TGMB_2025v15n2

Tree Genetics and Molecular Breeding 2025, Vol.15, No.2, 80-88 http://genbreedpublisher.com/index.php/tgmb 87 Kulkarni S., Balachandran S., Ulaganathan K., Balakrishnan D., Praveen M., Prasad A., Fiyaz R., Senguttuvel P., Sinha P., Kale R., Rekha G., Kousik M., Harika G., Anila M., Punniakoti E., Dilip T., Hajira S., Pranathi K., Das M., Shaik M., Chaitra K., Rao P., Gangurde S., Pandey M., and Sundaram R., 2020, Molecular mapping of QTLs for yield related traits in recombinant inbred line (RIL) population derived from the popular rice hybrid KRH-2 and their validation through SNP genotyping, Scientific Reports, 10: 13695. https://doi.org/10.1038/s41598-020-70637-3 Liu C., Li J., and Qin G., 2020, Genome-wide distribution of simple sequence repeats in pomegranate and their application to the analysis of genetic diversity, Tree Genetics and Genomes, 16: 36. https://doi.org/10.1007/s11295-020-1428-4 Lu G., Zhang K., Que Y., and Li Y., 2023, Assembly and analysis of the first complete mitochondrial genome of Punica granatum and the gene transfer from chloroplast genome, Frontiers in Plant Science, 14: 1132551. https://doi.org/10.3389/fpls.2023.1132551 Mahajan S., Mahajan V., and Bhosale S., 2018, Molecular characterization of cultivated and wild genotypes of Punica granatum L. (pomegranate) by using SSR marker, The International Journal of Life-Sciences Scientific Research, 4: 1786-1794. Mekonnen T., Dong H., Getinet M., Gabizew A., Paterson A., and Bantte K., 2021, QTL analysis in multiple sorghum mapping populations facilitates dissection of the genetic control of agronomic and yield-related traits in sorghum [Sorghum bicolor (Moench)], Euphytica, 218: 24. https://doi.org/10.1007/s10681-022-02968-3 Parashuram S., Singh N., Gaikwad N., Corrado G., Sowjanya P., Basile B., Devaraja N., Chandra R., Babu K., Patil P., Kumar P., Singh A., and Marathe R., 2022, Morphological, biochemical, and molecular diversity of an Indian ex situ collection of pomegranate (Punica granatum L.), Plants, 11(24): 3518. https://doi.org/10.3390/plants11243518 Patil P., Singh N., Bohra A., Raghavendra K., Mane R., Mundewadikar D., Babu K., and Sharma J., 2021, Comprehensive characterization and validation of chromosome-specific highly polymorphic SSR markers from pomegranate (Punica granatum L.) cv. Tunisia genome, Frontiers in Plant Science, 12: 645055. https://doi.org/10.3389/fpls.2021.645055 Patil P., Singh N., Parashuram S., Bohra A., Sowjanya R., Gaikwad N., Mundewadikar D., Sangnure V., Jamma S., Injal A., Babu K., and Sharma J., 2020, Genome-wide characterization and development of simple sequence repeat markers for genetic studies in pomegranate (Punica granatum L.), Trees, 34: 987-998. https://doi.org/10.1007/s00468-020-01975-y Peerajade D., Moger D., Hb D., Bhat D., Mm D., and Sk D., 2020, Phenotypic variation and estimation of genetic parameters for plant growth, fruit quality traits and bacterial blight disease resistance in gamma (γ) irradiated seed derived progenies and germplasms of pomegranate (Punica granatum L.), International Journal of Chemical Studies, 8(5): 2518-2524. https://doi.org/10.22271/chemi.2020.v8.i5ai.10696 Rizzo G., Chavez S., Vandenkoornhuyse E., Cardenas C., Cento V., Meanti L., Roda G., Loy L., Buono A., Gabbiadini R., Lovisa S., Rusconi R., Repici A., Armuzzi A., and Vetrano S., 2023, P092 Punica granatum affects gut biofilm-forming bacteria and promotes intestinal mucosal healing regulating the crosstalk between epithelial cells and intestinal fibroblasts, Journal of Crohn’s and Colitis, 17: i255. https://doi.org/10.1093/ecco-jcc/jjac190.0222 Saeed M., Naveed M., Bibi J., Kamboh A., Arain M., Shah Q., Alagawany M., El-Hack M., Abdel-Latif M., Yatoo M., Tiwari R., Chakraborty S., and Dhama K., 2018, The promising pharmacological effects and therapeutic/medicinal applications of Punica granatum L. (pomegranate) as a functional food in humans and animals, Recent Patents on Inflammation & Allergy Drug Discovery, 12(1): 24-38. https://doi.org/10.2174/1872213X12666180221154713 Sevindik E., and Efe F., 2021, Molecular genetic diversity and phylogenetic analyses of Punica granatum L. populations revealed by ISSR markers and chloroplast (cpDNA) trnL-F region, Erwerbs-Obstbau, 63: 339-345. https://doi.org/10.1007/s10341-021-00581-7 Singh N., Parashuram S., Sharma J., Potlannagari R., Karuppannan D., Pal R., Patil P., Mundewadikar D., Sangnure V., Arun P., Mutha N., Kumar B., Tripathi A., Peddamma S., Kothandaraman H., Yellaboina S., Baghel D., and Reddy U., 2020, Comparative transcriptome profiling of pomegranate genotypes having resistance and susceptible reaction to Xanthomonas axonopodis pv. punicae, Saudi Journal of Biological Sciences, 27(12): 3514-3528. https://doi.org/10.1016/j.sjbs.2020.07.023 Singh N., Patil P., Sowjanya R., Parashuram S., Natarajan P., Babu K., Pal R., Sharma J., and Reddy U., 2021, Chloroplast genome sequencing, comparative analysis, and discovery of unique cytoplasmic variants in pomegranate (Punica granatum L.), Frontiers in Genetics, 12: 704075. https://doi.org/10.3389/fgene.2021.704075 Sinjare D., and Jubrael J., 2020, AFLP markers for genetic diversity evaluation of pomegranate (Punica granatum L.) in Duhok province, Kurdistan region- Iraq, Bulletin of University of Agricultural Sciences and Veterinary Medicine Cluj-Napoca: Horticulture, 77: 76-83. https://doi.org/10.15835/buasvmcn-hort:2020.0055 Tiwari J., Yerasu S., Rai N., Singh D., Singh A., Karkute S., Singh P., and Behera T., 2022, Progress in marker-assisted selection to genomics-assisted breeding in tomato, Critical Reviews in Plant Sciences, 41: 321-350. https://doi.org/10.1080/07352689.2022.2130361 Trainin T., Harel-Beja R., Bar-Ya’akov I., Ben-Simhon Z., Yahalomi R., Borochov-Neori H., Ophir R., Sherman A., Doron-Faigenboim A., and Holland D., 2021, Fine mapping of the “black” peel color in pomegranate (Punica granatum L.) strongly suggests that a mutation in the anthocyanidin reductase (ANR) gene is responsible for the trait, Frontiers in Plant Science, 12: 642019. https://doi.org/10.3389/fpls.2021.642019

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