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Peroxidase (POD) activity in wheat ( L.) grain influences natural carotenoid pigment content and is associated with the color of flour, and processing and product quality. Here, we report the molecular characterization and physical mapping of POD genes in bread wheat. The complete genomic DNA (gDNA) sequence of two POD genes ( and ), and the partial gDNA sequence of two additional POD genes ( and ) from wheat were characterized using cloning and validated through laboratory experiments. Using a set of 21 nullisomic-tetrasomic (NT) lines, six group-7 ditelosomic (Dt) lines, and 38 group-7 deletion (Del) lines of Chinese Spring (CS), and were found to be physically located on 0.73-0.83 and on the most distal 0.39 fraction arm length (FL) of 7AS and 7DS in cv. CS, respectively; whereas, and were assigned to the 0.40-0.49 and 0.40-0.48 FL of 7AL and 7BL, respectively. Based on single nucleotide polymorphisms (SNPs) of two alleles at the locus, two functional markers POD-7D1 and POD-7D6 were developed, amplifying 540- and 640-bp, fragments in varieties with higher and lower POD activities, respectively. A total of 224 wheat varieties were analyzed and showed a significant association between the polymorphic fragments and POD activity using POD-7D1 and POD-7D6 markers. The analysis of variance (ANOVA) indicated the average POD activities of 115 varieties with - were significantly lower than 109 varieties with - ( < 0.01). This study provides useful information of the POD genes in bread wheat, insight into wheat genome synteny and structure, gene-specific markers, and contributes a valuable resource for quality improvement in wheat breeding programs.
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http://dx.doi.org/10.3389/fpls.2019.00523 | DOI Listing |
Front Plant Sci
August 2025
Branch of Animal Husbandry and Veterinary of Heilongjiang Academy of Agricultural Sciences, Qiqihar, Heilongjiang, China.
is the most widely cultivated high-protein forage crop globally. However, its cultivation in high-latitude and cold regions of China is significantly hindered by low-temperature stress, particularly impacting the root system, the primary functional tissue crucial for winter survival. The physiological and molecular mechanisms underlying the root system's adaptation and tolerance to low temperatures remain poorly understood.
View Article and Find Full Text PDFJ Chem Ecol
September 2025
Ecology Research Laboratory, Department of Zoology, The University of Burdwan, Burdwan, 713 104, West Bengal, India.
Helicoverpa armigera (Hübner) (Lepidoptera: Noctuidae) is an important herbivorous pest of bottle gourd. We studied the development, reproduction and life table parameters of H. armigera to assess the resistance of eight bottle gourd cultivars, and performed biochemical analysis when H.
View Article and Find Full Text PDFPlant Biotechnol J
September 2025
Huck Institutes of the Life Sciences, Penn State University, University Park, Pennsylvania, USA.
Black pod disease, caused by a complex of Phytophthora species, poses a severe threat to global cacao production. This study explores the use of CRISPR-Cas9 genome editing to reduce disease susceptibility in Theobroma cacao L. by targeting the TcNPR3 gene, a known negative regulator of plant defence.
View Article and Find Full Text PDFJ Pineal Res
September 2025
School of Breeding and Multiplication (Sanya Institute of Breeding and Multiplication), School of Tropical Agriculture and Forestry, Hainan University, Sanya, China.
Melatonin, a multifunctional signalling molecule in plants, has been increasingly recognized for its role in improving stress tolerance, regulating hormone signalling, and enhancing crop productivity. Exogenous melatonin application represents a promising strategy to enhance crop productivity under global agricultural challenges. This study aimed to investigate the physiological and molecular mechanisms by which melatonin improves yield in Brassica napus.
View Article and Find Full Text PDFPlant Physiol Biochem
September 2025
Zhejiang Provincial Key Laboratory of Biotechnology on Specialty Economic Plants, College of Life Sciences, Zhejiang Normal University, Jinhua, Zhejiang, 321004, China; China-Mozambique "Belt and Road" Joint Laboratory on Smart Agriculture, Jinhua, 321004, China. Electronic address:
Salicylic acid (SA), a phenolic-derived secondary metabolite, serves as a critical signaling molecule in plant defense mechanisms. Contemporary phytochemical studies have identified two distinct biosynthetic pathways for SA production in plants: the isochorismate synthase (ICS)-mediated pathway and the phenylalanine ammonia-lyase (PAL)-dependent pathway. However, the enzymes participating in SA biosynthesis in soybean remain largely unknown.
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