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Published in: Urolithiasis 5/2003

01-10-2003 | Original Paper

Ultrastructural basement membrane topography of the bladder epithelium

Authors: George A. Abrams, Christopher J. Murphy, Zun-Yi Wang, Paul F. Nealey, Dale E. Bjorling

Published in: Urolithiasis | Issue 5/2003

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Abstract

The basement membrane underlies epithelium and separates it from deeper tissues. Recent studies suggest that nanoscale topography of the surface of basement membrane may modulate adhesion, migration, proliferation and differentiation of overlying epithelium. This study was performed to elucidate nanoscale topographic features of basement membrane of the bladder. Bladder tissues were obtained from three adult female rhesus macaques. A process was developed to remove the epithelium while preserving the underlying basement membrane, and tissues were evaluated by immunohistochemistry and scanning electron microscopy (SEM). Detailed measurements were made of stereo SEM images to quantitatively define topographic features. Measurements made from multiple SEM images of bladder basement membrane provided the following values for topographic features: mean feature height, 178±57 nm; mean fiber diameters, 52±28 nm; mean pore diameter, 82±49 nm; and mean interpore distance (center to center), 127±54 nm. These dimensions are similar to those reported previously for basement membranes of other species and anatomical locations. This information provides a rational basis for design of nanostructured biomaterials to produce composite grafts for repair or replacement of segments of the urinary tract.
Literature
1.
go back to reference Miner JH (1999) Renal basement membrane components, Kidney Int 56:2016. Miner JH (1999) Renal basement membrane components, Kidney Int 56:2016.
2.
go back to reference Miosge N (2001) The ultrastructural composition of basement membranes in vivo. Histol Histopathol 16: 1239PubMed Miosge N (2001) The ultrastructural composition of basement membranes in vivo. Histol Histopathol 16: 1239PubMed
3.
go back to reference Dua HS, Gomes JA, Singh A (1994) Corneal epithelial wound healing. Brit J Ophthal 78: 401PubMed Dua HS, Gomes JA, Singh A (1994) Corneal epithelial wound healing. Brit J Ophthal 78: 401PubMed
4.
go back to reference Juliano RL, Haskill S (1993) Signal transduction from the extracellular matrix. J Cell Biol 120: 577PubMed Juliano RL, Haskill S (1993) Signal transduction from the extracellular matrix. J Cell Biol 120: 577PubMed
5.
go back to reference Mousa SA, Cheresh DA (1997) Recent advances in cell adhesion molecules and extracellular matrix proteins: potential clinical applications. Drug Discov Today 2: 187CrossRef Mousa SA, Cheresh DA (1997) Recent advances in cell adhesion molecules and extracellular matrix proteins: potential clinical applications. Drug Discov Today 2: 187CrossRef
6.
go back to reference Bell SE, Mavila A, Salazar R, Bayless KJ, Kanagala S, Maxwell SA, Davis GE (2001) Differential gene expression during capillary morphogenesis in 3D collagen matrices: regulated expression of genes involved in basement membrane matrix assembly, cell cycle progression, cellular differentiation and G-protein signaling. J Cell Sci 114: 2755PubMed Bell SE, Mavila A, Salazar R, Bayless KJ, Kanagala S, Maxwell SA, Davis GE (2001) Differential gene expression during capillary morphogenesis in 3D collagen matrices: regulated expression of genes involved in basement membrane matrix assembly, cell cycle progression, cellular differentiation and G-protein signaling. J Cell Sci 114: 2755PubMed
7.
go back to reference Li X, Chen Y, Scheele S, Arman E, Haffner-Krausz R, Ekblom P, Lonai P (2001) Fibroblast growth factor signaling and basement membrane assembly are connected during epithelial morphogenesis of the embryoid body. J Cell Biol 153: 811CrossRefPubMed Li X, Chen Y, Scheele S, Arman E, Haffner-Krausz R, Ekblom P, Lonai P (2001) Fibroblast growth factor signaling and basement membrane assembly are connected during epithelial morphogenesis of the embryoid body. J Cell Biol 153: 811CrossRefPubMed
8.
go back to reference Furuyama A, Iwata M, Hayashi T, Mochitate K (1999) Transforming growth factor-beta1 regulates basement membrane formation by alveolar epithelial cells in vitro. Eur J Cell Biol 78: 867PubMed Furuyama A, Iwata M, Hayashi T, Mochitate K (1999) Transforming growth factor-beta1 regulates basement membrane formation by alveolar epithelial cells in vitro. Eur J Cell Biol 78: 867PubMed
9.
go back to reference Cosgrove D, Rodgers K, Meehan D, Miller C, Bovard K, Gilroy A, Gardner H, Kotelianski V, Gotwals P, Amatucci A, Kalluri R (2000) Integrin alpha1beta1 and transforming growth factor-beta1 play distinct roles in alport glomerular pathogenesis and serve as dual targets for metabolic therapy. Am J Pathol 157: 1649PubMed Cosgrove D, Rodgers K, Meehan D, Miller C, Bovard K, Gilroy A, Gardner H, Kotelianski V, Gotwals P, Amatucci A, Kalluri R (2000) Integrin alpha1beta1 and transforming growth factor-beta1 play distinct roles in alport glomerular pathogenesis and serve as dual targets for metabolic therapy. Am J Pathol 157: 1649PubMed
10.
go back to reference Ziyadeh FN, Hoffman BB, Han DC, Iglesias-De La Cruz MC, Hong SW, Isono M, Chen S, McGowan TA, Sharma K (2000) Long-term prevention of renal insufficiency, excess matrix gene expression, and glomerular mesangial matrix expansion by treatment with monoclonal antitransforming growth factor-beta antibody in db/db diabetic mice. Proc Natl Acad Sci U S A 97: 8015CrossRefPubMed Ziyadeh FN, Hoffman BB, Han DC, Iglesias-De La Cruz MC, Hong SW, Isono M, Chen S, McGowan TA, Sharma K (2000) Long-term prevention of renal insufficiency, excess matrix gene expression, and glomerular mesangial matrix expansion by treatment with monoclonal antitransforming growth factor-beta antibody in db/db diabetic mice. Proc Natl Acad Sci U S A 97: 8015CrossRefPubMed
11.
go back to reference Inoue S (1994) Basic structure of basement membranes is a fine network of cords, irregular anastomosing strands, Microsc Res Techn 28: 29 Inoue S (1994) Basic structure of basement membranes is a fine network of cords, irregular anastomosing strands, Microsc Res Techn 28: 29
12.
go back to reference Merker HJ (1994) Morphology of the basement membrane. Microsc Res Techn 28: 95 Merker HJ (1994) Morphology of the basement membrane. Microsc Res Techn 28: 95
13.
go back to reference Ruben GC, Yurchenco PD (1994) High resolution platinum-carbon replication of freeze dried basement membrane. Microsc Res Techn 28: 13 Ruben GC, Yurchenco PD (1994) High resolution platinum-carbon replication of freeze dried basement membrane. Microsc Res Techn 28: 13
14.
go back to reference Hironaka K, Makino H, Yamsaki Y, Ota Z (1993) Renal basement membranes by ultrahigh resolution scanning electron microscopy. Kidney Int 43: 334PubMed Hironaka K, Makino H, Yamsaki Y, Ota Z (1993) Renal basement membranes by ultrahigh resolution scanning electron microscopy. Kidney Int 43: 334PubMed
15.
go back to reference Kubosawa H, Kondo Y (1994) Quick-freeze, deep-etch studies of the renal basement membranes. Microsc Res Techn 28: 2 Kubosawa H, Kondo Y (1994) Quick-freeze, deep-etch studies of the renal basement membranes. Microsc Res Techn 28: 2
16.
go back to reference Shirato I, Tomino Y, Koide H, Sakai T (1991) Fine structure of the glomerular basement membrane of the rat kidney visualized by high resolution scanning electron microscopy. Cell Tissue Res 266: 1PubMed Shirato I, Tomino Y, Koide H, Sakai T (1991) Fine structure of the glomerular basement membrane of the rat kidney visualized by high resolution scanning electron microscopy. Cell Tissue Res 266: 1PubMed
17.
go back to reference Yamasaki Y, Makino Y, Ota Z (1994) Meshwork structures in bovine glomerular and tubular basement membranes as revealed by ultra-high resolution scanning electron microscopy. Nephron 66: 189PubMed Yamasaki Y, Makino Y, Ota Z (1994) Meshwork structures in bovine glomerular and tubular basement membranes as revealed by ultra-high resolution scanning electron microscopy. Nephron 66: 189PubMed
18.
go back to reference Abrams GA, Teixeira AI, Nealey PF, Murphy CJ (2003) The effects of substratum topography on cell behavior. In: Dillow AK, Lowman A (eds) Biomimetic materials and design: interactive biointerfacial strategies, tissue engineering, and drug delivery, Marcel-Dekker, New York, p 91 Abrams GA, Teixeira AI, Nealey PF, Murphy CJ (2003) The effects of substratum topography on cell behavior. In: Dillow AK, Lowman A (eds) Biomimetic materials and design: interactive biointerfacial strategies, tissue engineering, and drug delivery, Marcel-Dekker, New York, p 91
19.
go back to reference Abrams GA, Schaus SS, Goodman SL, Nealey PF, Murphy CJ (2000) Nanoscale topography of the corneal epithelial basement membrane and Descemet's membrane of the human. Cornea 19: 57CrossRefPubMed Abrams GA, Schaus SS, Goodman SL, Nealey PF, Murphy CJ (2000) Nanoscale topography of the corneal epithelial basement membrane and Descemet's membrane of the human. Cornea 19: 57CrossRefPubMed
20.
go back to reference Abrams GA, Goodman SL, Nealey PF, Franco M, Murphy CJ (2000) Nanoscale topography of the basement membrane underlying the corneal epithelium of the rhesus macaque. Cell Tiss Res 299: 39 Abrams GA, Goodman SL, Nealey PF, Franco M, Murphy CJ (2000) Nanoscale topography of the basement membrane underlying the corneal epithelium of the rhesus macaque. Cell Tiss Res 299: 39
21.
go back to reference Spurr SJ, Gibson IK (1985) Isolation of corneal epithelium with Dispase II or EDTA. Invest Ophthalmol Vis Sci 26: 818PubMed Spurr SJ, Gibson IK (1985) Isolation of corneal epithelium with Dispase II or EDTA. Invest Ophthalmol Vis Sci 26: 818PubMed
22.
go back to reference Maser MD, Trimble JJ (1977) Rapid chemical dehydration of biological samples for scanning electron microscopy using 2,2-dimethoxypropane. J Histochem Cytochem 25: 247PubMed Maser MD, Trimble JJ (1977) Rapid chemical dehydration of biological samples for scanning electron microscopy using 2,2-dimethoxypropane. J Histochem Cytochem 25: 247PubMed
23.
go back to reference Boyde A (1974) Three-dimensional aspects of SEM images. In: Well OC (ed) Scanning electron microscopy. McGraw-Hill, New York, p 277 Boyde A (1974) Three-dimensional aspects of SEM images. In: Well OC (ed) Scanning electron microscopy. McGraw-Hill, New York, p 277
24.
go back to reference Goodman SL (1999) Scanning electron microscopy evaluation of biomaterials. In: von Recum AV, Anderson JM (eds) Handbook of biomaterials evaluation: scientific, technical, and clinical testing of implant materials. Taylor and Francis, Philadelphia, p 613 Goodman SL (1999) Scanning electron microscopy evaluation of biomaterials. In: von Recum AV, Anderson JM (eds) Handbook of biomaterials evaluation: scientific, technical, and clinical testing of implant materials. Taylor and Francis, Philadelphia, p 613
25.
26.
go back to reference Atala A (2001) Bladder regeneration by tissue engineering. Br J Urol Int 88: 765CrossRef Atala A (2001) Bladder regeneration by tissue engineering. Br J Urol Int 88: 765CrossRef
27.
go back to reference Shokeir AA (2002) Bladder regeneration: between the idea and reality. Br J Urol Int 89: 186CrossRef Shokeir AA (2002) Bladder regeneration: between the idea and reality. Br J Urol Int 89: 186CrossRef
28.
go back to reference Oberpenning F, Meng J, Yoo JJ, Atala A (1999) De novo reconstitution of a functional mammalian urinary bladder by tissue engineering. Nat Biotechnol 17: 149CrossRefPubMed Oberpenning F, Meng J, Yoo JJ, Atala A (1999) De novo reconstitution of a functional mammalian urinary bladder by tissue engineering. Nat Biotechnol 17: 149CrossRefPubMed
29.
go back to reference Fauza DO, Fishman SJ, Mehegan K, Atala A (1998) Videofetoscopically assisted fetal tissue engineering: bladder augmentation. J Pediatr Surg 33: 7PubMed Fauza DO, Fishman SJ, Mehegan K, Atala A (1998) Videofetoscopically assisted fetal tissue engineering: bladder augmentation. J Pediatr Surg 33: 7PubMed
30.
go back to reference Pariente JL, Kim BS, Atala A (2001) In vitro biocompatibility assessment of naturally derived and synthetic biomaterials using normal human urothelial cells. J Biomed Mater Res 55: 33CrossRefPubMed Pariente JL, Kim BS, Atala A (2001) In vitro biocompatibility assessment of naturally derived and synthetic biomaterials using normal human urothelial cells. J Biomed Mater Res 55: 33CrossRefPubMed
31.
go back to reference Pariente JL, Kim BS, Atala A (2002) In vitro biocompatibility evaluation of naturally derived and synthetic biomaterials using normal human bladder smooth muscle cells. J Urol 167: 1867PubMed Pariente JL, Kim BS, Atala A (2002) In vitro biocompatibility evaluation of naturally derived and synthetic biomaterials using normal human bladder smooth muscle cells. J Urol 167: 1867PubMed
32.
go back to reference Berman M (1989) The pathogenesis of corneal epithelial defects. Acta Ophthalmol 192 [Suppl]: 55 Berman M (1989) The pathogenesis of corneal epithelial defects. Acta Ophthalmol 192 [Suppl]: 55
33.
go back to reference Den Braber ET, Jansen HV, de Boer MJ, Croes HJ, Elwenspoek M, Ginsel LA, Jansen JA (1998) Scanning electron microscopic, transmission electron microscopic, and confocal laser scanning microscopic observation of fibroblasts cultured on microgrooved surfaces of bulk titanium substrata. J Biomed Mater Res 40: 425CrossRefPubMed Den Braber ET, Jansen HV, de Boer MJ, Croes HJ, Elwenspoek M, Ginsel LA, Jansen JA (1998) Scanning electron microscopic, transmission electron microscopic, and confocal laser scanning microscopic observation of fibroblasts cultured on microgrooved surfaces of bulk titanium substrata. J Biomed Mater Res 40: 425CrossRefPubMed
34.
go back to reference Van Kooten TG, von Recum AF (1999) Cell adhesion to textured silicone surfaces: the influence of time of adhesion and texture on focal contact and fibronectin fibril formation. Tissue Eng 5: 223PubMed Van Kooten TG, von Recum AF (1999) Cell adhesion to textured silicone surfaces: the influence of time of adhesion and texture on focal contact and fibronectin fibril formation. Tissue Eng 5: 223PubMed
35.
go back to reference Dalton BA, Evans MD, McFarland GA, Steele JG (1999) Modulation of corneal epithelial stratification by polymer surface topography. J Biomed Mater Res 45: 384CrossRefPubMed Dalton BA, Evans MD, McFarland GA, Steele JG (1999) Modulation of corneal epithelial stratification by polymer surface topography. J Biomed Mater Res 45: 384CrossRefPubMed
36.
go back to reference Fitton JH, Dalton BA, Beumer G, Johnson G, Griesser HJ, Steele JG (1998) Surface topography can interfere with epithelial tissue migration. J Biomed Mater Res 42: 245CrossRefPubMed Fitton JH, Dalton BA, Beumer G, Johnson G, Griesser HJ, Steele JG (1998) Surface topography can interfere with epithelial tissue migration. J Biomed Mater Res 42: 245CrossRefPubMed
37.
go back to reference Steele JG, Johnson G, McLean KM, Beumer GJ, Griesser HJ (2000) Effect of porosity and surface hydrophilicity on migration of epithelial tissue over synthetic polymer. J Biomed Mater Res 50: 475CrossRefPubMed Steele JG, Johnson G, McLean KM, Beumer GJ, Griesser HJ (2000) Effect of porosity and surface hydrophilicity on migration of epithelial tissue over synthetic polymer. J Biomed Mater Res 50: 475CrossRefPubMed
38.
go back to reference Holmes TC (2002) Novel peptide-based biomaterial scaffolds for tissue engineering. Trends Biotechnol 20: 16CrossRefPubMed Holmes TC (2002) Novel peptide-based biomaterial scaffolds for tissue engineering. Trends Biotechnol 20: 16CrossRefPubMed
Metadata
Title
Ultrastructural basement membrane topography of the bladder epithelium
Authors
George A. Abrams
Christopher J. Murphy
Zun-Yi Wang
Paul F. Nealey
Dale E. Bjorling
Publication date
01-10-2003
Publisher
Springer-Verlag
Published in
Urolithiasis / Issue 5/2003
Print ISSN: 2194-7228
Electronic ISSN: 2194-7236
DOI
https://doi.org/10.1007/s00240-003-0347-9

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