Skip to main content
Top

2018 | OriginalPaper | Chapter

19. Nano- and Microarchitecture of Biomaterial Surfaces

Authors : Vasif Hasirci, Nesrin Hasirci

Published in: Fundamentals of Biomaterials

Publisher: Springer New York

Activate our intelligent search to find suitable subject content or patents.

search-config
loading …

Abstract

Richard Feynman (winner of 1965 Nobel Prize in Physics) gave a talk at the American Physical Society meeting on December 29, 1959, titled “There’s Plenty of Room at the Bottom” at the California Institute of Technology (CalTech) upon which the whole discussion on the topic of nanotechnology started.

Dont have a licence yet? Then find out more about our products and how to get one now:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Literature
3.
go back to reference Scanlon B (2012) Working from the bottom up. Innovation 10(5) Scanlon B (2012) Working from the bottom up. Innovation 10(5)
4.
go back to reference Kucukturhan A (2012) Investigation of PLGA Nanospheres as bioactive agent carriers for the treatment of skin diseases. MSc Thesis, Middle East Technical University, Ankara Kucukturhan A (2012) Investigation of PLGA Nanospheres as bioactive agent carriers for the treatment of skin diseases. MSc Thesis, Middle East Technical University, Ankara
5.
go back to reference Fang J, Nakamura H, Maeda H (2011) The EPR effect: unique features of tumor blood vessels for drug delivery, factors involved, and limitations and augmentation of the effect. Adv Drug Deliv Rev 63(3):136–115CrossRef Fang J, Nakamura H, Maeda H (2011) The EPR effect: unique features of tumor blood vessels for drug delivery, factors involved, and limitations and augmentation of the effect. Adv Drug Deliv Rev 63(3):136–115CrossRef
6.
go back to reference Oh KT, Yin H, Lee ES, Bae YH (2007) Polymeric Nanovehicles for anticancer drugs with triggering release mechanisms. J Mater Chem 17(38):3987–4001CrossRef Oh KT, Yin H, Lee ES, Bae YH (2007) Polymeric Nanovehicles for anticancer drugs with triggering release mechanisms. J Mater Chem 17(38):3987–4001CrossRef
7.
go back to reference Kenar H (2009) 3D patterned cardiac tissue construct formation using biodegradable materials. PhD Thesis, Middle East Technical University, Ankara Kenar H (2009) 3D patterned cardiac tissue construct formation using biodegradable materials. PhD Thesis, Middle East Technical University, Ankara
8.
go back to reference Yucel D (2009) PhD Thesis, Middle East Technical University Yucel D (2009) PhD Thesis, Middle East Technical University
9.
go back to reference Tsoi KM, Dai Q, Alman BA, Chan WC (2012) Are quantum dots toxic? Exploring the discrepancy between cell culture and animal studies. Acc Chem Res 46(3):662–671CrossRef Tsoi KM, Dai Q, Alman BA, Chan WC (2012) Are quantum dots toxic? Exploring the discrepancy between cell culture and animal studies. Acc Chem Res 46(3):662–671CrossRef
10.
go back to reference Curtis ASG, Gadegaard N, Dalby MJ, Riehle MO, Wilkinson CDW, Aitchison G (2004) Cells react to nanoscale order and symmetry in their surroundings. IEEE Trans Nanobiosci 3:61–65CrossRef Curtis ASG, Gadegaard N, Dalby MJ, Riehle MO, Wilkinson CDW, Aitchison G (2004) Cells react to nanoscale order and symmetry in their surroundings. IEEE Trans Nanobiosci 3:61–65CrossRef
11.
go back to reference Dalby MJ, Riehle MO, Sutherland DS, Agheli H, Curtis ASG (2004) Changes in fibroblast morphology in response to nano-columns produced by colloidal lithography. Biomaterials 25:5415–5422CrossRef Dalby MJ, Riehle MO, Sutherland DS, Agheli H, Curtis ASG (2004) Changes in fibroblast morphology in response to nano-columns produced by colloidal lithography. Biomaterials 25:5415–5422CrossRef
12.
go back to reference Ainslie KM, Bachelder EM, Sharma G, Grimes C, Pishko MV (2007) Macrophage cell adhesion and inflammation cytokines on magnetostrictive nanowires. Nanotoxicology 1:279–290CrossRef Ainslie KM, Bachelder EM, Sharma G, Grimes C, Pishko MV (2007) Macrophage cell adhesion and inflammation cytokines on magnetostrictive nanowires. Nanotoxicology 1:279–290CrossRef
13.
go back to reference Lin H, Datar RH (2006) Medical applications of nanotechnology. Natl Med J India 19:27–32 Lin H, Datar RH (2006) Medical applications of nanotechnology. Natl Med J India 19:27–32
14.
go back to reference Schindler M, Nur EKA, Ahmed I, Kamal J, Liu HY, Amor N, Ponery AS, Crockett DP, Grafe TH, Chung HY, Weik T, Jones E, Meiners S (2006) Living in three dimensions: 3D nanostructured environments for cell culture and regenerative medicine. Cell Biochem Biophys 45:215–227CrossRef Schindler M, Nur EKA, Ahmed I, Kamal J, Liu HY, Amor N, Ponery AS, Crockett DP, Grafe TH, Chung HY, Weik T, Jones E, Meiners S (2006) Living in three dimensions: 3D nanostructured environments for cell culture and regenerative medicine. Cell Biochem Biophys 45:215–227CrossRef
15.
go back to reference Hong S-H, Hwang J, Lee H (2009) Replication of cicada wing’s nano-patterns by hot embossing and UV nanoimprinting. Nanotechnology 20:385303CrossRef Hong S-H, Hwang J, Lee H (2009) Replication of cicada wing’s nano-patterns by hot embossing and UV nanoimprinting. Nanotechnology 20:385303CrossRef
16.
go back to reference Kim HN, Jiao A, Hwang NS, Kim MS, Kang DH, Kim D-H, Suh K-Y (2013) Nanotopography-guided tissue engineering and regenerative medicine. Adv Drug Deliv Rev 65:536–558CrossRef Kim HN, Jiao A, Hwang NS, Kim MS, Kang DH, Kim D-H, Suh K-Y (2013) Nanotopography-guided tissue engineering and regenerative medicine. Adv Drug Deliv Rev 65:536–558CrossRef
17.
go back to reference Desai TA (2001) Micro- and nano structures for tissue engineering constructs. Med Eng Phys 22:595–606CrossRef Desai TA (2001) Micro- and nano structures for tissue engineering constructs. Med Eng Phys 22:595–606CrossRef
18.
go back to reference Skorb EV, Andreeva DV (2013) Surface nanoarchitecture for bio-applications: self-regulating intelligent interfaces. Adv Funct Mater 23:1–24CrossRef Skorb EV, Andreeva DV (2013) Surface nanoarchitecture for bio-applications: self-regulating intelligent interfaces. Adv Funct Mater 23:1–24CrossRef
19.
go back to reference Malmsten M (1998) Formation of adsorbed protein layers. J Colloid Interface Sci 207:186–199CrossRef Malmsten M (1998) Formation of adsorbed protein layers. J Colloid Interface Sci 207:186–199CrossRef
20.
go back to reference Lo CM, Wang HB, Dembo M, Wang YL (2000) Cell movement is guided by the rigidity of the substrate. Biophys J 79:144–152CrossRef Lo CM, Wang HB, Dembo M, Wang YL (2000) Cell movement is guided by the rigidity of the substrate. Biophys J 79:144–152CrossRef
21.
go back to reference Carter SB (1965) Principles of cell motility: the direction of cell movement and cancer invasion. Nature 208:1183–1187CrossRef Carter SB (1965) Principles of cell motility: the direction of cell movement and cancer invasion. Nature 208:1183–1187CrossRef
22.
go back to reference Zhao M, Song B, Pu J, Wada T, Reid B, Tai G, Wang F, Guo A, Walczysko P, Gu Y, Sasaki T, Suzuki A, Forrester JV, Bourne HR, Devreotes PN, McCaig CD, Penninger JM (2006) Electrical signals control wound healing through phosphatidylinositol-3-OH kinase-gamma and PTEN. Nature 442:457–460CrossRef Zhao M, Song B, Pu J, Wada T, Reid B, Tai G, Wang F, Guo A, Walczysko P, Gu Y, Sasaki T, Suzuki A, Forrester JV, Bourne HR, Devreotes PN, McCaig CD, Penninger JM (2006) Electrical signals control wound healing through phosphatidylinositol-3-OH kinase-gamma and PTEN. Nature 442:457–460CrossRef
23.
go back to reference Petrie RJ, Doyle AD, Yamada KM (2009) Random versus directionally persistent cell migration. Nat Rev Mol Cell Biol 10:538–549CrossRef Petrie RJ, Doyle AD, Yamada KM (2009) Random versus directionally persistent cell migration. Nat Rev Mol Cell Biol 10:538–549CrossRef
24.
go back to reference Lashuel HA, Hartley D, Petre BM, Walz T, Lansbury PT Jr, Turner J, King JC, Lachlan-cope TA, Jones PD (2002) Neurodegenerative disease: amyloid pores from pathogenic mutations. Nature 418:291CrossRef Lashuel HA, Hartley D, Petre BM, Walz T, Lansbury PT Jr, Turner J, King JC, Lachlan-cope TA, Jones PD (2002) Neurodegenerative disease: amyloid pores from pathogenic mutations. Nature 418:291CrossRef
25.
go back to reference Ozcelik H (2012) Interaction between micro And nano patterned polymeric surfaces and different cell types. PhD Thesis, Middle East Technical University, Ankara Ozcelik H (2012) Interaction between micro And nano patterned polymeric surfaces and different cell types. PhD Thesis, Middle East Technical University, Ankara
26.
go back to reference Falconnet D, Csucs G, Grandin HM, Textor M (2006) Surface engineering approaches to micropattern surfaces for cell-based assays. Biomaterials 27:3044–3063CrossRef Falconnet D, Csucs G, Grandin HM, Textor M (2006) Surface engineering approaches to micropattern surfaces for cell-based assays. Biomaterials 27:3044–3063CrossRef
27.
go back to reference Gates BD, Xu Q, Love JC, Wolfe DB, Whitesides GM (2004) Unconventional nanofabrication. Annu Rev Mater Res 34:339–372CrossRef Gates BD, Xu Q, Love JC, Wolfe DB, Whitesides GM (2004) Unconventional nanofabrication. Annu Rev Mater Res 34:339–372CrossRef
28.
go back to reference Adams TM, Layton RA (2010) Creating and transferring patterns—Photolithography. In: Introductory MEMS. Springer, New York, pp 65–94CrossRef Adams TM, Layton RA (2010) Creating and transferring patterns—Photolithography. In: Introductory MEMS. Springer, New York, pp 65–94CrossRef
29.
go back to reference Vieu C, Carcenac F, Pepin A, Chen Y, Mejias M, Lebib A, Couraud L, Launois H (2000) Electron beam lithography: resolution limits and applications. Appl Surf Sci 164:111–117CrossRef Vieu C, Carcenac F, Pepin A, Chen Y, Mejias M, Lebib A, Couraud L, Launois H (2000) Electron beam lithography: resolution limits and applications. Appl Surf Sci 164:111–117CrossRef
30.
go back to reference Wnuk JD, Rosenberg SG, Gorham JM, van Dorp WF, Hagen CW, Fairbrother DH (2011) Electron beam deposition for nanofabrication: Insights from surface science. Surf Sci 605:257–266CrossRef Wnuk JD, Rosenberg SG, Gorham JM, van Dorp WF, Hagen CW, Fairbrother DH (2011) Electron beam deposition for nanofabrication: Insights from surface science. Surf Sci 605:257–266CrossRef
31.
go back to reference Romano-Rodríguez A, Hernández-Ramírez F (2007) Dual-beam focused ion beam (FIB): a prototyping tool for micro and nanofabrication. Microelectron Eng 84:789–792CrossRef Romano-Rodríguez A, Hernández-Ramírez F (2007) Dual-beam focused ion beam (FIB): a prototyping tool for micro and nanofabrication. Microelectron Eng 84:789–792CrossRef
32.
go back to reference Wouters D, Schubert US (2004) Nanolithography and nanochemistry: probe-related patterning techniques and chemical modification for nanometer-sized devices. Angew Chemie 43:2480–2495CrossRef Wouters D, Schubert US (2004) Nanolithography and nanochemistry: probe-related patterning techniques and chemical modification for nanometer-sized devices. Angew Chemie 43:2480–2495CrossRef
33.
go back to reference Ginger DS, Zhang H, Mirkin CA (2004) The evolution of dip-pen nanolithography. Angew Chemie 43:30–45CrossRef Ginger DS, Zhang H, Mirkin CA (2004) The evolution of dip-pen nanolithography. Angew Chemie 43:30–45CrossRef
34.
go back to reference Salaita K, Wang Y, Mirkin CA (2007) Applications of dip-pen nanolithography. Nat Nanotechnol 2(3):145–155CrossRef Salaita K, Wang Y, Mirkin CA (2007) Applications of dip-pen nanolithography. Nat Nanotechnol 2(3):145–155CrossRef
35.
go back to reference Rogers JA, Nuzzo RG (2005) Recent progress in soft lithography. Angew Chemie 8:50–56 Rogers JA, Nuzzo RG (2005) Recent progress in soft lithography. Angew Chemie 8:50–56
36.
go back to reference Yang S-M, Jang SG, Choi D-G, Kim S, Yu HK (2006) Nanomachining by colloidal lithography. Small 2:458–475CrossRef Yang S-M, Jang SG, Choi D-G, Kim S, Yu HK (2006) Nanomachining by colloidal lithography. Small 2:458–475CrossRef
37.
go back to reference Xu C, Ohno K, Ladmiral V, Composto RJ (2008) Dispersion of polymer-grafted magnetic nanoparticles in homopolymers and block copolymers. Polymer 49:3568–3577CrossRef Xu C, Ohno K, Ladmiral V, Composto RJ (2008) Dispersion of polymer-grafted magnetic nanoparticles in homopolymers and block copolymers. Polymer 49:3568–3577CrossRef
39.
go back to reference Jackman RJ, Wilbur JL, Whitesides GM (1995) Fabrication of submicrometer features on curved substrates by microcontact printing. Science 269:664–666CrossRef Jackman RJ, Wilbur JL, Whitesides GM (1995) Fabrication of submicrometer features on curved substrates by microcontact printing. Science 269:664–666CrossRef
40.
go back to reference Liang L, Liu J, Windisch CF Jr, Exarhos GJ, Lin Y (2002) Direct assembly of large arrays of oriented conducting polymer nanowires. Angew Chemie 41:3665–3668CrossRef Liang L, Liu J, Windisch CF Jr, Exarhos GJ, Lin Y (2002) Direct assembly of large arrays of oriented conducting polymer nanowires. Angew Chemie 41:3665–3668CrossRef
41.
go back to reference Wu J, Mao Z, Han L, Xi J, Zhao Y, Gao C (2013) Directional migration of vascular smooth muscle cells guided by synergetic surface gradient and chemical pattern of poly(ethylene glycol) brushes. J Bioact Compat Polym 28:605–620CrossRef Wu J, Mao Z, Han L, Xi J, Zhao Y, Gao C (2013) Directional migration of vascular smooth muscle cells guided by synergetic surface gradient and chemical pattern of poly(ethylene glycol) brushes. J Bioact Compat Polym 28:605–620CrossRef
42.
go back to reference Shekaran A, Garcia AJ (2011) Nanoscale engineering of extracellular matrix-mimetic bioadhesive surfaces and implants for tissue engineering. Biochim Biophys Acta 1810:350–360CrossRef Shekaran A, Garcia AJ (2011) Nanoscale engineering of extracellular matrix-mimetic bioadhesive surfaces and implants for tissue engineering. Biochim Biophys Acta 1810:350–360CrossRef
43.
go back to reference Rothemund PWK (2006) Folding DNA to create nanoscale shapes and patterns. Nature 440:297–302CrossRef Rothemund PWK (2006) Folding DNA to create nanoscale shapes and patterns. Nature 440:297–302CrossRef
44.
go back to reference Douglas SM, Marblestone AH, Teerapittayanon S, Vazquez A, Church GM, Shih WM (2009) Rapid prototyping of 3D DNA-origami shapes with caDNAno. Nucleic Acids Res 37:5001–5006CrossRef Douglas SM, Marblestone AH, Teerapittayanon S, Vazquez A, Church GM, Shih WM (2009) Rapid prototyping of 3D DNA-origami shapes with caDNAno. Nucleic Acids Res 37:5001–5006CrossRef
45.
go back to reference Hung AM, Noh H, Cha JN (2010) Recent advances in DNA-based directed assembly on surfaces. Nanoscale 2:2530–2537CrossRef Hung AM, Noh H, Cha JN (2010) Recent advances in DNA-based directed assembly on surfaces. Nanoscale 2:2530–2537CrossRef
46.
go back to reference Nel AE, Mädler L, Velegol D, Xia T, Hoek EMV, Somasundaran P, Klaessig F, Castranova V, Thompson M (2009) Understanding biophysicochemical interactions at the nano-bio interface. Nat Mater 8:543–557CrossRef Nel AE, Mädler L, Velegol D, Xia T, Hoek EMV, Somasundaran P, Klaessig F, Castranova V, Thompson M (2009) Understanding biophysicochemical interactions at the nano-bio interface. Nat Mater 8:543–557CrossRef
47.
go back to reference Vainrub A, Pettitt BM (2011) Accurate prediction of binding thermodynamics for DNA on surfaces. J Phys Chem B 115:13300–13303CrossRef Vainrub A, Pettitt BM (2011) Accurate prediction of binding thermodynamics for DNA on surfaces. J Phys Chem B 115:13300–13303CrossRef
48.
go back to reference Lindahl T, Nyberg B (1972) Rate of depurination of native deoxyribonucleic acid. Biochemistry 11:3610–3618CrossRef Lindahl T, Nyberg B (1972) Rate of depurination of native deoxyribonucleic acid. Biochemistry 11:3610–3618CrossRef
49.
go back to reference Schlapak R, Armitage D, Saucedo-Zeni N, Chrzanowski W, Hohage M, Caruana D, Howorka S (2009) Selective and tunable passivation of surfaces. Soft Matt 5:613–621CrossRef Schlapak R, Armitage D, Saucedo-Zeni N, Chrzanowski W, Hohage M, Caruana D, Howorka S (2009) Selective and tunable passivation of surfaces. Soft Matt 5:613–621CrossRef
50.
go back to reference Qamhieh K, Nylander T, Ainalem M-L (2009) Analytical model study of dendrimer/DNA complexes. Biomacromolecules 10:1720–1726CrossRef Qamhieh K, Nylander T, Ainalem M-L (2009) Analytical model study of dendrimer/DNA complexes. Biomacromolecules 10:1720–1726CrossRef
51.
go back to reference Xu W, Wang J-G, Jacobsen MF, Mura M, Yu M, Kelly REA, Meng Q-Q, Laegsgaard E, Stensgaard I, Linderoth TR, Kjems J, Kantorovich LN, Gothelf KV, Besenbacher F (2010) Supramolecular porous network formed by molecular recognition between chemically modified nucleobases guanine and cytosine. Angew Chemie 49(49):9373–9377CrossRef Xu W, Wang J-G, Jacobsen MF, Mura M, Yu M, Kelly REA, Meng Q-Q, Laegsgaard E, Stensgaard I, Linderoth TR, Kjems J, Kantorovich LN, Gothelf KV, Besenbacher F (2010) Supramolecular porous network formed by molecular recognition between chemically modified nucleobases guanine and cytosine. Angew Chemie 49(49):9373–9377CrossRef
52.
go back to reference Bald I, Wang Y, Dong M, Rosen CB, Ravnsbaek JB, Zhuang G, Gothelf KV, Wang J, Besenbacher F (2011) Control of self-assembled 2D nanostructures by methylation of guanine. Small 7:939–949CrossRef Bald I, Wang Y, Dong M, Rosen CB, Ravnsbaek JB, Zhuang G, Gothelf KV, Wang J, Besenbacher F (2011) Control of self-assembled 2D nanostructures by methylation of guanine. Small 7:939–949CrossRef
53.
go back to reference Qing G, Xiong H, Seela F, Sun T (2010) Spatially controlled DNA nanopatterns by ‘click’ chemistry using oligonucleotides with different anchoring sites. J Am Chem Soc 132:15228–15232CrossRef Qing G, Xiong H, Seela F, Sun T (2010) Spatially controlled DNA nanopatterns by ‘click’ chemistry using oligonucleotides with different anchoring sites. J Am Chem Soc 132:15228–15232CrossRef
54.
go back to reference Carneiro KMM, Aldaye FA, Sleiman HF (2010) Long-range assembly of DNA into nanofibers and highly ordered networks using a block copolymer approach. J Am Chem Soc 132:679–685CrossRef Carneiro KMM, Aldaye FA, Sleiman HF (2010) Long-range assembly of DNA into nanofibers and highly ordered networks using a block copolymer approach. J Am Chem Soc 132:679–685CrossRef
55.
go back to reference Ricoult SG, Thompson-Steckel G, Correia JP, Kennedy TE, Juncker D (2014) Tuning cell surface affinity to direct cell specific responses to patterned proteins. Biomaterials 35:727–736CrossRef Ricoult SG, Thompson-Steckel G, Correia JP, Kennedy TE, Juncker D (2014) Tuning cell surface affinity to direct cell specific responses to patterned proteins. Biomaterials 35:727–736CrossRef
56.
go back to reference Wang L, Liu L, Li X, Magome N, Agladze K, Chen Y (2013) Multi-electrode monitoring of guided excitation in patterned cardiomyocytes. Microelectron Eng 111:267–271CrossRef Wang L, Liu L, Li X, Magome N, Agladze K, Chen Y (2013) Multi-electrode monitoring of guided excitation in patterned cardiomyocytes. Microelectron Eng 111:267–271CrossRef
57.
go back to reference Meng F, Hlady V, Tresco PA (2012) Inducing alignment in astrocyte tissue constructs by surface ligands patterned on biomaterials. Biomaterials 33:1323–1335CrossRef Meng F, Hlady V, Tresco PA (2012) Inducing alignment in astrocyte tissue constructs by surface ligands patterned on biomaterials. Biomaterials 33:1323–1335CrossRef
58.
go back to reference Miller DC, Haberstroh KM, Webster TJ (2005) Mechanism(s) of increased vascular cell adhesion on nanostructured poly(lactic-co-glycolic acid) films. J Biomed Mater Res A 73:476–484CrossRef Miller DC, Haberstroh KM, Webster TJ (2005) Mechanism(s) of increased vascular cell adhesion on nanostructured poly(lactic-co-glycolic acid) films. J Biomed Mater Res A 73:476–484CrossRef
59.
go back to reference Cousins BG, Doherty PJ, Williams RL, Fink J, Garvey MJ (2004) The effect of silica nanoparticulate coatings on cellular response. J Mater Sci Mater Med 15:355–359CrossRef Cousins BG, Doherty PJ, Williams RL, Fink J, Garvey MJ (2004) The effect of silica nanoparticulate coatings on cellular response. J Mater Sci Mater Med 15:355–359CrossRef
60.
go back to reference Rice JM, Hunt JA, Gallagher JA, Hanarp P, Sutherland DS, Gold J (2003) Quantitative assessment of the response of primary derived human osteoblasts and macrophages to a range of nanotopography surfaces in a single culture model in vitro. Biomaterials 24:4799–4818CrossRef Rice JM, Hunt JA, Gallagher JA, Hanarp P, Sutherland DS, Gold J (2003) Quantitative assessment of the response of primary derived human osteoblasts and macrophages to a range of nanotopography surfaces in a single culture model in vitro. Biomaterials 24:4799–4818CrossRef
61.
go back to reference Fan YW, Cui FZ, Hou SP, Xu QY, Chen LN, Lee I-S (2002) Culture of neural cells on silicon wafers with nano-scale surface topograph. J Neurosci Methods 120:17–23CrossRef Fan YW, Cui FZ, Hou SP, Xu QY, Chen LN, Lee I-S (2002) Culture of neural cells on silicon wafers with nano-scale surface topograph. J Neurosci Methods 120:17–23CrossRef
62.
go back to reference Buttiglieri S, Pasqui D, Migliori M, Johnstone H, Affrossman S, Sereni L, Wratten ML, Barbucci R, Tetta C, Camussi G (2003) Endothelization and adherence of leucocytes to nanostructured surfaces. Biomaterials 24:2731–2738CrossRef Buttiglieri S, Pasqui D, Migliori M, Johnstone H, Affrossman S, Sereni L, Wratten ML, Barbucci R, Tetta C, Camussi G (2003) Endothelization and adherence of leucocytes to nanostructured surfaces. Biomaterials 24:2731–2738CrossRef
63.
go back to reference Curtis A, Wilkinson C (1997) Topographical control of cells. Biomaterials 18:1573–1583CrossRef Curtis A, Wilkinson C (1997) Topographical control of cells. Biomaterials 18:1573–1583CrossRef
64.
go back to reference den Braber ET, de Ruijter JE, Ginsel LA, von Recum AF, Jansen JA (1996) Quantitative analysis of fibroblast morphology on microgrooved surfaces with various groove and ridge dimensions. Biomaterials 17:2037–2044CrossRef den Braber ET, de Ruijter JE, Ginsel LA, von Recum AF, Jansen JA (1996) Quantitative analysis of fibroblast morphology on microgrooved surfaces with various groove and ridge dimensions. Biomaterials 17:2037–2044CrossRef
65.
go back to reference Dormann A, Meisner S, Verin N, Wenk Lang A (2004) Self-expanding metal stents for gastroduodenal malignancies: systematic review of their clinical effectiveness. Endoscopy 36:543–550CrossRef Dormann A, Meisner S, Verin N, Wenk Lang A (2004) Self-expanding metal stents for gastroduodenal malignancies: systematic review of their clinical effectiveness. Endoscopy 36:543–550CrossRef
66.
go back to reference Togawa O, Kawabe T, Isayama H, Nakai Y, Sasaki T, Arizumi T, Matsubara S, Ito Y, Yamamoto N, Sasahira N, Hirano K, Tsujino T, Toda N, Tada M, Yoshida H, Omata M (2008) Management of occluded uncovered metallic stents in patients with malignant distal biliary obstructions using covered metallic stents. J Clin Gastroenterol 42:546–549CrossRef Togawa O, Kawabe T, Isayama H, Nakai Y, Sasaki T, Arizumi T, Matsubara S, Ito Y, Yamamoto N, Sasahira N, Hirano K, Tsujino T, Toda N, Tada M, Yoshida H, Omata M (2008) Management of occluded uncovered metallic stents in patients with malignant distal biliary obstructions using covered metallic stents. J Clin Gastroenterol 42:546–549CrossRef
67.
go back to reference Refai AK, Textor M, Brunette DM, Waterfield JD (2004) Effect of titanium surface topography on macrophage activation and secretion of proinflammatory cytokines and chemokines. J Biomed Mater Res A 70:194–205CrossRef Refai AK, Textor M, Brunette DM, Waterfield JD (2004) Effect of titanium surface topography on macrophage activation and secretion of proinflammatory cytokines and chemokines. J Biomed Mater Res A 70:194–205CrossRef
68.
go back to reference Sun T, Tan H, Han D, Fu Q, Jiang L (2005) No platelet can adhere--largely improved blood compatibility on nanostructured superhydrophobic surfaces. Small 1:959–963CrossRef Sun T, Tan H, Han D, Fu Q, Jiang L (2005) No platelet can adhere--largely improved blood compatibility on nanostructured superhydrophobic surfaces. Small 1:959–963CrossRef
69.
go back to reference Choi C-H, Hagvall SH, Wu BM, Dunn JCY, Beygui RE, Kim C-JCJ (2007) Cell interaction with three-dimensional sharp-tip nanotopography. Biomaterials 28:1672–1679CrossRef Choi C-H, Hagvall SH, Wu BM, Dunn JCY, Beygui RE, Kim C-JCJ (2007) Cell interaction with three-dimensional sharp-tip nanotopography. Biomaterials 28:1672–1679CrossRef
70.
go back to reference Dalby MJ, Riehle MO, Sutherland DS, Agheli H, Curtis ASG (2005) Morphological and microarray analysis of human fibroblasts cultured on nanocolumns produced by colloidal lithography. Eur Cell Mater 9:1–8CrossRef Dalby MJ, Riehle MO, Sutherland DS, Agheli H, Curtis ASG (2005) Morphological and microarray analysis of human fibroblasts cultured on nanocolumns produced by colloidal lithography. Eur Cell Mater 9:1–8CrossRef
71.
go back to reference Lee J, Chu BH, Chen K-H, Ren F, Lele TP (2009) Randomly oriented, upright SiO2 coated nanorods for reduced adhesion of mammalian cells. Biomaterials 30:4488–4493CrossRef Lee J, Chu BH, Chen K-H, Ren F, Lele TP (2009) Randomly oriented, upright SiO2 coated nanorods for reduced adhesion of mammalian cells. Biomaterials 30:4488–4493CrossRef
72.
go back to reference Lovmand J, Justesen J, Foss M, Lauridsen RH, Lovmand M, Modin C, Besenbacher F, Pedersen FS, Duch M (2009) The use of combinatorial topographical libraries for the screening of enhanced osteogenic expression and mineralization. Biomaterials 30:2015–2022CrossRef Lovmand J, Justesen J, Foss M, Lauridsen RH, Lovmand M, Modin C, Besenbacher F, Pedersen FS, Duch M (2009) The use of combinatorial topographical libraries for the screening of enhanced osteogenic expression and mineralization. Biomaterials 30:2015–2022CrossRef
73.
go back to reference Riehle MO, Dalby MJ, Johnstone H, MacIntosh A, Affrossman S (2003) Cell behaviour of rat calvaria bone cells on surfaces with random nanometric features. Mater Sci Eng C 23:337–340CrossRef Riehle MO, Dalby MJ, Johnstone H, MacIntosh A, Affrossman S (2003) Cell behaviour of rat calvaria bone cells on surfaces with random nanometric features. Mater Sci Eng C 23:337–340CrossRef
74.
go back to reference Lim JY, Hansen JC, Siedlecki CA, Runt J, Donahue HJ (2005) Human foetal osteoblastic cell response to polymer-demixed nanotopographic interfaces. J R Soc Interface 2:97–108CrossRef Lim JY, Hansen JC, Siedlecki CA, Runt J, Donahue HJ (2005) Human foetal osteoblastic cell response to polymer-demixed nanotopographic interfaces. J R Soc Interface 2:97–108CrossRef
75.
go back to reference Yang J-Y, Ting Y-C, Lai J-Y, Liu H-L, Fang H-W, Tsai W-B (2009) Quantitative analysis of osteoblast-like cells (MG63) morphology on nanogrooved substrata with various groove and ridge dimensions. J Biomed Mater Res A 90:629–640CrossRef Yang J-Y, Ting Y-C, Lai J-Y, Liu H-L, Fang H-W, Tsai W-B (2009) Quantitative analysis of osteoblast-like cells (MG63) morphology on nanogrooved substrata with various groove and ridge dimensions. J Biomed Mater Res A 90:629–640CrossRef
76.
go back to reference Sjöström T, Dalby MJ, Hart A, Tare R, Oreffo ROC, Su B (2009) Fabrication of pillar-like titania nanostructures on titanium and their interactions with human skeletal stem cells. Acta Biomater 5:1433–14341CrossRef Sjöström T, Dalby MJ, Hart A, Tare R, Oreffo ROC, Su B (2009) Fabrication of pillar-like titania nanostructures on titanium and their interactions with human skeletal stem cells. Acta Biomater 5:1433–14341CrossRef
77.
go back to reference Park J, Bauer S, Schlegel KA, Neukam FW, von der Mark K, Schmuki P (2009) TiO2 nanotube surfaces: 15 nm--an optimal length scale of surface topography for cell adhesion and differentiation. Small 5:666–671CrossRef Park J, Bauer S, Schlegel KA, Neukam FW, von der Mark K, Schmuki P (2009) TiO2 nanotube surfaces: 15 nm--an optimal length scale of surface topography for cell adhesion and differentiation. Small 5:666–671CrossRef
78.
go back to reference Park JK, Kim Y-J, Yeom J, Jeon JH, Yi G-C, Je JH, Hahn SK (2010) The topographic effect of zinc oxide nanoflowers on osteoblast growth and osseointegration. Adv Mater 22:4857–4861CrossRef Park JK, Kim Y-J, Yeom J, Jeon JH, Yi G-C, Je JH, Hahn SK (2010) The topographic effect of zinc oxide nanoflowers on osteoblast growth and osseointegration. Adv Mater 22:4857–4861CrossRef
79.
go back to reference Ertorer E, Vasefi F, Keshwah J, Najiminaini M, Halfpap C, Langbein U, Carson JJL, Hamilton DW, Mittler S (2013) Large area periodic, systematically changing, multishape nanostructures by laser interference lithography and cell response to these topographies. J Biomed Opt 18:035002CrossRef Ertorer E, Vasefi F, Keshwah J, Najiminaini M, Halfpap C, Langbein U, Carson JJL, Hamilton DW, Mittler S (2013) Large area periodic, systematically changing, multishape nanostructures by laser interference lithography and cell response to these topographies. J Biomed Opt 18:035002CrossRef
80.
go back to reference Biggs MJP, Richards RG, Gadegaard N, Wilkinson CDW, Dalby MJ (2007) The effects of nanoscale pits on primary human osteoblast adhesion formation and cellular spreading. J Mater Sci Mater Med 18:399–404CrossRef Biggs MJP, Richards RG, Gadegaard N, Wilkinson CDW, Dalby MJ (2007) The effects of nanoscale pits on primary human osteoblast adhesion formation and cellular spreading. J Mater Sci Mater Med 18:399–404CrossRef
81.
go back to reference Dalby MJ, Gadegaard N, Riehle MO, Wilkinson CDW, Curtis ASG (2004) Investigating filopodia sensing using arrays of defined nano-pits down to 35 nm diameter in size. Int J Biochem Cell Biol 36:2005–2015CrossRef Dalby MJ, Gadegaard N, Riehle MO, Wilkinson CDW, Curtis ASG (2004) Investigating filopodia sensing using arrays of defined nano-pits down to 35 nm diameter in size. Int J Biochem Cell Biol 36:2005–2015CrossRef
82.
go back to reference Dalby MJ, Gadegaard N, Wilkinson CDW (2008) The response of fibroblasts to hexagonal nanotopography fabricated by electron beam lithography. J Biomed Mater Res A 84:973–979CrossRef Dalby MJ, Gadegaard N, Wilkinson CDW (2008) The response of fibroblasts to hexagonal nanotopography fabricated by electron beam lithography. J Biomed Mater Res A 84:973–979CrossRef
83.
go back to reference Dalby MJ, McCloy D, Robertson M, Agheli H, Sutherland D, Affrossman S, Oreffo ROC (2006) Osteoprogenitor response to semi-ordered and random nanotopographies. Biomaterials 27:2980–2987CrossRef Dalby MJ, McCloy D, Robertson M, Agheli H, Sutherland D, Affrossman S, Oreffo ROC (2006) Osteoprogenitor response to semi-ordered and random nanotopographies. Biomaterials 27:2980–2987CrossRef
84.
go back to reference Dalby MJ, Riehle MO, Johnstone HJH, Affrossman S, Curtis ASG (2003) Nonadhesive nanotopography: fibroblast response to poly(n –butyl methacrylate)– poly(styrene) demixed surface features. J Biomed Mater Res A 67:1025–1032CrossRef Dalby MJ, Riehle MO, Johnstone HJH, Affrossman S, Curtis ASG (2003) Nonadhesive nanotopography: fibroblast response to poly(n –butyl methacrylate)– poly(styrene) demixed surface features. J Biomed Mater Res A 67:1025–1032CrossRef
85.
go back to reference Alberts B, Johnson A, Lewis J et al (2002) Molecular biology of the cell, 4th edn. Garland Science, New York Alberts B, Johnson A, Lewis J et al (2002) Molecular biology of the cell, 4th edn. Garland Science, New York
86.
go back to reference Lord MS, Cousins BG, Doherty PJ, Whitelock JM, Simmons A, Williams RL, Milthorpe BK (2006) The effect of silica nanoparticulate coatings on serum protein adsorption and cellular response. Biomaterials 27:4856–4862CrossRef Lord MS, Cousins BG, Doherty PJ, Whitelock JM, Simmons A, Williams RL, Milthorpe BK (2006) The effect of silica nanoparticulate coatings on serum protein adsorption and cellular response. Biomaterials 27:4856–4862CrossRef
87.
go back to reference Hsu S-H, Tang C-M, Lin C-C (2004) Biocompatibility of poly(ɛ-caprolactone)/poly(ethylene glycol) diblock copolymers with nanophase separation. Biomaterials 25:5593–5601CrossRef Hsu S-H, Tang C-M, Lin C-C (2004) Biocompatibility of poly(ɛ-caprolactone)/poly(ethylene glycol) diblock copolymers with nanophase separation. Biomaterials 25:5593–5601CrossRef
88.
go back to reference Lord MS, Foss M, Besenbacher F (2010) Influence of nanoscale surface topography on protein adsorption and cellular response. Nano Today 5:66–78CrossRef Lord MS, Foss M, Besenbacher F (2010) Influence of nanoscale surface topography on protein adsorption and cellular response. Nano Today 5:66–78CrossRef
89.
go back to reference Teixeira AI, Abrams GA, Bertics PJ, Murphy CJ, Nealey PF (2003) Epithelial contact guidance on well-defined micro- and nanostructured substrates. J Cell Sci 116:1881–1892CrossRef Teixeira AI, Abrams GA, Bertics PJ, Murphy CJ, Nealey PF (2003) Epithelial contact guidance on well-defined micro- and nanostructured substrates. J Cell Sci 116:1881–1892CrossRef
91.
go back to reference Wójciak-Stothard B, Curtis A, Monaghan W, MacDonald K, Wilkinson C (1996) Guidance and activation of murine macrophages by nanometric scale topography. Exp Cell Res 223:426–435CrossRef Wójciak-Stothard B, Curtis A, Monaghan W, MacDonald K, Wilkinson C (1996) Guidance and activation of murine macrophages by nanometric scale topography. Exp Cell Res 223:426–435CrossRef
92.
go back to reference Aydin E, Planell JA, Hasirci V (2011) Hydroxyapatite nanorod-reinforced biodegradable poly(L-lactic acid) composites for bone plate applications. J Mater Sci 22:2413–2427 Aydin E, Planell JA, Hasirci V (2011) Hydroxyapatite nanorod-reinforced biodegradable poly(L-lactic acid) composites for bone plate applications. J Mater Sci 22:2413–2427
93.
go back to reference Hasirci V, Pepe-Mooney B (2012) Understanding the cell behavior on nano-/micro-patterned surfaces. Nanomedicine (Lond) 7(9):1375–1389CrossRef Hasirci V, Pepe-Mooney B (2012) Understanding the cell behavior on nano-/micro-patterned surfaces. Nanomedicine (Lond) 7(9):1375–1389CrossRef
94.
go back to reference Wang X, Wang Y-Y, Gu Z-Z, Huang N-P (2011) Fabrication of nanostructured polymeric films and their geometric effects on cell growth. In: 2011 4th International conference on biomedical engineering and informatics, pp. 1228–1231 Wang X, Wang Y-Y, Gu Z-Z, Huang N-P (2011) Fabrication of nanostructured polymeric films and their geometric effects on cell growth. In: 2011 4th International conference on biomedical engineering and informatics, pp. 1228–1231
95.
go back to reference McConnachie LA, Botta D, White CC, Weldy CS, Wilkerson HW, Yu J et al (2013) The Glutathione Synthesis Gene Gclm Modulates Amphiphilic Polymer-Coated CdSe/ZnS Quantum Dot–Induced Lung Inflammation in Mice. PLoS One 8(5):e64165CrossRef McConnachie LA, Botta D, White CC, Weldy CS, Wilkerson HW, Yu J et al (2013) The Glutathione Synthesis Gene Gclm Modulates Amphiphilic Polymer-Coated CdSe/ZnS Quantum Dot–Induced Lung Inflammation in Mice. PLoS One 8(5):e64165CrossRef
Metadata
Title
Nano- and Microarchitecture of Biomaterial Surfaces
Authors
Vasif Hasirci
Nesrin Hasirci
Copyright Year
2018
Publisher
Springer New York
DOI
https://doi.org/10.1007/978-1-4939-8856-3_19

Premium Partners