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Genome-Wide Identification and Expression Analysis of HMG Family Genes in Botrytis cinerea
Scientia Agricultura Sinica 2025, 58(4): 704-718
Published: 16 February 2025
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【Objective】

High mobility group protein (HMG), as a widespread eukaryotic protein, plays an important role in the regulation of fungal growth and development. This study aims to identify the HMG family members of Botrytis cinerea through the genome-wide identification, and analyze their expression rules during the growth and development, infection and response to stress, so as to lay a foundation for further investigation of the function of this family gene in the growth and development and pathogenic mechanism of B. cinerea.

【Method】

HMMER software was used to screen out possible HMG gene IDs in B. cinerea protein database, and the online tools Pfam and SMART were used to verify the possible HMG family members. Using ProtParam, TBtools, MEME, MEGA, MCScanX and other tools, the physicochemical characteristics, chromosome localization, gene structure, phylogenetic tree and collinearity of B. cinerea HMG gene family members were analyzed. Based on transcriptome sequencing data of B. cinerea during conidial development and infection, the expression of HMG family genes in B. cinerea during conidial development and infection was analyzed by using TBtools software. In addition, the expression of HMG family genes in B. cinerea under NaCl, KCl, H2O2 and other stresses was observed by real-time quantitative PCR (qPCR).

【Result】

Nine HMG family members were identified in B. cinerea, the number of encoded amino acids ranged from 101 to 1076, and the molecular weight ranged from 11.48 to 120.64 kDa. They could be divided into HMGA and HMGB subfamilies, which had conserved HMG domain, distributed on six chromosomes, and had gene collinearity with Fusarium graminearum and Fusarium oxysporum. The expression pattern analysis showed that the expression levels of this family gene showed obvious changes during conidial development and B. cinerea infection. Among them, Bcin01g08840, Bcin07g04610, Bcin11g04340 and Bcin11g03320 continued to be highly expressed during conidial development. The expression levels of Bcin07g04610, Bcin11g04340, Bcin11g05790 and Bcin01g08840 were significantly down-regulated during B. cinerea infection. qPCR analysis showed that the gene expression of this family was significantly down-regulated after NaCl and KCl stress treatment.

【Conclusion】

B. cinerea contains nine HMG family members, which can be divided into HMGA and HMGB subfamilies, the members distribute on six chromosomes, and have different expression patterns in the process of conidial development, infection and stress response of the pathogen. It is speculated that the family genes play an important role in the growth and development, pathogenicity and stress response of B. cinerea.

Open Access Research Article Issue
ZmMYC7 directly regulates ZmERF147 to increase maize resistance to Fusarium graminearum
The Crop Journal 2023, 11(1): 79-88
Published: 18 June 2022
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The jasmonic acid (JA) signaling pathway is involved in plant growth, development, and response to abiotic or biotic stresses. MYC2, a bHLH transcription factor, is a regulatory hub in the pathway. The function of ZmMYC7, a putative MYC2 ortholog, in jasmonate-signaled defense responses of maize has not been reported. In this study, we found that ZmMYC7 possesses JID, TAD, bHLH and Zip domains and essential characteristics of transcription factors: a nuclear location and transactivation activity. The ZmMYC7 mutants showed markedly increased sensitivity to Fusarium graminearum and Setosphaeria turcica. The expression levels of the defense-associated genes ZmPR1, ZmPR2, ZmPR3, ZmPR5, ZmPR6, and ZmPR7 in response to F. graminearum infection were downregulated in ZmMYC7 mutants, while ZmPR4 and ZmPR10 were up-regulated. ZmMYC7 interacted with members of the ZmJAZ family, including ZmJAZ8, ZmJAZ11, and ZmJAZ12. ZmMYC7 physically interacted with G-box cis-elements in the ZmERF147 promoter in vitro and transcriptional activation of ZmERF147 by ZmMYC7 was inhibited by ZmJAZ11 and ZmJAZ12. ZmERF147 mutants were more susceptible to F. graminearum infection than inbred line B73 with concomitant down-regulation of all defense-associated ZmPRs except ZmPR4. These findings indicate that ZmMYC7 functions in maize resistance to F. graminearum and sheds light on maize defense responses to pathogenic fungi via the JA signaling pathway.

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