Nanopatterns with biological functions

被引:82
作者
Blattler, Thomas
Huwiler, Christoph
Ochsner, Mirjam
Staedler, Brigitte
Solak, Harun
Voeroes, Janos
Grandin, H. Michelle [1 ]
机构
[1] ETH, Dept Mat, BioInterface Grp, Lab Surface Sci & Technol, Zurich, Switzerland
[2] Paul Scherrer Inst, Lab Micro & Nanotechnol, Villigen, Switzerland
关键词
nanopatterns; biological functions; lithography;
D O I
10.1166/jnn.2006.501
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Both curiosity and a desire for efficiency have advanced our ability to manipulate materials with great precision on the micrometer and, more recently, on the nanometer scale. Certainly, the semiconductor and integrated circuit industry has put the pressure on scientist and engineers to develop better and faster nanofabrication techniques. Furthermore, our curiosity as to how life works, and how it can be improved from a medical perspective, stands to gain a great deal from advances in nanotechnology. Novel nanofabrication techniques are opening up the possibilities for mimicking the inherently nano-world of the cell, i.e., the nanotopographies of the extracellular matrix (ECM) and the nanochemistry presented on both the cell membrane and the ECM. In addition, biosensing applications that rely on fabrication of high-density, precision arrays, e.g., DNA or gene chips and protein arrays, will gain significantly in efficiency and, thus, in usefulness once it becomes possible to fabricate heterogeneous nanoarrays. Clearly, continued advances in nanotechnology are desired and required for advances in biotechnology. In this review, we describe the leading techniques for generating nanopatterns with biological function including parallel techniques such as extreme ultraviolet interference lithography (EUV-IL), soft-lithographic techniques (e.g., replica molding (RM) and microcontact printing (mu CP)), nanoimprint lithography (NIL), nanosphere lithography (NSL) (e.g., colloid lithography or colloidal block-copolymer micelle lithography) and the nanostencil technique, in addition to direct-writing techniques including e-bearn lithography (EBL), focused ion-beam lithography (FIBL) and dip-pen nanolithography (DPN). Details on how the patterns are generated, how biological function is imparted to the nanopatterns, and examples of how these surfaces can and are being used for biological applications will be presented. This review further illustrates the rapid pace by which advances are being made in the field of nanobiotechnology, owing to an increasing number of research endeavors, for an ever increasing number of applications.
引用
收藏
页码:2237 / 2264
页数:28
相关论文
共 280 条
[1]   Immobilization of histidine-tagged proteins on nickel by electrochemical dip pen nanolithography [J].
Agarwal, G ;
Naik, RR ;
Stone, MO .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2003, 125 (24) :7408-7412
[2]   Dip-pen nanolithography in tapping mode [J].
Agarwal, G ;
Sowards, LA ;
Naik, RR ;
Stone, MO .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2003, 125 (02) :580-583
[3]   Block copolymer-templated chemistry on Si, Ge, InP, and GaAs surfaces [J].
Aizawa, M ;
Buriak, JM .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2005, 127 (25) :8932-8933
[4]   PREVENTION OF PROTEIN ADSORPTION AND PLATELET-ADHESION ON SURFACES BY PEO PPO PEO TRIBLOCK COPOLYMERS [J].
AMIJI, M ;
PARK, K .
BIOMATERIALS, 1992, 13 (10) :682-692
[5]   Patterning surfaces using tip-directed displacement and self-assembly [J].
Amro, NA ;
Xu, S ;
Liu, GY .
LANGMUIR, 2000, 16 (07) :3006-3009
[6]   Nanoscale features influence epithelial cell morphology and cytokine production [J].
Andersson, AS ;
Bäckhed, F ;
von Euler, A ;
Richter-Dahlfors, A ;
Sutherland, D ;
Kasemo, B .
BIOMATERIALS, 2003, 24 (20) :3427-3436
[7]   Self-assembly of a two-dimensional superlattice of molecularly linked metal clusters [J].
Andres, RP ;
Bielefeld, JD ;
Henderson, JI ;
Janes, DB ;
Kolagunta, VR ;
Kubiak, CP ;
Mahoney, WJ ;
Osifchin, RG .
SCIENCE, 1996, 273 (5282) :1690-1693
[8]   Activation of integrin function by nanopatterned adhesive interfaces [J].
Arnold, M ;
Cavalcanti-Adam, EA ;
Glass, R ;
Blümmel, J ;
Eck, W ;
Kantlehner, M ;
Kessler, H ;
Spatz, JP .
CHEMPHYSCHEM, 2004, 5 (03) :383-388
[9]   Micro and nano-structured surfaces [J].
Barbucci, R ;
Pasqui, D ;
Wirsen, A ;
Affrossman, S ;
Curtis, A ;
Tetta, C .
JOURNAL OF MATERIALS SCIENCE-MATERIALS IN MEDICINE, 2003, 14 (08) :721-725
[10]   P(AAm-co-EG) interpenetrating polymer networks grafted to oxide surfaces: Surface characterization, protein adsorption, and cell detachment studies [J].
Bearinger, JP ;
Castner, DG ;
Golledge, SL ;
Rezania, A ;
Hubchak, S ;
Healy, KE .
LANGMUIR, 1997, 13 (19) :5175-5183