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Journal Abstract Search


225 related items for PubMed ID: 32973264

  • 1. Spidroin profiling of cribellate spiders provides insight into the evolution of spider prey capture strategies.
    Kono N, Nakamura H, Mori M, Tomita M, Arakawa K.
    Sci Rep; 2020 Sep 24; 10(1):15721. PubMed ID: 32973264
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  • 12. Changes in the material properties of spider glue droplet proteins accompanied shifts in prey capture biomechanics as cobweb spiders diverged from their orb weaving ancestors.
    Opell BD, Kelly SD, Morris SA, Correa-Garhwal SM.
    Acta Biomater; 2024 Jul 15; 183():191-200. PubMed ID: 38838907
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  • 13. A proteotranscriptomic study of silk-producing glands from the orb-weaving spiders.
    Dos Santos-Pinto JRA, Esteves FG, Sialana FJ, Ferro M, Smidak R, Rares LC, Nussbaumer T, Rattei T, Bilban M, Bacci Júnior M, Palma MS, Lübec G.
    Mol Omics; 2019 Aug 05; 15(4):256-270. PubMed ID: 31268449
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  • 14. Intragenic homogenization and multiple copies of prey-wrapping silk genes in Argiope garden spiders.
    Chaw RC, Zhao Y, Wei J, Ayoub NA, Allen R, Atrushi K, Hayashi CY.
    BMC Evol Biol; 2014 Feb 20; 14():31. PubMed ID: 24552485
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  • 18. Direct solvation of glycoproteins by salts in spider silk glues enhances adhesion and helps to explain the evolution of modern spider orb webs.
    Sahni V, Miyoshi T, Chen K, Jain D, Blamires SJ, Blackledge TA, Dhinojwala A.
    Biomacromolecules; 2014 Apr 14; 15(4):1225-32. PubMed ID: 24588057
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  • 20. Systematics, phylogeny, and evolution of orb-weaving spiders.
    Hormiga G, Griswold CE.
    Annu Rev Entomol; 2014 Apr 14; 59():487-512. PubMed ID: 24160416
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