Web spiders connect silk proteins, so-called spidroins, into fibers of extraordinary toughness. The spidroin N-terminal domain (NTD) plays a pivotal role in this process: it polymerizes spidroins through a complex mechanism of dimerization. Here we analyze sequences of spidroin NTDs and find an unusually high content of the amino acid methionine. We simultaneously mutate all methionines present in the hydrophobic core of a spidroin NTD from a nursery web spider’s dragline silk to leucine. The mutated NTD is strongly stabilized and folds at the theoretical speed limit. The structure of the mutant is preserved, yet its ability to dimerize is substantially impaired. We find that side chains of core methionines serve to mobilize the fold, which...
ABSTRACT: Spider dragline silk proteins, spidroins, have a tripartite composition; a nonrepetitive N...
Spider major ampullate (MA) silk, with its combination of strength and extensibility, outperforms an...
Proteins require an optimal balance of conformational flexibility and stability in their native envi...
Web spiders connect silk proteins, so-called spidroins, into fibers of extraordinary toughness. The ...
Conversion of spider silk proteins from soluble dope to insoluble fibers involves pH-dependent dimer...
Formation of spider silk from its constituent proteins-spidroins-involves changes from soluble helic...
The spidroin N-terminal domain (NT) is responsible for high solubility and pH-dependent assembly of ...
Web spiders synthesize silk fibers of unique strength and extensibility through the controlled self-...
The mechanisms controlling the conversion of spider silk proteins into insoluble fibres, which happe...
Web spiders synthesize silk fibres, nature’s toughest biomaterial, through the controlled assembly o...
Spider silks are protein-based fibers with remarkable mechanical qualities. Perhaps even more impre...
The N-terminal (NT) domain of spider silk proteins (spi-droins) is crucial for their storage at high...
The exceptional strength and extensibility of spider dragline silk have been thought to be facilitat...
The exceptional strength and extensibility of spider dragline silk have been thought to be facilitat...
A huge variety of proteins are able to form fibrillar structures, especially at high protein concent...
ABSTRACT: Spider dragline silk proteins, spidroins, have a tripartite composition; a nonrepetitive N...
Spider major ampullate (MA) silk, with its combination of strength and extensibility, outperforms an...
Proteins require an optimal balance of conformational flexibility and stability in their native envi...
Web spiders connect silk proteins, so-called spidroins, into fibers of extraordinary toughness. The ...
Conversion of spider silk proteins from soluble dope to insoluble fibers involves pH-dependent dimer...
Formation of spider silk from its constituent proteins-spidroins-involves changes from soluble helic...
The spidroin N-terminal domain (NT) is responsible for high solubility and pH-dependent assembly of ...
Web spiders synthesize silk fibers of unique strength and extensibility through the controlled self-...
The mechanisms controlling the conversion of spider silk proteins into insoluble fibres, which happe...
Web spiders synthesize silk fibres, nature’s toughest biomaterial, through the controlled assembly o...
Spider silks are protein-based fibers with remarkable mechanical qualities. Perhaps even more impre...
The N-terminal (NT) domain of spider silk proteins (spi-droins) is crucial for their storage at high...
The exceptional strength and extensibility of spider dragline silk have been thought to be facilitat...
The exceptional strength and extensibility of spider dragline silk have been thought to be facilitat...
A huge variety of proteins are able to form fibrillar structures, especially at high protein concent...
ABSTRACT: Spider dragline silk proteins, spidroins, have a tripartite composition; a nonrepetitive N...
Spider major ampullate (MA) silk, with its combination of strength and extensibility, outperforms an...
Proteins require an optimal balance of conformational flexibility and stability in their native envi...