Literature DB >> 25616108

Overview of chitin metabolism enzymes in Manduca sexta: Identification, domain organization, phylogenetic analysis and gene expression.

Guillaume Tetreau1, Xiaolong Cao2, Yun-Ru Chen3, Subbaratnam Muthukrishnan4, Haobo Jiang2, Gary W Blissard3, Michael R Kanost4, Ping Wang5.   

Abstract

Chitin is one of the most abundant biomaterials in nature. The biosynthesis and degradation of chitin in insects are complex and dynamically regulated to cope with insect growth and development. Chitin metabolism in insects is known to involve numerous enzymes, including chitin synthases (synthesis of chitin), chitin deacetylases (modification of chitin by deacetylation) and chitinases (degradation of chitin by hydrolysis). In this study, we conducted a genome-wide search and analysis of genes encoding these chitin metabolism enzymes in Manduca sexta. Our analysis confirmed that only two chitin synthases are present in M. sexta as in most other arthropods. Eleven chitin deacetylases (encoded by nine genes) were identified, with at least one representative in each of the five phylogenetic groups that have been described for chitin deacetylases to date. Eleven genes encoding for family 18 chitinases (GH18) were found in the M. sexta genome. Based on the presence of conserved sequence motifs in the catalytic sequences and phylogenetic relationships, two of the M. sexta chitinases did not cluster with any of the current eight phylogenetic groups of chitinases: two new groups were created (groups IX and X) and their characteristics are described. The result of the analysis of the Lepidoptera-specific chitinase-h (group h) is consistent with its proposed bacterial origin. By analyzing chitinases from fourteen species that belong to seven different phylogenetic groups, we reveal that the chitinase genes appear to have evolved sequentially in the arthropod lineage to achieve the current high level of diversity observed in M. sexta. Based on the sequence conservation of the catalytic domains and on their developmental stage- and tissue-specific expression, we propose putative functions for each group in each category of enzymes.
Copyright © 2015 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Chitin deacetylases; Chitin synthases; Chitinases; Lepidoptera; Phylogenetic analysis; RNA-seq; Tobacco hornworm

Mesh:

Substances:

Year:  2015        PMID: 25616108     DOI: 10.1016/j.ibmb.2015.01.006

Source DB:  PubMed          Journal:  Insect Biochem Mol Biol        ISSN: 0965-1748            Impact factor:   4.714


  27 in total

1.  Insect Cuticular Chitin Contributes to Form and Function.

Authors:  Subbaratnam Muthukrishnan; Seulgi Mun; Mi Y Noh; Erika R Geisbrecht; Yasuyuki Arakane
Journal:  Curr Pharm Des       Date:  2020       Impact factor: 3.116

2.  Group I chitin deacetylases are essential for higher order organization of chitin fibers in beetle cuticle.

Authors:  Mi Young Noh; Subbaratnam Muthukrishnan; Karl J Kramer; Yasuyuki Arakane
Journal:  J Biol Chem       Date:  2018-03-22       Impact factor: 5.157

3.  Structure, Catalysis, and Inhibition of OfChi-h, the Lepidoptera-exclusive Insect Chitinase.

Authors:  Tian Liu; Lei Chen; Yong Zhou; Xi Jiang; Yanwei Duan; Qing Yang
Journal:  J Biol Chem       Date:  2017-01-04       Impact factor: 5.157

4.  Multifaceted biological insights from a draft genome sequence of the tobacco hornworm moth, Manduca sexta.

Authors:  Michael R Kanost; Estela L Arrese; Xiaolong Cao; Yun-Ru Chen; Sanjay Chellapilla; Marian R Goldsmith; Ewald Grosse-Wilde; David G Heckel; Nicolae Herndon; Haobo Jiang; Alexie Papanicolaou; Jiaxin Qu; Jose L Soulages; Heiko Vogel; James Walters; Robert M Waterhouse; Seung-Joon Ahn; Francisca C Almeida; Chunju An; Peshtewani Aqrawi; Anne Bretschneider; William B Bryant; Sascha Bucks; Hsu Chao; Germain Chevignon; Jayne M Christen; David F Clarke; Neal T Dittmer; Laura C F Ferguson; Spyridoula Garavelou; Karl H J Gordon; Ramesh T Gunaratna; Yi Han; Frank Hauser; Yan He; Hanna Heidel-Fischer; Ariana Hirsh; Yingxia Hu; Hongbo Jiang; Divya Kalra; Christian Klinner; Christopher König; Christie Kovar; Ashley R Kroll; Suyog S Kuwar; Sandy L Lee; Rüdiger Lehman; Kai Li; Zhaofei Li; Hanquan Liang; Shanna Lovelace; Zhiqiang Lu; Jennifer H Mansfield; Kyle J McCulloch; Tittu Mathew; Brian Morton; Donna M Muzny; David Neunemann; Fiona Ongeri; Yannick Pauchet; Ling-Ling Pu; Ioannis Pyrousis; Xiang-Jun Rao; Amanda Redding; Charles Roesel; Alejandro Sanchez-Gracia; Sarah Schaack; Aditi Shukla; Guillaume Tetreau; Yang Wang; Guang-Hua Xiong; Walther Traut; Tom K Walsh; Kim C Worley; Di Wu; Wenbi Wu; Yuan-Qing Wu; Xiufeng Zhang; Zhen Zou; Hannah Zucker; Adriana D Briscoe; Thorsten Burmester; Rollie J Clem; René Feyereisen; Cornelis J P Grimmelikhuijzen; Stavros J Hamodrakas; Bill S Hansson; Elisabeth Huguet; Lars S Jermiin; Que Lan; Herman K Lehman; Marce Lorenzen; Hans Merzendorfer; Ioannis Michalopoulos; David B Morton; Subbaratnam Muthukrishnan; John G Oakeshott; Will Palmer; Yoonseong Park; A Lorena Passarelli; Julio Rozas; Lawrence M Schwartz; Wendy Smith; Agnes Southgate; Andreas Vilcinskas; Richard Vogt; Ping Wang; John Werren; Xiao-Qiang Yu; Jing-Jiang Zhou; Susan J Brown; Steven E Scherer; Stephen Richards; Gary W Blissard
Journal:  Insect Biochem Mol Biol       Date:  2016-08-12       Impact factor: 4.714

5.  RNAi-Mediated Silencing of the Chitinase 5 Gene for Fall Webworm (Hyphantria cunea) Can Inhibit Larval Molting Depending on the Timing of dsRNA Injection.

Authors:  Xun Zhang; Yue Wang; Sufang Zhang; Xiangbo Kong; Fu Liu; Zhen Zhang
Journal:  Insects       Date:  2021-04-30       Impact factor: 2.769

6.  Analysis of chitin-binding proteins from Manduca sexta provides new insights into evolution of peritrophin A-type chitin-binding domains in insects.

Authors:  Guillaume Tetreau; Neal T Dittmer; Xiaolong Cao; Sinu Agrawal; Yun-Ru Chen; Subbaratnam Muthukrishnan; Jiang Haobo; Gary W Blissard; Michael R Kanost; Ping Wang
Journal:  Insect Biochem Mol Biol       Date:  2014-12-15       Impact factor: 4.421

7.  RNA interference of chitin synthase genes inhibits chitin biosynthesis and affects larval performance in Leptinotarsa decemlineata (Say).

Authors:  Ji-Feng Shi; Li-Li Mu; Xu Chen; Wen-Chao Guo; Guo-Qing Li
Journal:  Int J Biol Sci       Date:  2016-10-25       Impact factor: 6.580

8.  An analysis of 67 RNA-seq datasets from various tissues at different stages of a model insect, Manduca sexta.

Authors:  Xiaolong Cao; Haobo Jiang
Journal:  BMC Genomics       Date:  2017-10-17       Impact factor: 3.969

9.  Human Chitotriosidase: Catalytic Domain or Carbohydrate Binding Module, Who's Leading HCHT's Biological Function.

Authors:  Oscar Crasson; Gaston Courtade; Raphaël R Léonard; Finn Lillelund Aachmann; François Legrand; Raffaella Parente; Denis Baurain; Moreno Galleni; Morten Sørlie; Marylène Vandevenne
Journal:  Sci Rep       Date:  2017-06-05       Impact factor: 4.379

Review 10.  Can Plant Lectins Help to Elucidate Insect Lectin-Mediated Immune Response?

Authors:  Pengyu Chen; Kristof De Schutter; Els J M Van Damme; Guy Smagghe
Journal:  Insects       Date:  2021-05-27       Impact factor: 2.769

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