Fusariumoxysporum f. sp. cubense race 4 (Foc 4) causes Fusarium wilt by penetrating root cell walls, yet the molecular basis of cell wall-mediated resistance remains poorly understood. Here, we investigated the transcriptional, enzymatic, and cellular responses of the resistant banana cultivar Dongjiao No. 1 (DJ) and its susceptible mutant ke2 following Foc 4 infection. RNA sequencing revealed that DJ specifically upregulated a pectin degradation cassette comprising pectin methylesterase (PME3-Like), pectin acetylesterase (PAE1), and polygalacturonases (PG1, PG3, PG5, PG-Like-4) at the bud seedling stage. Immunolocalization further revealed robust, tissue-specific PME deployment, with stable abundance at the primary infection site and differential redistribution in aerial tissues. This enzymatic cascade degraded homogalacturonan, confirmed by the simultaneous loss of pectin epitopes recognized by JIM5 and JIM7 antibodies. Additionally, the upregulation of PTI1, MAPK cascades, calcium-dependent protein kinases (CDPK3, CML31), and respiratory burst oxidase homologs (RBOHs) was also observed in DJ. The differential transcription of salicylic acid signaling (TGA1–PR1), jasmonic acid derepression (TIFY/JAZ), and flavonoid phytoalexin biosynthesis in DJ further reinforced the defense response. In contrast, ke2 failed to activate the pectin degradation machinery, exhibited attenuated immune signaling, and retained intact pectin vulnerable to pathogen exploitation. These findings establish pectin degradation-mediated immunity as a resistance mechanism in banana and provide potential targets for Fusarium wilt resistance breeding.
Rahat Sharif, Yanqing Xing, Huimin Song et al.· Current Issues in Molecular...· 0 citations
The TIFY gene family comprises plant-specific transcriptional regulators central to jasmonic acid (JA) signaling and responses to biotic and abiotic stresses. Despite the economic importance of the banana (Musa spp.), the TIFY family remains largely uncharacterized in this crop. Here, we conducted a genome-wide identification and comprehensive analysis of the MaTIFY gene family in Musa acuminata. A total of 47 MaTIFY genes were identified, distributed across all 11 chromosomes. Phylogenetic analysis classified these into four subfamilies (TIFY, ZIZ/ZML, PPD, and JAZ), and conserved motif and domain analyses revealed a core TIFY domain architecture with subfamily-specific structural features. Gene Ontology (GO) enrichment and cis-acting regulatory element analyses suggested potential involvement in JA-mediated signaling, defense response, and hormone cross-talk. Expression profiling under drought, Fusarium oxysporum f. sp. cubense race 4 (Foc 4), and cold stress revealed distinct transcriptional responses, with MaTIFY5, MaTIFY16, MaTIFY20, MaTIFY26, and MaTIFY30 exhibiting enhanced induction in resistant cultivars compared to their susceptible counterparts. Functional characterization of MaTIFY20 confirmed its significant upregulation under drought stress and its ability to confer enhanced osmotic tolerance when heterologously expressed in yeast. These findings provide novel insights into the evolutionary dynamics and stress-responsive functions of banana TIFY genes and identify candidate targets for molecular breeding to improve abiotic and biotic stress resilience in banana.
Sheraz Ahmad, Huimin Song, Hangbo Cao et al.· International Journal of Mol...· 0 citations