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揭示蝗虫绿僵菌中含LIM结构域结合蛋白MaPtaB的功能。

Unveiling the functions of the Lim-domain binding protein MaPtaB in Metarhizium acridum.

作者信息

Du Yanru, Hu Meiwen, Xia Yuxian, Jin Kai

机构信息

Genetic Engineering Research Center, School of Life Sciences, Chongqing University, Chongqing, People's Republic of China.

Chongqing Engineering Research Center for Fungal Insecticide, Chongqing, People's Republic of China.

出版信息

Pest Manag Sci. 2025 Feb;81(2):839-855. doi: 10.1002/ps.8488. Epub 2024 Oct 29.

DOI:10.1002/ps.8488
PMID:39469952
Abstract

BACKGROUND

The Lim-domain binding protein PtaB, a homolog of Mfg1, governs conidiation and biofilm formation in several fungi. PtaB includes a conserved Lim-binding domain and two predicted nuclear localization sequences at its C terminus, and is co-regulated with the transcription factor Som1 downstream of the cyclic AMP-dependent protein kinase A (cAMP/PKA) pathway. However, the function of PtaB in entomopathogenic fungi remain poorly understood.

RESULTS

Inactivation of PtaB in Metarhizium acridum resulted in delayed conidial germination, reduced conidial yield and increased sensitivities to cell wall disruptors, ultraviolet B irradiation and heat shock. In addition, the fungal virulence was significantly decreased after deletion of MaPtaB because of impairments in appressorium formation, cuticle penetration and evasion of insect immune responses in M. acridum. The MaPtaB-deletion and MaSom1-deletion strains showed similar phenotypes supporting that MaSom1/MaPtaB complex controls M. acridum normal conidiation and pathogenic progress. Upon loss of MaPtaB or MaSom1, the fungal sporulation mode in M. acridium shifted from microcycle conidiation to normal conidiation on SYA, a microcycle conidiation medium. Transcriptional analysis showed that more differentially expression genes were identified in MaSom1 RNA sequencing, and MaSom1 and MaPtaB may regulate the expression of genes for conidiation, nutrient metabolism and the cell cycle to control conidiation pattern shift.

CONCLUSION

These data corroborate a complex control function for MaPtaB as an important central factor interacting with MaSom1 in the cAMP/PKA pathway, which links stress tolerance, conidiation and virulence in the entomopathogenic fungus M. acridum. © 2024 Society of Chemical Industry.

摘要

背景

含 LIM 结构域结合蛋白 PtaB 是 Mfg1 的同源物,在多种真菌中调控分生孢子形成和生物膜形成。PtaB 包含一个保守的 LIM 结合结构域及其 C 端的两个预测核定位序列,并且在环磷酸腺苷依赖性蛋白激酶 A(cAMP/PKA)途径下游与转录因子 Som1 共同调控。然而,PtaB 在昆虫病原真菌中的功能仍知之甚少。

结果

在绿僵菌中使 PtaB 失活导致分生孢子萌发延迟、分生孢子产量降低,并增加了对细胞壁破坏剂、紫外线 B 照射和热休克的敏感性。此外,由于绿僵菌中附着胞形成、角质层穿透和昆虫免疫反应逃避受损,缺失 MaPtaB 后真菌毒力显著降低。MaPtaB 缺失菌株和 MaSom1 缺失菌株表现出相似的表型,支持 MaSom1/MaPtaB 复合物控制绿僵菌正常分生孢子形成和致病进程。在缺失 MaPtaB 或 MaSom1 后,绿僵菌在微周期分生孢子形成培养基 SYA 上的孢子形成模式从微周期分生孢子形成转变为正常分生孢子形成。转录分析表明,在 MaSom1 RNA 测序中鉴定出更多差异表达基因,并且 MaSom1 和 MaPtaB 可能调控分生孢子形成、营养代谢和细胞周期相关基因的表达,以控制分生孢子形成模式转变。

结论

这些数据证实了 MaPtaB 作为 cAMP/PKA 途径中与 MaSom1 相互作用的重要核心因子具有复杂的调控功能,该途径将昆虫病原真菌绿僵菌的应激耐受性、分生孢子形成和毒力联系起来。© 2024 化学工业协会

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