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Multi-locus allelic architecture underlying natural variation in leaf rolling in japonica rice.

Leaf rolling is a key component of rice canopy architecture that affects light interception, microclimate formation, and planting density. The contribution of naturally occurring allelic variation to quantitative variation in leaf rolling within cultivated rice remains poorly understood, while extreme leaf rolling caused by loss-of-function mutations often results in detrimental pleiotropic effects. Herein, we examined how multi-locus allelic variation contributes to natural variation in leaf rolling within japonica rice. Leaf rolling was quantified based on the leaf rolling index (LRI) using a panel of 201 japonica accessions. The phenotype was transformed using the Yeo-Johnson method to reduce strong right skewness and improve the distributional properties of the data, thereby facilitating subsequent regression modeling. Haplotype analyses were performed for previously reported leaf rolling-associated genes and genome-wide association study (GWAS) lead loci, leading to the identification of five loci exhibiting substantial haplotype-dependent phenotypic variation. Phenotypically defined allelic groups represented these loci were subsequently evaluated using multiple linear regression (MLR), with the first two principal components derived from genome-wide SNP data included as covariates to account for population structure. The final MLR model identified four loci (qALR1, OsYABBY1, OsSLL2, and OsSRL10) as the independent contributors to leaf rolling variation, collectively explaining 21% of the variance in the transformed phenotype after accounting for population structure. Model diagnostics and ten-fold cross-validation supported the statistical validity of the framework and indicated stable model performance across validation folds. Analysis of multi-locus allelic combinations showed 13 distinct configurations that clustered into three phenotypically differentiated groups. This reflected the cumulative dosage of high-leaf rolling alleles. Thus, the natural variation in leaf rolling in japonica rice is governed by the additive effects of multiple moderate-impact loci. The multi-locus allelic framework established here provides a statistically sound and biologically interpretable basis for dissecting polygenic canopy traits and practical guidance for developing genetic materials aimed at optimizing rice plant architecture.

cross-validation

Comparative evaluation of chitosan-based and star polycation nanocarriers for enhanced RNAi efficacy targeting CmFibL in Cnaphalocrocis medinalis.

BACKGROUND: The rice leaf folder, Cnaphalocrocis medinalis, causes substantial rice yield losses through larval leaf-rolling behavior. RNA interference (RNAi) offers a sustainable alternative, but its application in Lepidoptera is hindered by dsRNA degradation and poor cellular uptake. This study developed nanocarrier-mediated dsRNA delivery to overcome these limitations. RESULTS: Three nanocarriers - chitosan (CS), chitosan-tripolyphosphate (CS-TPP), and star polycation (SPc) - were compared for enhancing RNAi efficiency targeting the C. medinalis fibroin light chain gene (CmFibL). CS-TPP and SPc achieved 61% and 55% silencing efficiency, respectively, representing 2.7-fold improvement over naked dsRNA (23%). All nanocarriers protected dsRNA from RNase A (30 min) and midgut fluid (6 h) degradation. CmFibL knockdown caused severe silk defects, prolonged pupal duration by 23%, reduced pupal weight by 33%, and decreased leaf-rolling damage by 31% in glasshouse cage trials. Transcriptomics revealed down-regulation of amino acid metabolism and activation of endoplasmic reticulum (ER) stress and immune responses. No off-target effects were detected in human genome, nor in any predators or parasitoids sharing the same ecological niche. CONCLUSION: CS-TPP and SPc nanocarriers effectively enhance RNAi efficiency in a Lepidopteran pest. Targeting CmFibL disrupts silk-mediated feeding shelters with minimal ecological risk, providing a practical framework for field application of RNAi-based biopesticides against leaf-rolling rice pests. © 2026 Society of Chemical Industry.

Animals

Virome metatranscriptomic profiling of birch pollen reveals a diverse viral community.

INTRODUCTION: Viruses are increasingly recognized as integral components of plant-associated biological systems. However, their occurrence and diversity in the reproductive tissues of woody plants remain poorly understood. Birch (Betula spp.) produces large quantities of wind-dispersed pollen that can travel over long distances and may harbour viruses or virus-derived nucleic acids originating from the host plant and/or its associated microbiota. METHODS: We investigated the virome of birch pollen collected from trees growing in central and suburban Berlin, Germany. Metatranscriptomic analyses were performed on pooled pollen samples collected in 2020. These analyses were complemented by RT-PCR screening of individually processed pollen samples collected in 2025 from resampled trees. Primer walking was additionally used to recover an extended genome sequence of a pollen-associated birch toti-like virus. RESULTS: Multiple virus-associated contigs were identified in both pooled metatranscriptomic datasets. These included sequences corresponding to the cherry leaf roll virus (CLRV), the birch idaeovirus (BIV) and the birch toti-like virus (BTLV), as well as additional virus-like contigs provisionally assigned to lineages related to the Orthototiviridae, Botourmiaviridae, Endornaviridae, and Chrysoviridae families. RT-PCR analysis of individually processed pollen samples confirmed the continued detection of CLRV, BIV, and BTLV within the Berlin sampling framework. A near-complete genome sequence was recovered from a pollen-derived BTLV isolate from Berlin, showing high amino acid sequence identity to a recently described leaf-derived BTLV isolate from the United States. DISCUSSION: These findings demonstrate that birch pollen harbours a diverse assemblage of plant- and/or microbiome-associated viruses and expand the known tissue distribution and geographic range of BTLV. More broadly, they establish pollen as an underexplored ecological niche for virome research and provide a foundation for future studies on the ecology, transmission dynamics, and epidemiological significance of pollen-associated and pollen-transmitted viruses.

Betula