Archive/CRISPR/Cas9-Mediated Editing of Late Blight-Responsive miRNA Reveals Its Regulatory Role in Tomato Resistance to Phytophthora Infestans
CRISPR/Cas9-Mediated Editing of Late Blight-Responsive miRNA Reveals Its Regulatory Role in Tomato Resistance to Phytophthora Infestans
Chengyao Jiang, Yu Song, Zixi Liu et al.
31 de julho de 2026
en

Abstract

MicroRNAs play crucial roles in plant growth, development, and disease resistance. Transcriptome screening previously identified three late blight-responsive miRNAs (sly-miR172a, sly-miR156e, and sly-miR395a) in tomato whose biological functions remain uncharacterized. Here, CRISPR/Cas9 editing vectors targeting each miRNA were transformed into the tomato cultivar ‘Micro-Tom’. sly-miR395a showed the highest T0 editing efficiency (77.78%), followed by sly-miR172a (48.00%) and sly-miR156e (40.74%). T1 segregation ratios were approximately 1:12.3, 1:1.83, and 1:13 for the three targets. Stable T2 homozygous lines were obtained, and qRT-PCR confirmed average mature miRNA inhibition rates of 78.00%, 79.50%, and 87.50%. To assess editing specificity, genome-wide off-target prediction and Sanger sequencing of top high-risk loci were performed; no unintended indels were detected, confirming sgRNA specificity. Agronomic phenotyping revealed divergent developmental phenotypes: sly-miR172a knockout caused dwarfism, leaf senescence and reduced flower number; sly-miR156e mutants exhibited taller plants and increased floral production; sly-miR395a mutants had normal vegetative growth but fewer flowers. Resistance assays demonstrated distinct responses to Phytophthora infestans. Loss of sly-miR172a increased pathogen biomass by 1.6–2.3-fold and aggravated susceptibility, likely by de-repressing AP2/TOE to disrupt oxidative homeostasis. In contrast, both sly-miR156e and sly-miR395a negatively regulate late blight resistance. This could be because sly-miR156e knockout relieved the repression of SPL transcription factors, significantly restricting pathogen proliferation and lesion formation, and notably broke the canonical plant growth–defense trade-off to achieve simultaneous improvement of agronomic traits and disease resistance. sly-miR395a knockout enhanced tomato immunity potentially by activating sulfur metabolism-related pathways to accumulate defensive metabolites, with negligible adverse effects on vegetative growth. Nevertheless, this study has several limitations: the proposed regulatory cascades, including miRNA–AP2, miRNA–SPL, and miRNA–sulfur metabolism modules remain hypothetical without direct molecular validation of target interactions. Collectively, this study genetically validates that sly-miR172a, sly-miR156e, and sly-miR395a exert divergent functions in regulating tomato growth and immunity against late blight, providing valuable germplasm and gene resources for tomato disease-resistance breeding.

IPC Classification

A01

Keywords

crisprcas9-mediatededitinglateblight-responsivemirnarevealsregulatoryroletomatoresistancephytophthorainfestansagriculturemicrornasplaycrucialrolesplantgrowthdevelopmentdiseasetranscriptomescreening
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