J Anat, 127, 15, 10.1002/aja.1001270104
Booth, 1994, Enteral nutrition as primary therapy in short bowel syndrome, Gut, 35, S69, 10.1136/gut.35.1_Suppl.S69
Kollman, 1999, Dietary lipids influence intestinal adaptation after massive bowel resection, J Pediatr Gastroenterol Nutr, 28, 41, 10.1097/00005176-199901000-00011
Vanderhoof, 1994, Effects of dietary menhaden oil on mucosal adaptation after small bowel resection in rats, Gastroenterology, 106, 94, 10.1016/S0016-5085(94)94589-6
Choi, 2014, High-fat diet enhances villus growth during the adaptation response to massive proximal small bowel resection, J Gastrointest Surg, 18, 286, 10.1007/s11605-013-2338-7
Williamson, 1978, Contributions of bile and pancreatic juice to cell proliferation in ileal mucosa, Surgery, 83, 570
Altmann, 1971, Influence of bile and pancreatic secretions on the size of the intestinal villi in the rat, Am J Anat, 132, 167, 10.1002/aja.1001320204
Bass, 1991, Somatostatin analogue treatment inhibits post-resectional adaptation of the small bowel in rats, Am J Surg, 161, 107, 10.1016/0002-9610(91)90369-O
Williamson, 1978, Humoral stimulation of cell proliferation in small bowel after transection and resection in rats, Gastroenterology, 75, 249, 10.1016/0016-5085(78)90412-2
McMellen, 2010, Growth factors: possible roles for clinical management of the short bowel syndrome, Semin Pediatr Surg, 19, 35, 10.1053/j.sempedsurg.2009.11.010
Rosenfeld, 2009, The growth hormone cascade and its role in mammalian growth, Horm Res, 71, 36
Lichanska, 2008, How growth hormone controls growth, obesity and sexual dimorphism, Trends Genet, 24, 41, 10.1016/j.tig.2007.10.006
Delehaye-Zervas, 1994, Expression of the growth hormone receptor gene in human digestive tissue, J Clin Endocrinol Metab, 78, 1473
Benhamou, 1994, Stimulation by recombinant human growth hormone of growth and development of remaining bowel after subtotal ileojejunectomy in rats, J Pediatr Gastroenterol Nutr, 18, 446, 10.1097/00005176-199405000-00007
Shulman, 1992, Effects of short-term growth hormone therapy in rats undergoing 75% small intestinal resection, J Pediatr Gastroenterol Nutr, 14, 3, 10.1097/00005176-199201000-00002
Iannoli, 1997, Epidermal growth factor and human growth hormone accelerate adaptation after massive enterectomy in an additive, nutrient-dependent, and site-specific fashion, Surgery, 122, 721, 10.1016/S0039-6060(97)90079-9
Washizawa, 2004, Comparative effects of glucagon-like peptide-2 (GLP-2), growth hormone (GH), and keratinocyte growth factor (KGF) on markers of gut adaptation after massive small bowel resection in rats, JPEN J Parenter Enteral Nutr, 28, 399, 10.1177/0148607104028006399
Ljungmann, 2000, GH decreases hepatic amino acid degradation after small bowel resection in rats without enhancing bowel adaptation, Am J Physiol Gastrointest Liver Physiol, 279, G700, 10.1152/ajpgi.2000.279.4.G700
Gu, 2001, Effects of growth hormone (rhGH) and glutamine supplemented parenteral nutrition on intestinal adaptation in short bowel rats, Clin Nutr, 20, 159, 10.1054/clnu.2000.0379
Zhou, 2001, Glutamine enhances the gut-trophic effect of growth hormone in rat after massive small bowel resection, J Surg Res, 99, 47, 10.1006/jsre.2001.6108
Spadoni, 2005, Effects of the combined use of glutamine and growth hormone in the intestinal adaptation after massive resection of the small bowel in rats, Acta Cir Bras, 20, 382, 10.1590/S0102-86502005000500008
Vanderhoof, 1997, Growth hormone and glutamine do not stimulate intestinal adaptation following massive small bowel resection in the rat, J Pediatr Gastroenterol Nutr, 25, 327, 10.1097/00005176-199709000-00016
Byrne, 1995, A new treatment for patients with short-bowel syndrome. Growth hormone, glutamine, and a modified diet, Ann Surg, 222, 243, 10.1097/00000658-199509000-00003
Wales, 2010, Human growth hormone and glutamine for patients with short bowel syndrome, Cochrane Database Syst Rev, 6, CD006321
Seguy, 2014, Growth hormone enhances fat-free mass and glutamine availability in patients with short-bowel syndrome: an ancillary double-blind, randomized crossover study, Am J Clin Nutr, 100, 850, 10.3945/ajcn.113.071845
Dahly, 2003, IGF-I augments resection-induced mucosal hyperplasia by altering enterocyte kinetics, Am J Physiol Regul Integr Comp Physiol, 285, R800, 10.1152/ajpregu.00014.2003
Ohneda, 1997, Enhanced growth of small bowel in transgenic mice expressing human insulin-like growth factor I, Gastroenterology, 112, 444, 10.1053/gast.1997.v112.pm9024298
Winesett, 1995, Regulation and localization of the insulin-like growth factor system in small bowel during altered nutrient status, Am J Physiol, 268, G631
Lund, 1998, Molecular basis of intestinal adaptation: the role of the insulin-like growth factor system, Ann N Y Acad Sci, 859, 18, 10.1111/j.1749-6632.1998.tb11108.x
Vanderhoof, 1992, Truncated and native insulinlike growth factor I enhance mucosal adaptation after jejunoileal resection, Gastroenterology, 102, 1949, 10.1016/0016-5085(92)90318-S
Knott, 2004, Smooth muscle overexpression of IGF-I induces a novel adaptive response to small bowel resection, Am J Physiol Gastrointest Liver Physiol, 287, G562, 10.1152/ajpgi.00438.2003
Sun, 2014, Insulin-like growth factor 2 and its enterocyte receptor are not required for adaptation in response to massive small bowel resection, J Pediatr Surg, 49, 966, 10.1016/j.jpedsurg.2014.01.035
Mayo, 2003, International Union of Pharmacology. XXXV. The glucagon receptor family, Pharmacol Rev, 55, 167, 10.1124/pr.55.1.6
Drucker, 2002, Biological actions and therapeutic potential of the glucagon-like peptides, Gastroenterology, 122, 531, 10.1053/gast.2002.31068
Munroe, 1999, Prototypic G protein-coupled receptor for the intestinotrophic factor glucagon-like peptide 2, Proc Natl Acad Sci U S A, 96, 1569, 10.1073/pnas.96.4.1569
Tavares, 2000, Enzymatic- and renal-dependent catabolism of the intestinotropic hormone glucagon-like peptide-2 in rats, Am J Physiol Endocrinol Metab, 278, E134, 10.1152/ajpendo.2000.278.1.E134
Jeppesen, 2005, Teduglutide (ALX-0600), a dipeptidyl peptidase IV resistant glucagon-like peptide 2 analogue, improves intestinal function in short bowel syndrome patients, Gut, 54, 1224, 10.1136/gut.2004.061440
Yusta, 2000, Enteroendocrine localization of GLP-2 receptor expression in humans and rodents, Gastroenterology, 119, 744, 10.1053/gast.2000.16489
Bjerknes, 2001, Modulation of specific intestinal epithelial progenitors by enteric neurons, Proc Natl Acad Sci U S A, 98, 12497, 10.1073/pnas.211278098
Orskov, 2005, GLP-2 stimulates colonic growth via KGF, released by subepithelial myofibroblasts with GLP-2 receptors, Regul Pept, 124, 105, 10.1016/j.regpep.2004.07.009
Roberge, 1991, Secretion of proglucagon-derived peptides in response to intestinal luminal nutrients, Endocrinology, 128, 3169, 10.1210/endo-128-6-3169
Xiao, 1999, Secretion of the intestinotropic hormone glucagon-like peptide 2 is differentially regulated by nutrients in humans, Gastroenterology, 117, 99, 10.1016/S0016-5085(99)70555-X
Jeppesen, 2000, Elevated plasma glucagon-like peptide 1 and 2 concentrations in ileum resected short bowel patients with a preserved colon, Gut, 47, 370, 10.1136/gut.47.3.370
Jeppesen, 1999, Impaired meal stimulated glucagon-like peptide 2 response in ileal resected short bowel patients with intestinal failure, Gut, 45, 559, 10.1136/gut.45.4.559
Tsai, 1997, Intestinal growth-promoting properties of glucagon-like peptide-2 in mice, Am J Physiol, 273, E77
Drucker, 1996, Induction of intestinal epithelial proliferation by glucagon-like peptide 2, Proc Natl Acad Sci U S A, 93, 7911, 10.1073/pnas.93.15.7911
Wojdemann, 1998, Glucagon-like peptide-2 inhibits centrally induced antral motility in pigs, Scand J Gastroenterol, 33, 828, 10.1080/00365529850171486
Wojdemann, 1999, Inhibition of sham feeding-stimulated human gastric acid secretion by glucagon-like peptide-2, J Clin Endocrinol Metab, 84, 2513, 10.1210/jc.84.7.2513
Bremholm, 2009, Glucagon-like peptide-2 increases mesenteric blood flow in humans, Scand J Gastroenterol, 44, 314, 10.1080/00365520802538195
Hitch, 2012, Ret heterozygous mice have enhanced intestinal adaptation after massive small bowel resection, Am J Physiol Gastrointest Liver Physiol, 302, G1143, 10.1152/ajpgi.00296.2011
Tappenden, 2013, Teduglutide enhances structural adaptation of the small intestinal mucosa in patients with short bowel syndrome, J Clin Gastroenterol, 47, 602, 10.1097/MCG.0b013e3182828f57
O'Keefe, 2013, Safety and efficacy of teduglutide after 52 weeks of treatment in patients with short bowel intestinal failure, Clin Gastroenterol Hepatol, 11, 10.1016/j.cgh.2012.12.029
Jeppesen, 2012, Teduglutide reduces need for parenteral support among patients with short bowel syndrome with intestinal failure, Gastroenterology, 143, 1473, 10.1053/j.gastro.2012.09.007
Seidner, 2013, Increased intestinal absorption in the era of teduglutide and its impact on management strategies in patients with short bowel syndrome-associated intestinal failure, JPEN J Parenter Enteral Nutr, 37, 201, 10.1177/0148607112472906
Dreux, 2006, The epidermal growth factor receptors and their family of ligands: their putative role in atherogenesis, Atherosclerosis, 186, 38, 10.1016/j.atherosclerosis.2005.06.038
Yates, 1991, Epidermal growth factor and related growth factors, Int J Dermatol, 30, 687, 10.1111/j.1365-4362.1991.tb02609.x
Chaet, 1994, Epidermal growth factor enhances intestinal adaptation after massive small bowel resection, J Pediatr Surg, 29, 1035, 10.1016/0022-3468(94)90274-7
Shin, 1998, Epidermal growth factor augments adaptation following small bowel resection: optimal dosage, route, and timing of administration, J Surg Res, 77, 11, 10.1006/jsre.1998.5336
Thompson, 1999, Epidermal growth factor and the short bowel syndrome, JPEN J Parenter Enteral Nutr, 23, S113, 10.1177/014860719902300528
Erwin, 1999, Intestinal overexpression of EGF in transgenic mice enhances adaptation after small bowel resection, Am J Physiol, 277, G533
Falcone, 2000, Intestinal adaptation occurs independent of transforming growth factor-alpha, J Pediatr Surg, 35, 365, 10.1016/S0022-3468(00)90042-3
Helmrath, 1998, Adaptation after small bowel resection is attenuated by sialoadenectomy: the role for endogenous epidermal growth factor, Surgery, 124, 848, 10.1016/S0039-6060(98)70008-X
Helmrath, 1997, A defective EGF receptor in waved-2 mice attenuates intestinal adaptation, J Surg Res, 69, 76, 10.1006/jsre.1997.5033
O'Brien, 2002, Selective inhibition of the epidermal growth factor receptor impairs intestinal adaptation after small bowel resection, J Surg Res, 105, 25, 10.1006/jsre.2002.6440
Sheng, 2006, Epidermal growth factor receptor-mediated proliferation of enterocytes requires p21waf1/cip1 expression, Gastroenterology, 131, 153, 10.1053/j.gastro.2006.05.007
Stern, 2000, p21 (WAF1/CIP1) is required for the mitogenic response to intestinal resection, J Surg Res, 90, 45, 10.1006/jsre.2000.5834
Mantel, 1996, Involvement of p21cip-1 and p27kip-1 in the molecular mechanisms of steel factor-induced proliferative synergy in vitro and of p21cip-1 in the maintenance of stem/progenitor cells in vivo, Blood, 88, 3710, 10.1182/blood.V88.10.3710.bloodjournal88103710
Longshore, 2009, p21(waf1/cip1) deficiency does not perturb the intestinal crypt stem cell population after massive small bowel resection, J Pediatr Surg, 44, 1065, 10.1016/j.jpedsurg.2009.02.034
Leinicke, 2012, Regulation of retinoblastoma protein (Rb) by p21 is critical for adaptation to massive small bowel resection, J Gastrointest Surg, 16, 148, 10.1007/s11605-011-1747-8
Guo, 2009, Retinoblastoma protein (pRb), but not p107 or p130, is required for maintenance of enterocyte quiescence and differentiation in small intestine, J Biol Chem, 284, 134, 10.1074/jbc.M806133200
Guo, 2005, Epidermal growth factor-induced rapid retinoblastoma phosphorylation at Ser780 and Ser795 is mediated by ERK1/2 in small intestine epithelial cells, J Biol Chem, 280, 35992, 10.1074/jbc.M504583200
Choi, 2013, IGF-2 mediates intestinal mucosal hyperplasia in retinoblastoma protein (Rb)-deficient mice, J Pediatr Surg, 48, 1340, 10.1016/j.jpedsurg.2013.03.042
Choi, 2014, IGF-2 is necessary for retinoblastoma-mediated enhanced adaptation after small-bowel resection, J Gastrointest Surg, 18, 1887, 10.1007/s11605-014-2586-1
Helmrath, 1998, Enterocyte apoptosis is increased following small bowel resection, J Gastrointest Surg, 2, 44, 10.1016/S1091-255X(98)80102-9
Tang, 2004, Bax is required for resection-induced changes in apoptosis, proliferation, and members of the extrinsic cell death pathways, Gastroenterology, 126, 220, 10.1053/j.gastro.2003.10.077
Thompson, 1999, Effects of intestinal resection on enterocyte apoptosis, J Gastrointest Surg, 3, 672, 10.1016/S1091-255X(99)80092-4
Welters, 2000, The role of apoptosis during intestinal adaptation after small bowel resection, J Pediatr Surg, 35, 20, 10.1016/S0022-3468(00)80006-8
Stern, 2000, Effect of massive small bowel resection on the Bax/Bcl-w ratio and enterocyte apoptosis, J Gastrointest Surg, 4, 93, 10.1016/S1091-255X(00)80038-4
Bernal, 2006, Epidermal growth factor receptor signaling regulates Bax and Bcl-w expression and apoptotic responses during intestinal adaptation in mice, Gastroenterology, 130, 412, 10.1053/j.gastro.2005.11.006
Stern, 2000, Bax is required for increased enterocyte apoptosis after massive small bowel resection, Surgery, 128, 165, 10.1067/msy.2000.107370
Knott, 2003, Enterocyte apoptosis after enterectomy in mice is activated independent of the extrinsic death receptor pathway, Am J Physiol Gastrointest Liver Physiol, 285, G404, 10.1152/ajpgi.00096.2003
Bernal, 2006, Combined pharmacotherapy that increases proliferation and decreases apoptosis optimally enhances intestinal adaptation, J Pediatr Surg, 41, 719, 10.1016/j.jpedsurg.2005.12.016
Martin, 2009, Intestinal resection induces angiogenesis within adapting intestinal villi, J Pediatr Surg, 44, 1077, 10.1016/j.jpedsurg.2009.02.036
Rowland, 2012, Immediate alterations in intestinal oxygen saturation and blood flow after massive small bowel resection as measured by photoacoustic microscopy, J Pediatr Surg, 47, 1143, 10.1016/j.jpedsurg.2012.03.020
Rowland, 2013, Up-regulation of hypoxia-inducible factor 1 alpha and hemodynamic responses following massive small bowel resection, J Pediatr Surg, 48, 1330, 10.1016/j.jpedsurg.2013.03.031
Parvadia, 2007, Role of VEGF in small bowel adaptation after resection: the adaptive response is angiogenesis dependent, Am J Physiol Gastrointest Liver Physiol, 293, G591, 10.1152/ajpgi.00572.2006
McMellen, 2010, Epidermal growth factor receptor signaling modulates chemokine (CXC) ligand 5 expression and is associated with villus angiogenesis after small bowel resection, Surgery, 148, 364, 10.1016/j.surg.2010.03.020
Rowland, 2014, CXCL5 is required for angiogenesis, but not structural adaptation after small bowel resection, J Pediatr Surg, 49, 976, 10.1016/j.jpedsurg.2014.01.034
Diaz-Miron, 2015, The effect of impaired angiogenesis on intestinal function following massive small bowel resection, J Pediatr Surg, 50, 948, 10.1016/j.jpedsurg.2015.03.014
Cole, 2007, Small bowel bacterial overgrowth: a negative factor in gut adaptation in pediatric SBS, Curr Gastroenterol Rep, 9, 456, 10.1007/s11894-007-0059-3
Cole, 2010, The rate of bloodstream infection is high in infants with short bowel syndrome: relationship with small bowel bacterial overgrowth, enteral feeding, and inflammatory and immune responses, J Pediatr, 156, 941, 10.1016/j.jpeds.2009.12.008
Sommovilla, 2015, Small bowel resection induces long-term changes in the enteric microbiota of mice, J Gastrointest Surg, 19, 56, 10.1007/s11605-014-2631-0
Devine, 2013, Impact of ileocecal resection and concomitant antibiotics on the microbiome of the murine jejunum and colon, PLoS One, 8, e73140, 10.1371/journal.pone.0073140
Lapthorne, 2013, Gut microbial diversity is reduced and is associated with colonic inflammation in a piglet model of short bowel syndrome, Gut Microbes, 4, 212, 10.4161/gmic.24372
Engstrand Lilja, 2015, Intestinal dysbiosis in children with short bowel syndrome is associated with impaired outcome, Microbiome, 3, 18, 10.1186/s40168-015-0084-7
Korpela, 2015, Intestinal microbiota signatures associated with histological liver steatosis in pediatric-onset intestinal failure, JPEN J Parenter Enteral Nutr
Mayeur, 2013, Faecal D/L lactate ratio is a metabolic signature of microbiota imbalance in patients with short bowel syndrome, PLoS One, 8, e54335, 10.1371/journal.pone.0054335
Davidovics, 2015, Fecal transplantation successfully treats recurrent D-lactic acidosis in a child with short bowel syndrome, JPEN J Parenter Enteral Nutr, 10.1177/0148607115619931
Turnbaugh, 2006, An obesity-associated gut microbiome with increased capacity for energy harvest, Nature, 444, 1027, 10.1038/nature05414
Squires, 2012, Natural history of pediatric intestinal failure: initial report from the Pediatric Intestinal Failure Consortium, J Pediatr, 161, 723, 10.1016/j.jpeds.2012.03.062
Mercer, 2014, Nutrition and small bowel transplantation, Nutr Clin Pract, 29, 615, 10.1177/0884533614539354