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The Beta-1, 4-N-acetylglucosaminidase 1 gene, Selected by Domestication and Breeding, is Involved in Cocoon Construction of Bombyx Mori

Overview
Journal PLoS Genet
Specialty Genetics
Date 2020 Jul 16
PMID 32667927
Citations 4
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Abstract

Holometabolous insects have distinct larval, pupal, and adult stages. The pupal stage is typically immobile and can be subject to predation, but cocoon offers pupal protection for many insect species. The cocoon provides a space in which the pupa to adult metamorphosis occurs. It also protects the pupa from weather, predators and parasitoids. Silk protein is a precursor of the silk used in cocoon construction. We used the silkworm as a model species to identify genes affecting silk protein synthesis and cocoon construction. We used quantitative genetic analysis to demonstrate that β-1,4-N-acetylglucosaminidase 1 (BmGlcNase1) is associated with synthesis of sericin, the main composite of cocoon. BmGlcNase1 has an expression pattern coupled with silk gland development and cocoon shell weight (CSW) variation, and CSW is an index of the ability to synthesize silk protein. Up-regulated expression of BmGlcNase1 increased sericin content by 13.9% and 22.5% while down-regulation reduced sericin content by 41.2% and 27.3% in the cocoons of females and males, respectively. Genomic sequencing revealed that sequence variation upstream of the BmGlcNase1 transcriptional start site (TSS) is associated with the expression of BmGlcNase1 and CSW. Selective pressure analysis showed that GlcNase1 was differentially selected in insects with and without cocoons (ω1 = 0.044 vs. ω2 = 0.154). This indicates that this gene has a conserved function in the cocooning process of insects. BmGlcNase1 appears to be involved in sericin synthesis and silkworm cocooning.

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References
1.
Andersson M, Johansson J, Rising A . Silk Spinning in Silkworms and Spiders. Int J Mol Sci. 2016; 17(8). PMC: 5000687. DOI: 10.3390/ijms17081290. View

2.
Rozas J, Ferrer-Mata A, Sanchez-DelBarrio J, Guirao-Rico S, Librado P, Ramos-Onsins S . DnaSP 6: DNA Sequence Polymorphism Analysis of Large Data Sets. Mol Biol Evol. 2017; 34(12):3299-3302. DOI: 10.1093/molbev/msx248. View

3.
Darvasi A, Soller M . Selective genotyping for determination of linkage between a marker locus and a quantitative trait locus. Theor Appl Genet. 2013; 85(2-3):353-9. DOI: 10.1007/BF00222881. View

4.
Takahashi N, Yamamoto E, Ino K, Miyoshi E, Nagasaka T, Kajiyama H . High expression of N-acetylglucosaminyltransferase V in mucinous tumors of the ovary. Oncol Rep. 2009; 22(5):1027-32. DOI: 10.3892/or_00000531. View

5.
Love D, Hanover J . The hexosamine signaling pathway: deciphering the "O-GlcNAc code". Sci STKE. 2005; 2005(312):re13. DOI: 10.1126/stke.3122005re13. View