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PLOS ONE  2013 

Cells Derived from the Coelomic Epithelium Contribute to Multiple Gastrointestinal Tissues in Mouse Embryos

DOI: 10.1371/journal.pone.0055890

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Abstract:

Gut mesodermal tissues originate from the splanchnopleural mesenchyme. However, the embryonic gastrointestinal coelomic epithelium gives rise to mesenchymal cells, whose significance and fate are little known. Our aim was to investigate the contribution of coelomic epithelium-derived cells to the intestinal development. We have used the transgenic mouse model mWt1/IRES/GFP-Cre (Wt1cre) crossed with the Rosa26R-EYFP reporter mouse. In the gastrointestinal duct Wt1, the Wilms’ tumor suppressor gene, is specific and dynamically expressed in the coelomic epithelium. In the embryos obtained from the crossbreeding, the Wt1-expressing cell lineage produces the yellow fluorescent protein (YFP) allowing for colocalization with differentiation markers through confocal microscopy and flow cytometry. Wt1cre-YFP cells were very abundant throughout the intestine during midgestation, declining in neonates. Wt1cre-YFP cells were also transiently observed within the mucosa, being apparently released into the intestinal lumen. YFP was detected in cells contributing to intestinal vascularization (endothelium, pericytes and smooth muscle), visceral musculature (circular, longitudinal and submucosal) as well as in Cajal and Cajal-like interstitial cells. Wt1cre-YFP mesenchymal cells expressed FGF9, a critical growth factor for intestinal development, as well as PDGFRα, mainly within developing villi. Thus, a cell population derived from the coelomic epithelium incorporates to the gut mesenchyme and contribute to a variety of intestinal tissues, probably playing also a signaling role. Our results support the origin of interstitial cells of Cajal and visceral circular muscle from a common progenitor expressing anoctamin-1 and SMCα-actin. Coelomic-derived cells contribute to the differentiation of at least a part of the interstitial cells of Cajal.

References

[1]  Rolle U, Piaseczna-Piotrowska A, Puri P (2007) Interstitial cells of Cajal in the normal gut and in intestinal motility disorders of childhood. Pediatr Surg Int 23: 1139–1152.
[2]  Lavine KJ, Yu K, White AC, Zhang X, Smith C, et al. (2005) Endocardial and epicardial derived FGF signals regulate myocardial proliferation and differentiation in vivo. Dev Cell 8: 85–95.
[3]  Merki E, Zamora M, Raya A, Kawakami Y, Wang J, et al. (2005) Epicardial retinoid X receptor alpha is required for myocardial growth and coronary artery formation. Proc Natl Acad Sci USA 102: 18455–18460.
[4]  Martinez-Estrada OM, Lettice LA, Essafi A, Guadix JA, Slight J, et al. (2010) Wt1 is required for cardiovascular progenitor cell formation through transcriptional control of Snail and E-cadherin. Nat Genet 42: 89–93.
[5]  Que J, Wilm B, Hasegawa H, Wang F, Bader D, et al. (2008) Mesothelium contributes to vascular smooth muscle and mesenchyme during lung development. Proc Natl Acad Sci USA 105: 16626–166230.
[6]  Ijpenberg A, Pérez-Pomares JM, Guadix JA, Carmona R, Portillo-Sánchez V, et al. (2007) Wt1 and retinoic acid signaling are essential for stellate cell development and liver morphogenesis. Dev Biol 312: 157–170.
[7]  Karl J, Capel B (1998) Sertoli cells of the mouse testis originate from the coelomic epithelium. Dev Biol 203: 323–333.
[8]  McLin VA, Henning SJ, Jamrich M (2009) The role of the visceral mesoderm in the development of the gastrointestinal tract. Gastroenterology 136: 2074–2091.
[9]  Wilm B, Ipenberg A, Hastie ND, Burch JB, Bader DM (2005) The serosal mesothelium is a major source of smooth muscle cells of the gut vasculature. Development 132: 5317–5328.
[10]  Moore AW, Schedl A, McInnes L, Doyle M, Hecksher-Sorensen J, et al. (1998) YAC transgenic analysis reveals Wilms’ tumour 1 gene activity in the proliferating coelomic epithelium, developing diaphragm and limb. Mech Dev 79: 169–184.
[11]  del Monte G, Casanova JC, Guadix JA, MacGrogan D, Burch JB, et al. (2011) Differential Notch signaling in the epicardium is required for cardiac inflow development and coronary vessel morphogenesis. Circ Res 108: 824–836.
[12]  Wessels A, van den Hoff MJ, Adamo RF, Phelps AL, Lockhart MM, et al. (2012) Epicardially derived fibroblasts preferentially contribute to the parietal leaflets of the atrioventricular valves in the murine heart. Dev Biol 366: 111–124.
[13]  Vanderwinden JM, Gillard K, De Laet MH, Messam CA, Schiffmann SN (2002) Distribution of the intermediate filament nestin in the muscularis propria of the human gastrointestinal tract. Cell Tissue Res 309: 261–268.
[14]  Lee JC, Thuneberg L, Berezin I, Huizinga JD (1999) Generation of slow waves in membrane potential is an intrinsic property of interstitial cells of Cajal. Am J Physiol 277: G409–423.
[15]  Klüppel M, Huizinga JD, Malysz J, Bernstein A (1998) Developmental origin and Kit-dependent development of the interstitial cells of Cajal in the mammalian small intestine. Dev Dyn 211: 60–71.
[16]  Savagner P (2001) Leaving the neighborhood: molecular mechanisms involved during epithelial-mesenchymal transition. Bioessays 23: 912–923.
[17]  Guadix JA, Ruiz-Villalba A, Lettice L, Velecela V, Mu?oz-Chapuli R, et al. (2011) Wt1 controls retinoic acid signalling in embryonic epicardium through transcriptional activation of Raldh2. Development 138: 1093–1097.
[18]  Su ZY, Li Y, Zhao XL, Zhang M (2010) All-trans retinoic acid promotes smooth muscle cell differentiation of rabbit bone marrow-derived mesenchymal stem cells. J Zhejiang Univ Sci B 11: 489–496.
[19]  Torihashi S, Ward SM, Sanders KM (1997) Development of c-Kit-positive cells and the onset of electrical rhythmicity in murine small intestine. Gastroenterology 112: 144–155.
[20]  Wallace AS, Burns AJ (2005) Development of the enteric nervous system, smooth muscle and interstitial cells of Cajal in the human gastrointestinal tract. Cell Tissue Res 319: 367–382.
[21]  Fu M, Tam PK, Sham MH, Lui VC (2004) Embryonic development of the ganglion plexuses and the concentric layer structure of human gut: a topographical study. Anat Embryol (Berl) 208: 33–41.
[22]  Faussone-Pellegrini MS, Vannucchi MG, Alaggio R, Strojna A, Midrio P (2007) Morphology of the interstitial cells of Cajal of the human ileum from foetal to neonatal life. J Cell Mol Med 11: 482–94.
[23]  Gomez-Pinilla PJ, Gibbons SJ, Bardsley MR, Lorincz A, Pozo MJ, et al. (2009) Ano1 is a selective marker of interstitial cells of Cajal in the human and mouse gastrointestinal tract. Am J Physiol Gastrointest Liver Physiol 296: G1370–1381.
[24]  Sanders KM, Zhu MH, Britton F, Koh SD, Ward SM (2012) Anoctamins and gastrointestinal smooth muscle excitability. Exp Physiol 97: 200–206.
[25]  Vanderwinden JM, Rumessen JJ, De Laet MH, Vanderhaeghen JJ, Schiffmann SN (2000) CD34 immunoreactivity and interstitial cells of Cajal in the human and mouse gastrointestinal tract. Cell Tissue Res 302: 145–153.
[26]  Pieri L, Vannucchi MG, Faussone-Pellegrini MS (2008) Histochemical and ultrastructural characteristics of an interstitial cell type different from ICC and resident in the muscle coat of human gut. J Cell Mol Med 12: 1944–1955.
[27]  Streutker CJ, Huizinga JD, Campbell F, Ho J, Riddell RH (2003) Loss of CD117 (c-Kit)- and CD34-positive ICC and associated CD34-positive fibroblasts defines a subpopulation of chronic intestinal pseudo-obstruction. Am J Surg Pathol 27: 228–235.
[28]  Cantarero-Carmona I, Luesma-Bartolome MJ, Junquera-Escribano CJ (2011) Identification of telocytes in the lamina propria of rat duodenum: transmission electron microscopy. J Cell Mol Med 15: 26–30.
[29]  Karlsson L, Lindahl P, Heath JK, Betsholtz C (2000) Abnormal gastrointestinal development in PDGF-A and PDGFR-(alpha) deficient mice implicates a novel mesenchymal structure with putative instructive properties in villus morphogenesis. Development 127: 3457–3466.
[30]  Bell L, Williams L (1988) The presence and significance of intraepithelial mesenchymal cells in human foetal colon. Anat Embryol (Berl) 177: 377–380.
[31]  Zhang X, Stappenbeck TS, White AC, Lavine KJ, Gordon JI, et al. (2006) Reciprocal epithelial-mesenchymal FGF signaling is required for cecal development. Development 133: 173–180.
[32]  Geske MJ, Zhang X, Patel KK, Ornitz DM, Stappenbeck TS (2008) Fgf9 signaling regulates small intestinal elongation and mesenchymal development. Development 135: 2959–2968.

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