spider dragline silk
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2021 ◽  
pp. 127561
Author(s):  
Yu Zhang ◽  
Huigai Guo ◽  
Min Zhang ◽  
Yangang Ning ◽  
Zhihai Liu ◽  
...  

2021 ◽  
pp. 130895
Author(s):  
Min Zhang ◽  
Zhihai Liu ◽  
Yu Zhang ◽  
Yaxun Zhang ◽  
Xinghua Yang ◽  
...  

2021 ◽  
Author(s):  
Yu Zhang ◽  
xuhao ji ◽  
Zhihai Liu ◽  
Min Zhang ◽  
hongru song ◽  
...  

2021 ◽  
Vol 118 (31) ◽  
pp. e2107065118
Author(s):  
Nobuaki Kono ◽  
Hiroyuki Nakamura ◽  
Masaru Mori ◽  
Yuki Yoshida ◽  
Rintaro Ohtoshi ◽  
...  

Dragline silk of golden orb-weaver spiders (Nephilinae) is noted for its unsurpassed toughness, combining extraordinary extensibility and tensile strength, suggesting industrial application as a sustainable biopolymer material. To pinpoint the molecular composition of dragline silk and the roles of its constituents in achieving its mechanical properties, we report a multiomics approach, combining high-quality genome sequencing and assembly, silk gland transcriptomics, and dragline silk proteomics of four Nephilinae spiders. We observed the consistent presence of the MaSp3B spidroin unique to this subfamily as well as several nonspidroin SpiCE proteins. Artificial synthesis and the combination of these components in vitro showed that the multicomponent nature of dragline silk, including MaSp3B and SpiCE, along with MaSp1 and MaSp2, is essential to realize the mechanical properties of spider dragline silk.


2021 ◽  
Vol 893 ◽  
pp. 31-35
Author(s):  
Jin Lian Hu ◽  
Yuan Zhang Jiang ◽  
Lin Gu

Spiders silks have extraordinary strength and toughness simultaneously, thus has become dreamed materials by scientists and industries. Although there have been tremendous attempts to prepare fibers from genetically manufacture spider silk proteins, however, it has been still a huge challenge because of tedious procedure and high cost. Here, a facile spider-silk-mimicking strategy is reported for preparing highly scratchable polymers and supertough fibers from chemical synthesis route. Polymer films with high extensibility (>1200%) and supertough fibers (~387 MJ m-3) are achieved by introducing polypeptides with β-sheet and α-helical structure in polyureathane/urea polymers. Notabley,the toughness of the fiber is more than twice the reported value of a normal spider dragline silk, and comparable with the toughest spider silk, aciniform silk of Argiope trifasciata.


2021 ◽  
Author(s):  
Nobuaki Kono ◽  
Hiroyuki Nakamura ◽  
Masaru Mori ◽  
Yuki Yoshida ◽  
Rintaro Ohtoshi ◽  
...  

AbstractDragline silk of golden orb-weaver spiders (Nephilinae) is noted for its unsurpassed toughness, combining extraordinary extensibility and tensile strength, suggesting industrial application as a sustainable biopolymer material. To pinpoint the molecular composition of dragline silk and the roles of its constituents in achieving its mechanical properties, we report a multiomics approach combining high-quality genome sequencing and assembly, silk gland transcriptomics, and dragline silk proteomics of four Nephilinae spiders. We observed the consistent presence of the MaSp3B spidroin unique to this subfamily, as well as several non-spidroin SpiCE proteins. Artificial synthesis and combination of these components in vitro showed that the multicomponent nature of dragline silk, including MaSp3B and SpiCE, along with MaSp1 and MaSp2, is essential to realize the mechanical properties of spider dragline silk.


Author(s):  
Chandrayee Talukdar ◽  
Swastik Sastri

The important properties of spider dragline silk and other protein polymers will find many applications. We have demonstrated the production of spider silk, which has many important properties, are produced from the bacteria including Escherichia coli. The productions of high molecular weight spider drag line encoded by synthetic genes. Silk protein can be efficiently produced by the microbial system has become an advantageous method like quick secretion and simple product recovery has become an efficient method .From the observation of various experiments done by several scientists has shown silk made in laboratory. The study of RIKEN centre for sustainable resource science has shown that spider silk can be produce huge amount. Observation shown that joining of the fragments by split intein sequence  which then cut itself to yield full name protein .Spun into fibers make the microbial spider silk tough , stretchable and stronger. Better modification of bioengineering can increase the amount of production.


Author(s):  
Lizhong Dong ◽  
Jian Qiao ◽  
Yulong Wu ◽  
Ming Ren ◽  
Yulian Wang ◽  
...  

2021 ◽  
Author(s):  
Ada Amendola ◽  
Narinder Sigh ◽  
Cornelia Rodenburg ◽  
Chris Holland ◽  
Fernando Fraternali

2020 ◽  
Vol 21 (12) ◽  
pp. 5306-5314
Author(s):  
Linli Hu ◽  
Qianying Chen ◽  
Jinrong Yao ◽  
Zhengzhong Shao ◽  
Xin Chen

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