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Effect of transgene on salt tolerance of tobacco.

To explore the effects of salt-tolerance gene accumulation on salt tolerance in transgenic plant, we used four types of plant expression vector (N27, N28, N29, and N30) carrying mtlD, mtlD + gutD, mtlD + gutD + BADH, mtlD + gutD + BADH + sacB genes respectively, to transform tobacco through Agrobacterium-mediated method. Transgenic lines were identified through polymerase chain reaction (PCR) detection. Transgenic lines and non-transgenic plant (CK) were subjected to 6‰ sodium chloride solution stress; then, fluorescence quantitative PCR (FQ-PCR) and salt tolerance indexes were used to assess characteristics. PCR showed the exogenous genes had been integrated into the tobacco genome. FQ-PCR showed under clean water treatment the target genes were expressed in all transgenic plants at the transcriptional level. The transcript abundances of target genes changed with the number of genes increased, and improved following salt stress. Comparative analyses of salt tolerance indexes showed height growth, biomass (except for N29), chlorophyll content, net photosynthetic rate, Fv/Fm, and PI of all transgenic plants and CK were lower under salt stress than under clean water treatment, to varying degrees. However, the descent ratio was smaller in transgenic plants. A comprehensive evaluation of multiple salt-tolerance indicators performed using the membership function method showed the average salt tolerance of each vector transgenic line was higher than that of CK, and salt tolerance was greater in transgenic polyvalent gene lines than in transgenic monovalent gene lines. The average salt tolerance was N29 > N28 > N30 > N27 > CK. This study provides a theoretical and practical reference for salt tolerance breeding in other plants.

Plants, Genetically Modified

A suite of enhancer AAVs and transgenic mouse lines for genetic access to cortical cell types.

The mammalian cortex is comprised of cells classified into types according to shared properties. Defining the contribution of each cell type to the processes guided by the cortex is essential for understanding its function in health and disease. We use transcriptomic and epigenomic cortical cell-type taxonomies from mouse and human to define marker genes and putative enhancers and create a large toolkit of transgenic lines and enhancer adeno-associated viruses (AAVs) for selective targeting of cortical cell populations. We report creation and evaluation of fifteen transgenic driver lines, two reporter lines, and >1,000 different enhancer AAV vectors covering most subclasses of cortical cells. The tools reported here have been made publicly available, and along with the scaled process of tool creation, evaluation, and modification, they will enable diverse experimental strategies toward understanding mammalian cortex and brain function.

Animals

The transgenic Vip3A poplar plant confers high resistance against Hyphantria cunea Drury.

Poplar is severely damaged by Hyphantria cunea (fall webworm), which significantly reduces tree productivity. However, conventional pest management methods are largely ineffective against fall webworm infestation. In this study, we demonstrated that the Vip3A protein possesses high insecticidal activity against H. cunea by overexpressing a synthetic THI1-Vip3A gene in poplar plants. A dicot codon-optimized Vip3A gene, fused with the THI1 chloroplast signal peptide sequence, was chemically synthesized and introduced into the poplar cv. '741' genome via Agrobacterium-mediated transformation. PCR, RT-PCR, and ELISA analyses confirmed the integration and successful expression of the transgene at both the mRNA and protein levels. The Vip3A protein concentration in chloroplasts was approximately 4.8-fold higher than in the whole leaf extract, indicating that the Vip3A protein was successfully targeted to and accumulated within the chloroplasts by the THI1 signal peptide. Subsequently, four transgenic lines with high Vip3A expression were subjected to H. cunea infestation. Compared to wild-type plants, these four transgenic lines exhibited significantly higher resistance, resulting in pest mortality rates exceeding 95% and significantly reduced leaf damage. Together, these results indicate that Vip3A possesses high insecticidal activity against H. cunea. Therefore, transgenic THI1-Vip3A poplar plants can serve as valuable germplasm for breeding poplar cultivars with high resistance to H. cunea infestation.

Plants, Genetically Modified

Mammalian growth factors enhance regeneration in transgenic tomato lines.

Genome editing technologies are now available for many crop species, greatly enhancing our ability to investigate gene function and transforming the field of plant transgenesis. However, the capacity to regenerate whole plants from cell culture remains a major limiting factor in many crops. Even in species with regeneration potential, certain genotypes remain recalcitrant. The physiological state of plant cells plays a central role in growth and development and is closely associated with kinase-mediated signaling networks. Notably, several defense-related genes activated during cellular repair processes following transgenesis share significant homology with mammalian defense genes. In this study, we evaluated whether supplementation with three mammalian growth factors could enhance regeneration efficiency in tomato. We selected two cytokines and a pro-inflamatory factor showing homology with plant kinase genes. We compared the percentage of transgenic plants generated through CRISPR-Cas9-mediated mutagenesis of four genes involved in sugar and organic acid metabolism across six tomato lines exhibiting varying regeneration capacities. Over three years of transformation experiments, we demonstrated that the addition of mammalian growth factors during transgenesis significantly improved regeneration frequency, particularly in recalcitrant tomato genotypes. Furthermore, growth factor supplementation not only enhanced transformation efficiency in difficult-to-transform lines but also increased the production of stable secondary lines.

Solanum lycopersicum

Overexpression of the tomato SlLEA_2-26 gene enhances the tolerance to drought and salt stresses in Arabidopsis thaliana.

Late embryogenesis abundant (LEA) proteins are pivotal in conferring cellular tolerance to abiotic stresses and sustaining plant growth and development. However, systematic functional characterization of the tomato SlLEA_2 gene family remains limited. To elucidate the role of tomato SlLEA_2-26 in abiotic stress responses, this study cloned its full-length cDNA. Quantitative real-time PCR (qRT-PCR) analysis revealed that SlLEA_2-26 exhibits predominant expression in flowers and fruits, and is strongly induced by drought, salt, Cu2+, and Pb2+ stresses. Three homozygous Arabidopsis thaliana T3 SlLEA_2-26-overexpression lines were generated and confirmed via genomic PCR. Under drought and salt stress, T3 A. thaliana lines overexpressing SlLEA_2-26 exhibited significantly enhanced seed germination rates, root elongation, and fresh weights compared to wild type (WT) plants, indicating improved stress tolerance during early seedling development. Furthermore, transgenic plants accumulated higher levels of soluble sugar and proline, and displayed elevated antioxidant enzyme activity compared to the WT, whereas contents of malondialdehyde (MDA) and reactive oxygen species (ROS) were markedly reduced relative to WT. qRT-PCR analysis confirmed the significant upregulation of SlLEA_2-26 in transgenic lines under drought and salt stress conditions, accompanied by elevated expression of AtP5CS1, AtCSD1, AtRD29A, AtRD26, and AtNCED3. Collectively, these results demonstrate that SlLEA_2-26 overexpression enhances drought and salt stress tolerance in A. thaliana by promoting the accumulation of osmoregulatory substances, augmenting antioxidant defense capacity, and activating stress-responsive gene expression. This study provides a theoretical foundation and valuable genetic resources for breeding stress-tolerant tomatoes and other crops.

SlLEA_2–26

A transposable element insertion in AUX/IAA16 disrupts splicing and causes auxin resistance in Bassia scoparia.

A dicamba-resistant population of kochia (Bassia scoparia) identified in Colorado, USA in 2012 was used to generate a synthetic mapping population that segregated for dicamba resistance. Linkage mapping associating dicamba injury with genotype derived from restriction-site-associated DNA sequencing identified a single locus in the kochia genome associated with resistance on chromosome 4. A mutant version of Auxin/Indole-3-Acetic Acid 16 (AUX/IAA16; a gene previously implicated in dicamba resistance in kochia) was found near the middle of this locus in resistant plants. Long-read sequencing of dicamba-resistant plants identified a recently inserted long-terminal repeat (LTR) retrotransposon TRIM element near the beginning of the second exon of AUX/IAA16, leading to disruption of normal splicing and a mutated degron domain. Stable transgenic lines of Arabidopsis thaliana ectopically expressing the mutant and wild-type alleles of AUX/IAA16 were developed. Arabidopsis thaliana plants expressing the mutant AUX/IAA16 allele grew shorter roots on control media. However, transgenic root growth was less inhibited on media containing either dicamba (5 μM) or IAA (0.5 μM) when compared with non-transgenic plants or those expressing the wild-type allele of AUX/IAA16. In vitro assays indicate reduced binding affinity and more rapid dissociation of the mutant AUX/IAA16 with TIR1 in the presence of several auxins, and protein modeling suggests the substitution of the glycine residue in the degron domain of AUX/IAA16 is especially important for resistance. A fitness cost associated with the mutant allele of AUX/IAA16 has implications for resistance evolution and management of kochia populations with this resistance mechanism.

Indoleacetic Acids

Synergistic engineering of Casδ nuclease for robust genome editing.

Casδ is a recently identified evolutionary transitional CRISPR system characterized by its compact size (~900 amino acids), broad temperature tolerance, and guidance by a short crRNA without the requirement of a tracrRNA. However, the low editing efficiency of Casδ in eukaryotic cells limits its application. Here, we have developed a hierarchical engineering strategy to improve the genome editing activity of Casδ-1, with optimization focused on enhancing its interactions with the crRNA, the protospacer adjacent motif (PAM) duplex, the single-stranded DNA substrate, and the RNA-DNA heteroduplex. Through this strategy, we successfully generated an activity-enhanced Casδ-1 variant, designated enCasδ, which harbors 9 amino acid substitutions that synergistically augment its editing efficiency. In human cell lines, enCasδ showed 1.3- to 29.3-fold higher editing activity than the wild-type Casδ-1 across ten tested genomic loci, with an average editing efficiency of 54.6%. In addition, enCasδ also mediated robust genome editing in maize; its editing efficiency increased by an average of 5.3-fold relative to Casδ-1, and reached up to an average of 80% at the TS4 and PSY1 loci in stable transgenic lines. The overall editing performance of enCasδ was comparable to that of Streptococcus pyogenes Cas9 (SpCas9) and other Cas12 nucleases. Collectively, enCasδ represents a highly optimized Casδ-1 variant that broadens the applicability of the Casδ CRISPR system and facilitates robust genome editing in both animal cells and plants.

Gene Editing

The combination of morphogenic regulators BABY BOOM and GRF-GIF improves maize transformation efficiency and promotes leaf regeneration.

Transformation is an indispensable tool for plant genetics and functional genomics. Although stable transformation in maize is no longer a major obstacle, there remains a need for accessible and efficient methods for academic laboratories. Here, we present the GGB system, a rapid and efficient approach optimized for immature embryo transformation in B104 and other maize lines. This system combines two distinct morphogenetic regulators, the wheat GRF4-GIF1 chimera and the maize BABY BOOM (BBM) transcription factor (hence the name "GGB") with a modified QuickCorn protocol, enabling regeneration of transformed maize plantlets in c. 2 months with an efficiency 7-fold higher than when compared to either morphogenic factor used in isolation. Expression of both regulators did not significantly affect development, eliminating the need to excise them after regeneration. However, transmission of the transgenic GGB construct through pollen was significantly reduced, potentially aiding transgenic line containment. We show that the GGB system is adaptable for CRISPR-Cas9 editing and reporter line generation. Furthermore, stable GGB transformants exhibited high leaf regeneration capacity via somatic embryogenesis. RNA-seq time-course profiling of GGB leaf cultures identified additional factors that could promote regeneration and led to the discovery of asparagine and trehalose as additional media components that significantly enhanced leaf regeneration.

Zea mays

A new tool for engineering Phaeodactylum tricornutum: the METE promoter drives both high expression and B12-tuneable regulation of transgenes.

For advanced metabolic engineering strategies, it is crucial to be able to regulate transgene expression, to prevent potential deleterious effects in the host organism during growth and allow optimisation of production levels. Here, we identified vitamin B12 (cobalamin)-responsive promoters in the diatom Phaeodactylum tricornutum, a promising biotechnological chassis that readily absorbs this metabolite with minimal physiological impact. Using promoter-reporter constructs, the promoters of the cobalamin acquisition protein 1 (CBA1) and the B12-independent form of methionine synthase (METE) were shown to regulate transgene expression in a B12-dependent manner. Further characterisation of the METE promoter (PMETE) demonstrated that it exhibited significantly higher expression levels than several previously characterised promoters, but could be repressed by nanomolar amounts of B12, with a dynamic range >100-fold. Tight regulation was demonstrated by the suppression of the lethal ribonuclease, barnase at 1 μg L-1 B12. Reporter expression was doubled when PMETE was paired with its cognate terminator, compared with the widely used FCPA terminator. Promoter truncations resulted in decreased expression, but no loss of B12 regulation. A 14 nucleotide motif, present in four copies in PMETE, was found to be necessary for expression, and when fused to the constitutive FCPA promoter, enhanced expression levels. Transgenic lines expressing the heterologous diterpenoid enzyme, casbene synthase, produced casbene titres of approximately 2 mg L-1 and this was tuneable by B12. This demonstrates the utility of PMETE in efforts to establish P. tricornutum as an industrial biotechnology production platform.

Promoter Regions, Genetic

The Protective Role of DDIT4 in Helicobacter pylori-induced Gastric Metaplasia Through Metabolic Regulation of Ferroptosis.

BACKGROUND & AIMS: Helicobacter pylori (H pylori) infection is a significant factor leading to gastric atrophy, metaplasia and cancer development. Here, we investigated the role of the stress response gene DDIT4 in the pathogenesis of H pylori infection. METHODS: Cell lines, transgenic mice, and human tissue samples were implemented. Proteomics were performed on Ddit4+/+ and Ddit4-/- mice infected with H pylori strain PMSS1. C57BL/6 mice were administered with tamoxifen to induce gastric metaplasia. Stomach tissues were analyzed for histopathologic features, reactive oxygen species, Fe2+, lipid peroxidation, expression of DDIT4, and ferroptosis-related proteins. RESULTS: DDIT4 expression was upregulated at 6 hours but significantly decreased at 24 hours in response to H pylori infection in gastric epithelial cells. Gastric DDIT4 were downregulated in INS-GAS mice at 4 months post H pylori infection. Notably, H pylori infection led to more severe gastric metaplasia lesion in Ddit4-knockout mice. The proteomic profiling revealed an increase in ferroptosis in the gastric tissues of infected Ddit4-deficient mice, compared with infected wild-type mice. Mechanistically, knockout of DDIT4 promoted H pylori-induced ferroptosis through the accumulation of lipid peroxides and ROS levels, and alterations in proteins such as GPX4, ALOX15, and HMOX1. Overexpression of DDIT4 counteracted H pylori-induced stem cell marker CD44V9 through modulation of ferroptosis. Similarly, in another mouse model of gastric metaplasia treated with tamoxifen, as well as in human GIM tissues, we observed the loss of DDIT4 and induction of ferroptosis. CONCLUSIONS: Our results indicate that DDIT4 serves as a protective factor against H pylori-induced gastric metaplasia by metabolic resistance to ferroptosis.

Ferroptosis

Using Callus as an Ex Vivo System for Chromatin Analysis.

Next-generation sequencing has revolutionized epigenetics research, enabling a comprehensive analysis of DNA methylation and histone modification profiles to explore complex biological systems at unprecedented depth. Deciphering the intricate epigenetic mechanisms that regulate gene activity presents significant challenges, including the issue of analyzing heterogeneous cell populations in bulk. Bulk analysis introduces bias and can obscure crucial information by averaging readouts from distinct cells. Various approaches have been developed to address this issue, such as cell-type-specific enrichment or single-cell sequencing techniques. However, the need for transgenic lines with fluorescent markers, along with technical challenges such as efficient protoplast isolation and low yield, limits their widespread adoption and use in multi-omic studies. This review discusses the pros and cons of these approaches, providing a valuable basis for selecting the most suitable strategy to minimize heterogeneity. We will also highlight the use of cotyledon-derived callus as an ex vivo system as a simple, accessible, and robust platform for enabling high-throughput multi-omic analyses.

Chromatin

A stable transformation platform in pomegranate uncovers PgMYB10 as a key regulator of anthocyanin biosynthesis.

An efficient genetic transformation platform enables functional validation of PgMYB10, identifying it as a master regulator governing anthocyanin biosynthesis in pomegranate. Limited availability of stable genetic transformation systems restricts functional genomics research in pomegranate. Here, we established efficient in vitro regeneration and Agrobacterium tumefaciens-mediated transformation systems for 'Taishanhong' pomegranate using stem segment explants. Optimized medium combinations produced high-frequency regeneration: a 93.3% shoot-induction rate on MS medium with 1.5 mg/L 6-benzylaminopurine (BAP), 0.6 mg/L 1-naphthaleneacetic acid (NAA) and 30.0 mg/L adenine sulfate (ADS); a proliferation coefficient of 5.4 on MS medium supplemented with 0.8 mg/L BAP and 0.3 mg/L indole‑3‑butyric acid (IBA); effective shoot-strengthening on MS medium containing 1.2 mg/L BAP, 0.3 mg/L NAA and 0.2 mg/L gibberellic acid (GA₃); and a rooting rate of 95.3% on half-strength MS medium with 1.5 mg/L IBA and 0.5 mg/L NAA. For transformation, precultured explants were immersed with A. tumefaciens suspension (OD₆₀₀ = 0.8) containing 20.0 mg/L acetosyringone (AS) for 30 min. After four days of dark co-culture, sequential antibiotic screening with 30 mg/L kanamycin and bacteriostatic treatment with 400 mg/L timentin yielded a stable average transformation efficiency of 17.5% in 'Taishanhong' pomegranate. Subsequent functional analysis revealed that overexpression of PgMYB10 induced pigment accumulation in leaves and stems. In three independent transgenic lines, maximum anthocyanin content and PgMYB10 transcript levels were 5.4-fold and 27.2-fold higher than in wild-type plants, respectively. Six anthocyanin biosynthetic genes (PgCHS, PgCHI, PgF3H, PgDFR, PgANS, and PgUFGT) were markedly upregulated, demonstrating that PgMYB10 positively controls anthocyanin biosynthesis. This transformation system provides a reliable technical platform for functional genomic studies in pomegranate, and PgMYB10 represents as a promising candidate gene for molecular breeding aimed at improving fruit pigmentation.

Anthocyanins

Dual genetic loci and flavonoid metabolism orchestrate fruiting body coloration in Flammulina filiformis: a multi-omic roadmap for fungal pigmentation.

BACKGROUND: The fruiting bodies of macrofungi exhibit diverse coloration, traditionally attributed to melanin and carotenoid biosynthesis. This study is the first to reveal that flavonoids, rather than these classical pigments, are the predominant contributors to yellow pigmentation in the Flammulina filiformis. OBJECTIVE: To uncover the genetic basis and key regulatory genes involved in pigment formation in F. filiformis fruiting bodies, and to establish a model framework for studying color genetics in macrofungi. METHODS: Metabolomic profiling was conducted on yellow and white F. filiformis fruiting bodies to identify key pigment components. A segregating population was constructed, followed by integrated multi-omics analyses-including bulk segregant analysis (BSA), genome-wide association study (GWAS), and transcriptomics-to map regulatory loci and candidate genes. Functional roles were validated via genetic transformation and protein structural modeling. RESULTS: Flavonoid accumulation was identified as the biochemical hallmark of pigmented fruiting bodies. Genetic analysis revealed a dual regulatory mechanism: a qualitative locus governing pigmentation presence and a quantitative trait determining color intensity. Combined BSA and GWAS pinpointed a major locus, Ffcrs, within a recombination-suppressed region. Transcriptomic analysis identified two key regulators, Ffakr (a transcriptional activator) and Ffpal (encoding phenylalanine ammonia-lyase). Functional verification via transformation, structural modeling, and metabolite profiling in transgenic lines confirmed their essential roles in flavonoid biosynthesis and pigmentation. CONCLUSION: This study uncovers a flavonoid-based pigmentation mechanism in F. filiformis and elucidates a complex genetic architecture shaped by both qualitative and quantitative loci, providing a new paradigm for understanding pigment formation in macrofungi. The identified regulatory factors establish a molecular foundation for the precise manipulation of economically important pigmentation traits in edible mushroom.

Flavonoids

Integrative omics of the genetic basis for wheat WUE and drought resilience reveal the function of TaMYB7-A1.

Improving wheat drought resilience and water use efficiency (WUE) is critical for sustaining productivity under increasing water scarcity. Here, we integrate genome-wide association study (GWAS), expression quantitative trait locus (eQTL) mapping, population-transcriptome analysis, and summary-data-based mendelian randomization (SMR), followed by functional validation using indexed EMS mutants and transgenic lines, to systematically identify key WUE regulators. GWAS across water conditions in 228 accessions identifies 73 quantitative trait loci (QTLs) for WUE-traits. Transcriptome profiling of 110 diverse accessions reveals 28 drought-responsive modules. eQTL mapping uncovers 146,966 regulatory variants, including condition-specific hotspots associated with key drought-related pathways. Integrative analysis underscores 85 high-confidence candidate genes, notably TaMYB7-A1. Overexpression of TaMYB7-A1 enhances photosynthesis, WUE, root development, and grain yield under drought condition by activating TaPIP2;2-B1 (water transport), TaRD20-D1 (stomatal regulation), and TaABCB4-B1 (root growth), reflecting reduced water loss and improved physiological resilience. Our study presents a comprehensive regulatory map and robust targets for wheat drought adaptation and resilient cultivar breeding.

Triticum

Pathogen Species-Specific Differences in Induction of the Maize Polyubiquitin Gene Promoter in Transgenic Wheat.

The maize polyubiquitin promoter (ZmUbi) is a mainstay in molecular biology for transgene expression and is used for constitutive expression of defense-related gene products. Transgenic wheat lines were produced expressing a ZmUbi-RUBY reporter gene that produces the red pigment betalain. Some lines showed transgene silencing with reduced RUBY transcript accumulation and chimeric sectors of betalain. Infection of these plants with Blumeria graminis, Puccinia graminis f. sp. tritici (Pgt), or P. triticina (Pt) each resulted in localized betalain accumulation at infection sites and increased RUBY transcript accumulation. In contrast, two isolates of P. striiformis f. sp. tritici (Pst) caused no detectable RUBY transcript accumulation and no visible betalain accumulation at infection sites, although a modest betalain increase was detected in infected tissue extracts. Compared with Pst, Pgt more strongly induced host genes involved in transcriptional and post-transcriptional regulatory processes, although no obvious pathogen-induced changes in ZmUbi promoter methylation were observed. ZmUbi-GUS transgenic wheat plants were also pathogen challenged, and, unlike Pst, both Pgt and Pt induced localized GUS staining at infection sites. Database mining showed that the endogenous maize polyubiquitin gene from which ZmUbi is derived was pathogen inducible, albeit in a species-specific fashion. These pathogen differences in ZmUbi induction have implications when using this regulatory element to express defense-related transgenes in wheat. Comparing the resistance efficacy of transgenes against different pathogens using this promoter is potentially influenced by significant, localized expression differences occurring at infection sites of different pathogen species. [Formula: see text] Copyright © 2026 The Author(s). This is an open access article distributed under the CC BY-NC-ND 4.0 International license.

Promoter Regions, Genetic

Development of a highly efficient prime editing platform for cucurbits enables breeding of multi-disease-resistant cucumber.

The prime editing (PE) system is a precise genome editing technology that works efficiently in monocots; however, its application is limited by low editing efficiency in dicots, particularly Cucurbitaceae and Solanaceae plants. Here, we first significantly improved the transformation efficiency by introducing spectinomycin in cucurbits, then used the tomato elongation factor 1-alpha (SlEF1α) promoter to enhance PE protein expression, and incorporated the Csy4 ribonuclease to process pegRNAs, collectively addressing multiple constraints limiting PE efficiency in cucurbits. The optimized PE systems, particularly Csy4-PE6d, achieved an average desired editing frequency of 80.83% at targeted loci in cucumber via stable genetic transformation, with frequencies reaching up to 100% at certain sites. Moreover, Csy4-PE6d generated homozygous edits in 36.43% of transgenic lines and demonstrated robust editing activity in melon, pumpkin, and potato. Using the Csy4-PE6d tool, we generated heritable edited cucumber lines with dual resistance to bacterial angular leaf spot and downy mildew by targeting the CsSGR gene. Collectively, this optimized system substantially enhances PE efficiency in Cucurbit crops, providing an effective solution to common challenges such as low editing efficiency and limited heritability in these species.

Disease Resistance

Functional analysis of a GWAS pleiotropic hotspot suggests an auxin biosynthesis gene (AhPDS1), regulating pod development in peanut (Arachis hypogaea L.).

Peanut productivity and quality improvement rely on understanding the genetic factors influencing pod and seed size. This study aims to identify genetic factors and regulatory mechanisms influencing pod and seed size in peanuts. Herein, a genome-wide association study (GWAS) was conducted using 390 accessions from 15 peanut growing regions to analyze pod and seed traits across multiple planting seasons. A significant phenotypic variation was observed, with broad-sense heritability ranging from 53.6 to 85.4%. Strong correlations between pod and seed traits further suggest potential for co-selection in breeding efforts. A pleiotropic hotspot on chromosome B06 was strongly associated with six pod and seed traits. A peanut pod size regulator AhPDS1 (PODSIZE-1, Ahy_B06g085516) homolog of Arabidopsis thaliana YUCCA4 (AtYUC4, AT5G11320), involved in auxin biosynthesis, was selected as a candidate regulating pod and seed size. Quantitative reverse transcriptase-polymerase chain reaction (qRT-PCR) confirmed higher AhPDS1 expression in large pod as compared with the small pod genotypes. Subcellular localization showed AhPDS1 to be predominantly cytoplasmic, and GUS reporter assays indicated widespread expression in roots, stems, leaves, flowers, and pods, suggesting a broad functional role. Further overexpression of AhPDS1 in Arabidopsis and rice enhanced pod, seed, and grain sizes via the indole-3-pyruvic acid pathway in transgene lines. These findings highlight AhPDS1 as a potential target for peanut molecular breeding, offering opportunities to enhance pod size via auxin biosynthesis and support sustainable crop improvement.

Arachis

Functional study of the AfRAP2 gene in Amorpha fruticosa L. tolerance to saline-alkali and drought stress.

BACKGROUND: Amorpha fruticosa L. is a leguminous shrub with high tolerance to drought, poor soil, and saline-alkali stress conditions. As a member of the family of transcription factors in higher plants, the ethylene response factor AP2/ERF plays a crucial role in both plant adaptation to abiotic stress and in growth and development. In this study, based on genes identified from the transcriptomic sequencing of Amorpha fruticosa L. under drought stress, the upregulated gene AfRAP2 was isolated from its seedlings, with the aim of elucidating its stress-response function using molecular biological techniques. RESULTS: In this study, the AfRAP2 gene was cloned from the leaves of Amorpha fruticosa L. using RT-PCR. Bioinformatics analysis revealed that AfRAP2 contains an AP2 domain and belongs to the DREB subfamily of the AP2/ERF transcription factor family, showing close phylogenetic relationships with LaEREBP from Lathyrus albus. Real-time quantitative PCR (RT-qPCR) results indicate that AfRAP2 is expressed in various tissues of Amorpha fruticosa L., with the highest expression in leaves and the lowest in stems, furthermore, its expression is significantly upregulated in roots and leaves upon induction by NaHCO3 and PEG6000. Subcellular localization experiments confirmed that the AfRAP2 protein is localized to the nucleus, and GUS histochemical staining assay revealed that its promoter drives GUS expression in anthers. Resistance analysis of overexpressing yeast strains showed that yeast transformed with the AfRAP2 gene exhibited significantly better growth under sorbitol, mannitol, and NaHCO3 stress conditions compared to the control, indicating that this gene enhances yeast tolerance to drought and saline-alkali stress. We screened transgenic tobacco and Populus davidiana × P. alba var. Pyramidalis. The results showed that under natural drought and saline-alkali stress treatments, the transgenic lines exhibited significantly improved growth and higher activities of the physiological indicators of catalase (CAT), superoxide dismutase (SOD), and peroxidase (POD) compared with wild-type plants, indicating that the overexpression of the AfRAP2 gene plays a key role in the response to saline-alkali stress and drought stress. CONCLUSION: In summary, AfRAP2 contains an AP2 domain and belongs to the DREB subfamily of transcription factors, under abiotic stress induced by NaHCO₃ and mannitol, it can induce the expression of the AfRAP2 gene in tobacco and Populus davidiana×P. alba var. pyramidalis. AfRAP2 plays a vital role in the plant response to saline-alkali stress and drought stress and is a promising candidate gene for stress-tolerant breeding.

Plant Proteins