Relating the structure of insect silk proteins to function
Abstract
Silks are extracorporeal fibrous protein materials. Classically,
silkworm (Bombyx mori) and orb-spiders (Arachnida: Araneidae)
have served as model organisms in which to investigate silk
protein structure-function relationships. However, silk
production has evolved multiple times in insects. The silk
proteins of many insects do not fold into the beta-sheet
structures found in silkworm and spider silks but into
coiled-coils, collagen helices or polyglycine helices. Therefore,
the structure-function relationships elucidated for silkworm and
spider silk proteins may be too narrow to apply to insect silk
proteins generally. To increase the available data, I examined
silk production by raspy crickets (Orthoptera: Gryllacrididae),
silverfish (order Thysanura), praying mantises (order Mantodea),
glow-worms (Diptera: Keroplatidae), and sawflies (Hymenoptera:
Tenthredinidae). Silk protein primary structures were
investigated using transcriptomics, mass spectrometry, and amino
acid analysis; secondary and tertiary structures were
investigated by infrared and Raman spectroscopy, nuclear magnetic
resonance, circular dichroism spectroscopy, and bioinformatics.
Novel features of silk production were related to idiosyncrasies
of each insect group, while features found in multiple
silk-producing groups were associated with general mechanisms of
silk production. A comparative analysis of silk proteins revealed
a correlation between predominant secondary structure type and
more general architectural features such as length and repeat
regularity: silk proteins that fold into coiled-coils and
collagen helices had low molecular weights and high repeat
regularity, suggesting they fold into short semi-rigid rods;
beta-sheet-forming silk proteins were found to be more variable
in molecular weight and have lower repeat regularity. Based on
these data, I propose three major mechanisms of silk fabrication
by insects: a) mesogenic ordering of short rod-like proteins, a
process for which the coiled-coil and collagen structures are
well-suited; b) molecular extension of long flexible protein
chains to promote intermolecular bonding, which is suitable for
the formation of beta-sheet-rich silks; and c) entanglement of
protein chains, which is suited to silks with a high degree of
disorder. Thus, many features of insect silk proteins are
adaptations for material fabrication. In a few cases, particular
structural motifs constituted adaptations conferring a mechanical
property required for the silk's function in the solid state.
However more often proteins were observed to have features
promoting dense protein packing in a general way. I explain these
data by consideration of how silk mechanical behaviour relates to
the fitness advantage conferred to individual insects by silk
production. Specifically, I suggest protein features ensuring
structural homogeneity and molecular orientation result in silk
materials with mechanical properties sufficient for most
purposes. Further increases in properties such as strength lead
to little or no fitness increase. Local maxima in the fitness
landscape associated with distinct protein secondary structures
or fabrication mechanisms trap silk proteins in one of several
states. Overall, silk protein evolution can to a large extent be
understood as convergence of a number of independently co-opted
proteins of other functions toward one of several distinct
functional archetypes.
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Keywords
silk, crystallite, liquid crystal, silk spinning, silk fabrication, silk gland, insect, raspy cricket, silverfish, praying mantis, ootheca, sawfly, glow-worm, Gryllacrididae, Thysanura, Zygentoma, Mantodea, Mantidae, Keroplatidae, Arachnocampa, beta-sheet, alpha-helix, collagen helix, random coil, cross-beta-sheet, recombinant expression, heterologous expression, biomimetics, comparative analysis, biomaterials, macromolecules, X-ray scattering, solid state NMR, circular dichroism, mass spectrometry, cDNA library, FTIR, Raman
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