Gene family expansion and functional diversification of chitinase and chitin synthase genes in Atlantic salmon (Salmo salar)

被引:4
作者
Holen, Matilde Mengkrog [1 ]
Vaaje-Kolstad, Gustav [2 ]
Kent, Matthew Peter [1 ]
Sandve, Simen Rod [1 ]
机构
[1] Norwegian Univ Life Sci, Fac Biosci, Dept Anim & Aquacultural Sci, Sect Genome Biol, NO-1432 As, Norway
[2] Norwegian Univ Life Sci, Dept Chem Biotechnol & Food Sci IKBM, NO-1432 As, Norway
关键词
Atlantic salmon; chitin; evolution; comparative genomics; gene regulation; functional divergence; chitinase; chitin synthase; PERITROPHIC MATRIX FORMATION; TRANSCRIPTION FACTORS; GROWTH; EXPRESSION; PYROPHOSPHORYLASES; DIGESTIBILITY; DEACETYLATION; BIOSYNTHESIS; ALIGNMENT; SEQUENCE;
D O I
10.1093/g3journal/jkad069
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Chitin is one of the most abundant polysaccharides in nature, forming important structures in insects, crustaceans, and fungal cell walls. Vertebrates on the other hand are generally considered "nonchitinous" organisms, despite having highly conserved chitin metabolism-associated genes. Recent work has revealed that the largest group of vertebrates, the teleosts, have the potential to both synthesize and degrade endogenous chitin. Yet, little is known about the genes and proteins responsible for these dynamic processes. Here, we used comparative genomics, transcriptomics, and chromatin accessibility data to characterize the repertoire, evolution, and regulation of genes involved in chitin metabolism in teleosts, with a particular focus on Atlantic salmon. Reconstruction of gene family phylogenies provides evidence for an expansion of teleost and salmonid chitinase and chitin synthase genes after multiple whole-genome duplications. Analyses of multi-tissue gene expression data demonstrated a strong bias of gastrointestinal tract expression for chitin metabolism genes, but with different spatial and temporal tissue specificities. Finally, we integrated transcriptomes from a developmental time series of the gastrointestinal tract with chromatin accessibility data to identify putative transcription factors responsible for regulating chitin metabolism gene expression (CDX1 and CDX2) as well as tissue-specific divergence in the regulation of gene duplicates (FOXJ2). The findings presented here support the hypothesis that chitin metabolism genes in teleosts play a role in developing and maintaining a chitin-based barrier in the teleost gut and provide a basis for further investigations into the molecular basis of this barrier.
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页数:11
相关论文
共 80 条
[1]   HTSeq-a Python']Python framework to work with high-throughput sequencing data [J].
Anders, Simon ;
Pyl, Paul Theodor ;
Huber, Wolfgang .
BIOINFORMATICS, 2015, 31 (02) :166-169
[2]   PATHWAY OF CHITOSAN FORMATION IN MUCOR-ROUXII - ENZYMATIC DEACETYLATION OF CHITIN [J].
ARAKI, Y ;
ITO, E .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1974, 56 (03) :669-675
[3]   mummy/cystic encodes an enzyme required for chitin and glycan synthesis, involved in trachea, embryonic cuticle and CNS development -: Analysis of its role in Drosophila tracheal morphogenesis [J].
Araújo, SJ ;
Aslam, H ;
Tear, G ;
Casanova, J .
DEVELOPMENTAL BIOLOGY, 2005, 288 (01) :179-193
[4]   Bacterial chitin degradation-mechanisms and ecophysiological strategies [J].
Beier, Sara ;
Bertilsson, Stefan .
FRONTIERS IN MICROBIOLOGY, 2013, 4
[5]   The structural variation landscape in 492 Atlantic salmon genomes [J].
Bertolotti, Alicia C. ;
Layer, Ryan M. ;
Gundappa, Manu Kumar ;
Gallagher, Michael D. ;
Pehlivanoglu, Ege ;
Nome, Torfinn ;
Robledo, Diego ;
Kent, Matthew P. ;
Rosaeg, Line L. ;
Holen, Matilde M. ;
Mulugeta, Teshome D. ;
Ashton, Thomas J. ;
Hindar, Kjetil ;
Saegrov, Harald ;
Floro-Larsen, Bjorn ;
Erkinaro, Jaakko ;
Primmer, Craig R. ;
Bernatchez, Louis ;
Martin, Samuel A. M. ;
Johnston, Ian A. ;
Sandve, Simen R. ;
Lien, Sigbjorn ;
Macqueen, Daniel J. .
NATURE COMMUNICATIONS, 2020, 11 (01)
[6]   Identification of a novel acidic mammalian chitinase distinct from chitotriosidase [J].
Boot, RG ;
Blommaart, EFC ;
Swart, E ;
Ghauharali-van der Vlugt, K ;
Bijl, N ;
Moe, C ;
Place, A ;
Aerts, JMFG .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2001, 276 (09) :6770-6778
[7]  
BUDDINGTON RK, 1980, T AM FISH SOC, V109, P653, DOI 10.1577/1548-8659(1980)109<653:HOMAAR>2.0.CO
[8]  
2
[9]   Evolution of mammalian chitinase (-like) members of family 18 glycosyl hydrolases [J].
Bussink, Anton P. ;
Speijer, Dave ;
Aerts, Johannes M. R. G. ;
Boot, Rolf G. .
GENETICS, 2007, 177 (02) :959-970
[10]   Zebrafish cdx1b Regulates Differentiation of Various Intestinal Cell Lineages [J].
Chen, Yi-Hua ;
Lu, Yu-Fen ;
Ko, Ting-Yi ;
Tsai, Ming-Yuan ;
Lin, Che Yi ;
Lin, Chia-Chi ;
Hwang, Sheng-Ping L. .
DEVELOPMENTAL DYNAMICS, 2009, 238 (05) :1021-1032