Identification and distribution of a single nucleotide polymorphism responsible for the catechin content in tea plants

Chen-Kai Jiang , Jian-Qiang Ma , Yu-Fei Liu , Jie-Dan Chen , De-Jiang Ni , Liang Chen

Horticulture Research ›› 2020, Vol. 7 ›› Issue (1) : 24

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Horticulture Research ›› 2020, Vol. 7 ›› Issue (1) :24 DOI: 10.1038/s41438-020-0247-y
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Identification and distribution of a single nucleotide polymorphism responsible for the catechin content in tea plants
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Abstract

Catechins are the predominant products in tea plants and have essential functions for both plants and humans. Several genes encoding the enzymes regulating catechin biosynthesis have been identified, and the identification of single nucleotide polymorphisms (SNPs) resulting in nonsynonymous mutations within these genes can be used to establish a functional link to catechin content. Therefore, the transcriptomes of two parents and four filial offspring were sequenced using next-generation sequencing technology and aligned to the reference genome to enable SNP mining. Subsequently, 176 tea plant accessions were genotyped based on candidate SNPs using kompetitive allele-specific polymerase chain reaction (KASP). The catechin contents of these samples were characterized by high-performance liquid chromatography (HPLC), and analysis of variance (ANOVA) was subsequently performed to determine the relationship between genotypes and catechin content. As a result of these efforts, a SNP within the chalcone synthase (CHS) gene was shown to be functionally associated with catechin content. Furthermore, the geographical and interspecific distribution of this SNP was investigated. Collectively, these results will contribute to the early evaluation of tea plants and serve as a rapid tool for accelerating targeted efforts in tea breeding.

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Chen-Kai Jiang, Jian-Qiang Ma, Yu-Fei Liu, Jie-Dan Chen, De-Jiang Ni, Liang Chen. Identification and distribution of a single nucleotide polymorphism responsible for the catechin content in tea plants. Horticulture Research, 2020, 7 (1) : 24 DOI:10.1038/s41438-020-0247-y

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References

[1]

Chen, L., Yu, F. L. & Yang, Y. J. Germplasm and Genetic Improvement of Tea Plant. 28-35 (China Agricultural Science and Technology Press, Beijing, 2006).

[2]

Xia, E. H. et al. Tea plant information archive: a comprehensive genomics and bioinformatics platform for tea plant. Plant Biotechnol. J. https://doi.org/10.1111/pbi.13111, (2019).

[3]

Yao, M. Z., Ma, C. L., Qiao, T. T., Jin, J. Q. & Chen, L. Diversity distribution and population structure of tea germplasms in China revealed by EST-SSR markers. Tree Genet. Genomes 8, 205-220 (2012).

[4]

Chen, L., Zhou, Z. X. & Yang, Y. J. Genetic improvement and breeding of tea plant (Camellia sinensis) in China: from individual selection to hybridization and molecular breeding. Euphytica 154, 239-248 (2007).

[5]

Chen, L., Apostolides, Z. & Chen, Z. M. Global Tea Breeding: Achievements, Challenges and Perspectives 38 (Springer-Zhejiang University Press, Hangzhou, 2012).

[6]

Zhu, J., Wen, D., Yu, Y., Meudt, H. M. & Nakhleh, L. Bayesian inference of phylogenetic networks from bi-allelic genetic markers. PLoS Comput. Biol. 14, e1005932 (2018).

[7]

Palumbo, F., Qi, P., Pinto, V. B. & Barcaccia, K. M. D. A. Construction of the first SNP-based linkage map using genotyping-by-sequencing and mapping of the male-sterility gene in leaf chicory. Front. Plant Sci. 10, 276 (2019).

[8]

Huang, X. H. et al. Genomic architecture of heterosis for yield traits in rice. Nature 537, 629 (2016).

[9]

Chagné, D. et al. Validation of SNP markers for fruit quality and disease resistance loci in apple (Malus × domestica Borkh.) using the OpenArray® platform. Hortic. Res. 6, 30 (2019).

[10]

Lander, E. S. The new genomics: global views of biology. Science 274, 536 (1996).

[11]

Niu, S. et al. Genetic diversity, linkage disequilibrium, and population structure analysis of the tea plant (Camellia sinensis) from an origin center, Guizhou plateau, using genome-wide SNPs developed by genotyping-by-sequencing. BMC Plant Biol. 19, 328 (2019).

[12]

Xu, L. Y. et al. High-density SNP linkage map construction and QTL mapping for flavonoid-related traits in a tea plant (Camellia sinensis) using 2b-RAD sequencing. BMC Genomics. 19, 955 (2018).

[13]

Zhu, J. Y. et al. Global dissection of alternative splicing uncovers transcriptional diversity in tissues and associates with the flavonoid pathway in tea plant (Camellia sinensis). BMC Plant Biol. 18, 266 (2018).

[14]

Magdalena, K. C., Klaudia, S., Iwona, K. & Rafał, B. Expression of the flavonoid pathway genes in carrot plants tolerant to salt stress. N. Biotech. 33, S166 (2016).

[15]

Bálintová, M., Brunakova, K., Petijova, L. & Cellárová, E. Targeted metabolomic profiling reveals interspecific variation in the genus Hypericum in response to biotic elicitors. Plant Physiol. Biochem. 135, 348-358 (2019).

[16]

Zhang, Z. Z. et al. Antioxidant properties and mechanisms of tea polyphenols. Nut Sci. Tech. 3259, 131-159 (2008).

[17]

Guo, F., Guo, Y. F., Wang, P., Wang, Y. & Ni, D. J. Transcriptional profiling of catechins biosynthesis genes during tea plant leaf development. Planta 246, 1139-1152 (2017).

[18]

Xu, Y. Q. et al. Quantitative analyses of the bitterness and astringency of catechins from green tea. Food Chem. 258, 16-24 (2018).

[19]

Feng, Z. Q., Liu, M. Y. & Ruan, J. Y. Metabolomics analysis reveals the metabolic and functional roles of flavonoids in light-sensitive tea leaves. BMC Plant Biol. 17, 64 (2017).

[20]

Pheomphun, P., Treesubsuntorn, C. & Thiravetyan, P. Effect of exogenous catechin on alleviating O3 stress: the role of catechin-quinone in lipid peroxidation, salicylic acid, chlorophyll content, and antioxidant enzymes of Zamioculcas zamiifolia . Ecotox. Environ. Safe. 180, 374-383 (2019).

[21]

Quan, J. J. et al. Green tea extract catechin improves cardiac function in pediatric cardiomyopathy patients with diastolic dysfunction. J. Biomed. Sci. 26, 32 (2019).

[22]

Farzaei, M. H., Bahramsoltani, R., Abbasabadi, Z., Braidy, N. & Nabavi, S. M. Role of green tea catechins in prevention of age-related cognitive decline: pharmacological targets and clinical perspective. J. Cell. Physiol. 234, 2447-2459 (2019).

[23]

Ahmad, R. S. et al. Preventive role of green tea catechins from obesity and related disorders especially hypercholesterolemia and hyperglycemia. J. Transl. Med. 13, 79 (2015).

[24]

Wang, W. Z. et al. An insight into catechins metabolic pathways of Camellia sinensis based on genome and transcriptome analysis. J. Agric. Food Chem. 66, 4281-4293 (2018).

[25]

Gui, X. L. et al. Dynamic changes in catechin levels and catechin biosynthesis-related gene expression in albino tea plants (Camellia sinensis L.). Plant Physiol. Biochem. 71, 132-143 (2013).

[26]

Caesar-Johnson, S. J. et al. Comprehensive characterization of cancer driver genes and mutations. Cell 173, 371 (2018).

[27]

Jin, J. Q., Ma, J. Q., Ma, C. L., Yao, M. Z. & Chen, L. Determination of catechin content in representative Chinese tea germplasms. J. Agric. Food Chem. 62, 9436-9441 (2014).

[28]

Cao, K. et al. Comparative population genomics identified genomic regions and candidate genes associated with fruit domestication traits in peach. Plant Biotechnol. J. https://doi.org/10.1111/pbi.13112, (2019).

[29]

Wei, C. L. et al. Draft genome sequence of Camellia sinensis var. sinensis provides insights into the evolution of the tea genome and tea quality. Proc. Natl Acad. Sci. USA 115, E4151-E4158 (2018).

[30]

Xia, E. H. et al. The tea tree genome provides insights into tea flavor and independent evolution of caffeine biosynthesis. Mol. Plant. 10, 866-877 (2017).

[31]

Yu, F. L. Discussion on the origin and center of tea plant. J. Tea Sci. 6, 1-8 (1986).

[32]

Ma, J. Q. et al. Large-Scale SNP discovery and genotyping for constructing a high-density genetic map of tea plant using specific-locus amplified fragment sequencing (SLAF-seq). PLoS ONE 10, e.0128798 (2015).

[33]

Koech, R. K. et al. Identification of novel QTL for black tea quality traits and drought tolerance in tea plants (Camellia sinensis). Tree Genet. Genomes 14, 9 (2018).

[34]

Koech, R. K. et al. Functional annotation of putative QTL associated with black tea quality and drought tolerance traits. Sci. Rep. 9, 1465 (2019).

[35]

Liu, S. G. et al. Characterization of genome-wide genetic variations between two varieties of tea plant (Camellia sinensis) and development of InDel markers for genetic research. BMC Genomics. 20, 935 (2019).

[36]

Brenda, W. S. Flavonoid biosynthesis. A colorful model for genetics, biochemistry, cell biology and biotechnology. Plant Physiol. 126, 485-493 (2001).

[37]

Zhang, X. B., Abrahan, C., Colquhoun, T. A. & Liu, C. J. A Proteolytic regulator controlling chalcone synthase stability and flavonoid biosynthesis in Arabidopsis. Plant Cell. 29, 1157-1174 (2017).

[38]

Soufi, B., Soares, N. C., Ravikumar, V. & Macek, B. Proteomics reveals evidence of cross-talk between protein modifications in bacteria: focus on acetylation and phosphorylation. Curr. Opin. Microbiol. 15, 357-363 (2012).

[39]

Khurana, J., Singh, R. & Kaur, J. Engineering of Bacillus lipase by directed evolution for enhanced thermal stability: effect of isoleucine to threonine mutation at protein surface. Mol. Biol. Rep. 38, 2919-2926 (2011).

[40]

Deng, M. et al. The genetic architecture of amino acids dissection by association and linkage analysis in maize. Plant Biotechnol. J. 15, 1250-1263 (2017).

[41]

Fang, W., Cheng, H., Duan, Y., Jiang, X. & Li, X. Genetic diversity and relationship of clonal tea (Camellia sinensis) cultivars in China as revealed by SSR markers. Plant Syst. Evol. 298, 469-483 (2012).

[42]

Huang, Y. et al. Cenozoic plant diversity of Yunnan: a review. Plant Divers. 6, 271-282 (2016).

[43]

Liu, L. L. et al. Metabolite profiling and transcriptomic analyses reveal an essential role of UVR8-mediated signal transduction pathway in regulating flavonoid biosynthesis in tea plants (Camellia sinensis) in response to shading. BMC Plant Biol. 18, 233 (2018).

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