Novel nanocomposites from spider silk-silica fusion (chimeric) proteins

被引:136
作者
Foo, Cheryl Wong Po
Patwardhan, Siddharth V.
Belton, David J.
Kitchel, Brandon
Anastasiades, Daphne
Huang, Jia
Naik, Rajesh R.
Perry, Carole C.
Kaplan, David L.
机构
[1] Nottingham Trent Univ, Sch Biomed & Nat Sci, Interdisciplinary Biomed Res Ctr, Biomol & Mat Interface Res Grp, Nottingham NG11 8NS, England
[2] Tufts Univ, Dept Biomed Engn, Medford, MA 02155 USA
[3] Tufts Univ, Dept Chem, Medford, MA 02155 USA
[4] Tufts Univ, Dept Biol & Chem Engn, Bioengn & Biotechnol Ctr, Medford, MA 02155 USA
[5] USAF, Res Lab, Mat & Mfg Directorate, Wright Patterson AFB, OH 45433 USA
关键词
biomaterials; nanostructures; silaffin; biomineralization; ceramics;
D O I
10.1073/pnas.0601096103
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Silica skeletal architectures in diatoms are characterized by remarkable morphological and nanostructural details. Silk proteins from spiders and silkworms form strong and intricate self-assembling fibrous biomaterials in nature. We combined the features of silk with biosilica through the design, synthesis, and characterization of a novel family of chimeric proteins for subsequent use in model materials forming reactions. The domains from the major ampullate spidroin 1 (MaSp1) protein of Nephila clavipes spider dragline silk provide control over structural and morphological details because it can be self-assembled through diverse processing methods including film casting and fiber electrospinning. Biosilica nanostructures in diatoms are formed in aqueous ambient conditions at neutral pH and low temperatures. The R5 peptide derived from the silaffin protein of Cylindrotheca fusiformis induces and regulates silica precipitation in the chimeric protein designs under similar ambient conditions. Whereas mineralization reactions performed in the presence of R5 peptide alone form silica particles with a size distribution of 0.5-10 mu m in diameter, reactions performed in the presence of the new fusion proteins generate nanocomposite materials containing silica particles with a narrower size distribution of 0.5-2 mu m in diameter. Furthermore, we demonstrate that composite morphology and structure could be regulated by controlling processing conditions to produce films and fibers. These results suggest that the chimeric protein provides new options for processing and control over silica particle sizes, important benefits for biomedical and specialty materials, particularly in light of the all aqueous processing and the nanocomposite features of these new materials.
引用
收藏
页码:9428 / 9433
页数:6
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