Classification and Genome-Wide Analysis of Chitin-Binding Proteins Gene Family in Pepper (Capsicum annuum L.) and Transcriptional Regulation to Phytophthora capsici, Abiotic Stresses and Hormonal Applications

被引:31
作者
Ali, Muhammad [1 ]
Luo, De-Xu [2 ]
Khan, Abid [1 ]
ul Haq, Saeed [1 ]
Gai, Wen-Xian [1 ]
Zhang, Huai-Xia [1 ]
Cheng, Guo-Xin [1 ]
Muhammad, Izhar [3 ]
Gong, Zhen-Hui [1 ]
机构
[1] Northwest A&F Univ, Coll Hort, Yangling 712100, Shaanxi, Peoples R China
[2] Xuhuai Reg Huaiyin Inst Agr Sci, Huaian 223001, Peoples R China
[3] Northwest A&F Univ, Coll Life Sci, State Key Lab Crop Stress Biol Arid Areas, Yangling 712100, Shaanxi, Peoples R China
基金
中国国家自然科学基金;
关键词
chitin-binding protein; chitinase; pepper; expression; biotic stress; abiotic stress; CLASS-III CHITINASE; ABSCISIC-ACID; MOLECULAR CHARACTERIZATION; DIFFERENTIAL EXPRESSION; ENVIRONMENTAL-STRESSES; ENHANCED RESISTANCE; PATHOGEN INFECTION; PROVIDES INSIGHTS; METHYL JASMONATE; IDENTIFICATION;
D O I
10.3390/ijms19082216
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Chitin-binding proteins are pathogenesis-related gene family, which play a key role in the defense response of plants. However, thus far, little is known about the chitin-binding family genes in pepper (Capsicum annuum L.). In current study, 16 putative chitin genes (CaChi) were retrieved from the latest pepper genome database, and were classified into four distinct classes (I, III, IV and VI) based on their sequence structure and domain architectures. Furthermore, the structure of gene, genome location, gene duplication and phylogenetic relationship were examined to clarify a comprehensive background of the CaChi genes in pepper. The tissue-specific expression analysis of the CaChi showed the highest transcript levels in seed followed by stem, flower, leaf and root, whereas the lowest transcript levels were noted in red-fruit. Phytophthora capsici post inoculation, most of the CaChi (CaChiI3, CaChiIII1, CaChiIII2, CaChiIII4, CaChiIII6, CaChiIII7, CaChiIV1, CaChiVI1 and CaChiVI2) were induced by both strains (PC and HX-9). Under abiotic and exogenous hormonal treatments, the CaChiIII2, CaChiIII7, CaChiVI1 and CaChiVI2 were upregulated by abiotic stress, while CaChiI1, CaChiIII7, CaChiIV1 and CaChiIV2 responded to hormonal treatments. Furthermore, CaChiIV1-silenced plants display weakened defense by reducing (60%) root activity and increase susceptibility to NaCl stress. Gene ontology (GO) enrichment analysis revealed that CaChi genes primarily contribute in response to biotic, abiotic stresses and metabolic/catabolic process within the biological process category. These results exposed that CaChi genes are involved in defense response and signal transduction, suggesting their vital roles in growth regulation as well as response to stresses in pepper plant. In conclusion, these finding provide basic insights for functional validation of the CaChi genes in different biotic and abiotic stresses.
引用
收藏
页数:25
相关论文
共 94 条
[1]   PREPARATION AND PURIFICATION OF GLUCANASE AND CHITINASE FROM BEAN LEAVES [J].
ABELES, FB ;
BOSSHART, RP ;
FORRENCE, LE ;
HABIG, WH .
PLANT PHYSIOLOGY, 1971, 47 (01) :129-&
[2]   Molecular characterization of stress resistance-related chitinase genes of Brassica rapa [J].
Ahmed, Nasar Uddin ;
Park, Jong-In ;
Jung, Hee-Jeong ;
Kang, Kwon-Kyoo ;
Hur, Yoonkang ;
Lim, Yong-Pyo ;
Nou, Ill-Sup .
PLANT PHYSIOLOGY AND BIOCHEMISTRY, 2012, 58 :106-115
[3]   Identification and expression analysis of chitinase genes related to biotic stress resistance in Brassica [J].
Ahmed, Nasar Uddin ;
Park, Jong-In ;
Seo, Mi-Suk ;
Kumar, Thamilarasan Senthil ;
Lee, In-Ho ;
Park, Beom-Seok ;
Nou, Ill-Sup .
MOLECULAR BIOLOGY REPORTS, 2012, 39 (04) :3649-3657
[4]   Characterization and expression analysis of dirigent family genes related to stresses in Brassica [J].
Arasan, Senthil Kumar Thamil ;
Park, Jong-In ;
Ahmed, Nasar Uddin ;
Jung, Hee-Jeong ;
Hur, Yoonkang ;
Kang, Kwon-Kyoo ;
Lim, Yong-Pyo ;
Nou, Ill-Sup .
PLANT PHYSIOLOGY AND BIOCHEMISTRY, 2013, 67 :144-153
[5]   Genome-Wide Analysis and Differential Expression of Chitinases in Banana Against Root Lesion Nematode (Pratylenchus coffeae) and Eumusa Leaf Spot (Mycosphaerella eumusae) Pathogens [J].
Backiyarani, S. ;
Uma, S. ;
Nithya, S. ;
Chandrasekar, A. ;
Saraswathi, M. S. ;
Thangavelu, R. ;
Mayilvaganan, M. ;
Sundararaju, P. ;
Singh, N. K. .
APPLIED BIOCHEMISTRY AND BIOTECHNOLOGY, 2015, 175 (08) :3585-3598
[6]   Expression of endochitinase from Trichoderma harzianum in transgenic apple increases resistance to apple scab and reduces vigor [J].
Bolar, JP ;
Norelli, JL ;
Wong, KW ;
Hayes, CK ;
Harman, GE ;
Aldwinckle, HS .
PHYTOPATHOLOGY, 2000, 90 (01) :72-77
[7]   CHITINASE IN BEAN-LEAVES - INDUCTION BY ETHYLENE, PURIFICATION, PROPERTIES, AND POSSIBLE FUNCTION [J].
BOLLER, T ;
GEHRI, A ;
MAUCH, F ;
VOGELI, U .
PLANTA, 1983, 157 (01) :22-31
[8]   TRANSGENIC PLANTS WITH ENHANCED RESISTANCE TO THE FUNGAL PATHOGEN RHIZOCTONIA-SOLANI [J].
BROGLIE, K ;
CHET, I ;
HOLLIDAY, M ;
CRESSMAN, R ;
BIDDLE, P ;
KNOWLTON, S ;
MAUVAIS, CJ ;
BROGLIE, R .
SCIENCE, 1991, 254 (5035) :1194-1197
[9]   The roles of segmental and tandem gene duplication in the evolution of large gene families in Arabidopsis thaliana [J].
Cannon S.B. ;
Mitra A. ;
Baumgarten A. ;
Young N.D. ;
May G. .
BMC Plant Biology, 4 (1)
[10]   Silencing of dehydrin CaDHN1 diminishes tolerance to multiple abiotic stresses in Capsicum annuum L. [J].
Chen, Ru-gang ;
Jing, Hua ;
Guo, Wei-li ;
Wang, Shu-Bin ;
Ma, Fang ;
Pan, Bao-Gui ;
Gong, Zhen-Hui .
PLANT CELL REPORTS, 2015, 34 (12) :2189-2200