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The oomycete Phytophthora palmivora infects the fruit of cacao trees (Theobroma cacao) causing black pod rot and reducing yields. Cacao genotypes vary in their resistance levels to P. palmivora, yet our understanding of how cacao fruit respond to the pathogen at the molecular level during disease establishment is limited. To address this issue, disease development and RNA-Seq studies were conducted on pods of seven cacao genotypes (ICS1, WFT, Gu133, Spa9, CCN51, Sca6 and Pound7) to better understand their reactions to the post-penetration stage of P. palmivora infection. The pod tissue-P. palmivora pathogen assay resulted in the genotypes being classified as susceptible (ICS1, WFT, Gu133 and Spa9) or resistant (CCN51, Sca6 and Pound7). The number of differentially expressed genes (DEGs) ranged from 1625 to 6957 depending on genotype. A custom gene correlation approach identified 34 correlation groups. De novo motif analysis was conducted on upstream promoter sequences of differentially expressed genes, identifying 76 novel motifs, 31 of which were over-represented in the upstream sequences of correlation groups and associated with gene ontology terms related to oxidative stress response, defense against fungal pathogens, general metabolism and cell function. Genes in one correlation group (Group 6) were strongly induced in all genotypes and enriched in genes annotated with defense-responsive terms. Expression pattern profiling revealed that genes in Group 6 were induced to higher levels in the resistant genotypes. An additional analysis allowed the identification of 17 candidate cis-regulatory modules likely to be involved in cacao defense against P. palmivora. This study is a comprehensive exploration of the cacao pod transcriptional response to P. palmivora spread after infection. We identified cacao genes, promoter motifs, and promoter motif combinations associated with post-penetration resistance to P. palmivora in cacao pods and provide this information as a resource to support future and ongoing efforts to breed P. palmivora-resistant cacao.
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http://dx.doi.org/10.1038/s41598-024-54355-8 | DOI Listing |
Plant 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 PDFFood Chem
September 2025
Multidisciplinary Laboratory of Food and Health (LabMAS), School of Applied Sciences (FCA), University of Campinas, Rua Pedro Zaccaria 1300, 13484-350 Limeira, Sao Paulo, Brazil. Electronic address:
Cocoa (Theobroma cacao L.) beans are extensively employed in the food industry. However, their shells (CBS), a by-product representing about 20 % of bean weight, contain valuable bioactive compounds such as phenolic compounds and methylxanthines.
View Article and Find Full Text PDFCarbohydr Polym
November 2025
Department of Applied Sciences, Faculty of Health and Life Sciences, Northumbria University, NE1 8ST Newcastle Upon Tyne, United Kingdom; Centre for Biomaterials and Tissue Engineering (CBIT), Universitat Politècnica de València, 46022, Valencia, Spain. Electronic address: joel.l.g.hernandez@north
Polysaccharides, widely used in food, pharmaceutical and industrial sectors, are abundant in Theobroma species pod husk waste (T. cacao, T. grandiflorum and T.
View Article and Find Full Text PDFCurr Microbiol
September 2025
Laboratorio de Biotecnología Microbiana, Universidad Nacional de Frontera, 20100, Sullana, Piura, Perú.
Peru is the eighth largest producer of cocoa beans worldwide; however, the high cadmium content (Cd) presented in the white Criollo cocoa beans from the Piura region, has limited their commercialization. A potential strategy to mitigate this problem is the application of native lactic acid bacteria (LAB), capable of reducing Cd during the fermentation stage of the grain. Three Theobroma cacao L.
View Article and Find Full Text PDFFood Chem
August 2025
SPO, Univ Montpellier, INRAE, Institut Agro, Montpellier, France; INRAE, CALIS Research Infrastructure, PROBE Research Infrastructure, PFP Polyphenol analysis facility, Montpellier, France. Electronic address:
Ion mobility spectrometry (IMS) may improve feature-based molecular networking (FBMN) for annotating polyphenol isomers co-eluted in chromatography. The study aimed to assess the added value of trapped ion mobility spectrometry (TIMS) in metabolomics with FBMN for cocoa polyphenols. Untargeted analyses were performed on black and brown cocoa beans using a UHPLC-TIMS-Q-TOF system, with or without TIMS.
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