Engineering the polyphenolic biosynthetic pathway stimulates metabolic and molecular changes during fruit ripening in “Bronze” tomato

Aurelia Scarano , Carmela Gerardi , Eduardo Sommella , Pietro Campiglia , Marcello Chieppa , Eugenio Butelli , Angelo Santino

Horticulture Research ›› 2022, Vol. 9 ›› Issue (1) : uhac097

PDF (852KB)
Horticulture Research ›› 2022, Vol. 9 ›› Issue (1) :uhac097 DOI: 10.1093/hr/uhac097
Article
research-article
Engineering the polyphenolic biosynthetic pathway stimulates metabolic and molecular changes during fruit ripening in “Bronze” tomato
Author information +
History +
PDF (852KB)

Abstract

The metabolic engineered Bronze tomato line is characterized by the constitutive over-expression of the VvStSy gene encoding a structural protein responsible for the stilbenoids biosynthesis and the fruit-specific over-expression of AmDel/ Rosea1 and AtMYB12 genes encoding transcription factors that activate the polyphenol biosynthetic pathway. This tomato line is known for the increased levels of polyphenols in ripe fruits and for beneficial health promoting antioxidant and anti-inflammatory effects. In this study we analyzed the transcriptional and metabolic profiling in mature green, breaker, orange and ripe fruits compared to the normal tomato counterparts during ripening, to unravel the effect of regulatory and structural transgenes on metabolic fluxes of primary and secondary metabolisms. Our results showed that the shikimate synthase (SK) gene was up-regulated in the Bronze fruit, and the transcriptional activation is consistent with the metabolic changes observed throughout fruit ripening. These results paralleled with a reduced level of simple sugars and malate, highlighting the consumption of primary metabolites to favor secondary metabolites production and accumulation. Finally, carotenoids quantification revealed a change in the lycopene/ β-carotene ratio in the Bronze fruit as a consequence of significant lower level of the first and higher levels of the latter. The high polyphenols and β-carotene content displayed by the Bronze fruit at the later stages of fruit ripening renders this line an interesting model to study the additive or synergic effects of these phyto-chemicals in the prevention of human pathologies.

Cite this article

Download citation ▾
Aurelia Scarano, Carmela Gerardi, Eduardo Sommella, Pietro Campiglia, Marcello Chieppa, Eugenio Butelli, Angelo Santino. Engineering the polyphenolic biosynthetic pathway stimulates metabolic and molecular changes during fruit ripening in “Bronze” tomato. Horticulture Research, 2022, 9 (1) : uhac097 DOI:10.1093/hr/uhac097

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Butelli E, Titta L, Giorgio M et al. Enrichment of tomato fruit with health-promoting anthocyanins by expression of selected transcription factors. Nat Biotechnol. 2008; 26: 1301-8.

[2]

de Brito Francisco R, Martinoia E . The vacuolar transportome of plant specialized metabolites. Plant Cell Physiol. 2018; 59: 1326-36.

[3]

De Santis S, Scarano A, Liso M et al. Polyphenol enriched diet administration during pregnancy and lactation prevents dysbiosis in ulcerative colitis predisposed littermates. Frontiers in cellular and infection Microbiology. 2021; 11: 622327.

[4]

dos Santos AL, Chaves-Silva S, Yang L et al. Global analysis of the MATE gene family of metabolite transporters in tomato. BMC Plant Biol. 2017; 17: 185.

[5]

Ewing NN, Bennett AB . Assessment of the number and expression of P-type H+-ATPase genes in tomato. Plant Physiol. 1994; 106: 547-57.

[6]

Fu R, Martin C, Zhang Y . Next-generation plant metabolic engineering, inspired by an ancient Chinese irrigation system. Mol Plant. 2018; 11: 47-57.

[7]

Gerardi C, Tommasi N, Albano C et al. Prunus mahaleb L. fruit extracts: a novel source for natural pigments. Eur Food Res Technol. 2015; 241: 683-95.

[8]

Giovinazzo G, D’Amico L, Paradiso A et al. Antioxidant metabolite profiles in tomato fruit constitutively expressing the grapevine stilbene synthase gene. Plant Biotechnol J. 2005; 3: 57-69.

[9]

Kawata A, Murakami Y, Suzuki S et al. Anti-inflammatory activity of β-carotene, lycopene and tri-n-butylborane, a scavenger of reactive oxygen species. In vivo. 2018; 32: 255-64.

[10]

Lee J, Durst RW, Wrolstad RE . Determination of total monomeric anthocyanin pigment content of fruit juices, beverages, natural colorants, and wines by the pH differential method: collaborative study. Journal - Association of Official Analytical Chemists. 2005; 88: 1269-78.

[11]

Lia A, Gallo A, Marti L et al. EFR-mediated innate immune response in Arabidopsis thaliana is a useful tool for identification of novel ERQC modulators. Genes. 2019; 10: 15.

[12]

Liso M, De Santis S, Scarano A et al. Bronze-tomatoes enriched diet affects the intestinal microbiome in homeostatic and inflammatory conditions. Nutrients. 2018; 10: 1862.

[13]

Liu L, Saho Z, Zhang M et al. Regulation of carotenoid metabolism in tomato. Mol Plant. 2015; 8: 28-39.

[14]

Luo J, Butelli E, Hill L et al. AtMYB12 regulates caffeoyl quinic acid and flavonol synthesis in tomato: expression in fruit results in very high levels of both types of polyphenols. Plant J. 2008; 56: 316-26.

[15]

Magalhães LM, Santos F, Segundo MA et al. Rapid microplate high-throughput methodology for assessment of Folin-Ciocalteu reducing capacity. Talanta. 2010; 83: 441-7.

[16]

Martin C, Li J . Medicine is not health care, food is health care: plant metabolic engineering, diet and human health. New Phytol. 2017; 216: 699-719.

[17]

Mathews H, Clendennen SK, Caldwell CG et al. Activation tagging in tomato identifies a transcriptional regulator of anthocyanin biosynthesis, modification, and transport. Plant Cell. 2003; 15: 1689-703.

[18]

Mertherns F, Kranz H, Bednarek P et al. The Arabidopsis transcription factor MYB12 is a flavonol-specific regulator of phenylpropanoid biosynthesis. Plant Physiol. 2005; 138: 1083-96.

[19]

Pfaffl MW, Horgan GW, Dempfle L . Relative expression software tool (REST) for group-wise comparison and statistical analysis of relative expression results in real-time PCR. Nucleic Acids Res. 2002; 30: e36.

[20]

Rendina N, Nuzzaci M, Sofo A et al. Yield parameters and antioxidant compounds of tomato fruit: the role of plant defence inducers with or without cucumber mosaic virus infection. J Sci Food Agric. 2019; 99: 5541-9.

[21]

Scarano A, Butelli E, De Santis S et al. Combined dietary anthocyanins, flavonols, and stilbenoids alleviate inflammatory bowel disease symptoms in mice. Front Nutr. 2018; 4: 75.

[22]

Scarano A, Chieppa M, Santino A . Plant polyphenols-biofortified foods as a novel tool for the prevention of human gut diseases. Antioxidants. 2020; 9: 1225.

[23]

Singleton VL, Orthofer R, Lamuela-Raventós RM . Analysis of total phenols and other oxidation substrates and antioxidants by means of folin-ciocalteu reagent. Methods Enzymol. 1999; 299: 152-78.

[24]

Stephanopoulos G, Aristidou AA, Nielsen J . The Essence of Metabolic Engineering. In: Metabolic Engineering.Elsevier: San Diego, 1998, 1-20.

[25]

Tang G, Qin J, Dolnikowski G et al. Golden rice is an effective source of vitamin a. Am J Clin Nutr. 2009; 89: 1776-83.

[26]

Zhang Y, Butelli E, Alseekh S et al. Multi-level engineering facilitates the production of phenylpropanoid compounds in tomato. Nat Commun. 2015; 6: 8635.

[27]

Zhang Y, Butelli E, De Stefano R et al. Anthocyanins double the shelf life of tomatoes by delaying overripening and reducing susceptibility to gray mold. Curr Biol. 2013; 23: 1094-100.

[28]

Zhu Q, Wang B, Tan J et al. Plant synthetic metabolic engineering for enhancing crop nutritional quality. Plant Comm. 2020; 1: 100017.

PDF (852KB)

52

Accesses

0

Citation

Detail

Sections
Recommended

/