Research Papers

Enhancing Folate Content in Japonica Rice Through Co-expression of OsADCS and OsGTPCHI Indica Alleles

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  • 1Rice Research Institute, Shenyang Agricultural University, Shenyang 110866, China
    2State Key Laboratory of Rice Biology and Breeding / China National Rice Improvement Centre, China National Rice Research Institute, Hangzhou 310006, China
    3Crop Research Institute, Ningxia Academy of Agriculture and Forestry Sciences, Yinchuan 750002, China

Received date: 2024-12-11

  Accepted date: 2025-01-23

  Online published: 2025-06-16

Abstract

Rice is a poor source of folate, an essential micronutrient for the body. Biofortification offers an effective way to enhance the folate content of rice and alleviate folate deficiencies in humans. In this study, we confirmed that OsADCS and OsGTPCHI, encoding the initial enzymes necessary for folate synthesis, positively regulate folate accumulation in knockout mutants of both japonica and indica rice backgrounds. The folate content in the low-folate japonica variety was slightly increased by the expression of the indica alleles driven by the endosperm-specific promoter. We further obtained co-expression lines by stacking OsADCS and OsGTPCHI genes; the folate accumulation in brown rice and polished rice reached 5.65 μg/g and 2.95 μg/g, respectively, representing 37.9-fold and 26.5-fold increases compared with the wild type. Transcriptomic analysis of rice grains from six transgenic lines showed that folate changes affected biological pathways involved in the synthesis and metabolism of rice seed storage substances, while the expression of other folate synthesis genes was weakly regulated. In addition, we identified Aus rice as a high-folate germplasm carrying superior haplotypes of OsADCS and OsGTPCHI through natural variation. This study provides an alternative and effective complementary strategy for rice biofortification, promoting the rational combination of metabolic engineering and conventional breeding to breed high-folate varieties.

Cite this article

Lai Changkai, Hu Shikai, Jiao Guiai, Wang Ling, Shao Gaoneng, Zhao Fengli, Xie Lihong, Wei Xiangjin, Lü Yusong, Sheng Zhonghua, Tang Shaoqing, Hu Peisong . Enhancing Folate Content in Japonica Rice Through Co-expression of OsADCS and OsGTPCHI Indica Alleles[J]. Rice Science, 2025 , 32(3) : 353 -366 . DOI: 10.1016/j.rsci.2025.01.008

References

[1] Aiyswaraya K S, Saraswathi R, Ramchander S, et al. 2020. Review on: Folate in crop plants. Int J Curr Microbiol Appl Sci, 9(3): 2831-2836.
[2] Akhtar T A, Orsomando G, Mehrshahi P, et al. 2010. A central role for gamma-glutamyl hydrolases in plant folate homeostasis. Plant J, 64(2): 256-266.
[3] Anukul N, Ramos R A, Mehrshahi P, et al. 2010. Folate polyglutamylation is required for rice seed development. Rice, 3: 181-193.
[4] Basset G, Quinlivan E P, Ziemak M J, et al. 2002. Folate synthesis in plants: The first step of the pterin branch is mediated by a unique bimodular GTP cyclohydrolase I. Proc Natl Acad Sci USA, 99(19): 12489-12494.
[5] Basset G J C, Quinlivan E P, Ravanel S, et al. 2004a. Folate synthesis in plants: The p-aminobenzoate branch is initiated by a bifunctional PabA-PabB protein that is targeted to plastids. Proc Natl Acad Sci USA, 101(6): 1496-1501.
[6] Basset G J C, Ravanel S, Quinlivan E P, et al. 2004b. Folate synthesis in plants: The last step of the p-aminobenzoate branch is catalyzed by a plastidial aminodeoxychorismate lyase. Plant J, 40(4): 453-461.
[7] Bhullar N K, Gruissem W. 2013. Nutritional enhancement of rice for human health: The contribution of biotechnology. Biotechnol Adv, 31(1): 50-57.
[8] Blancquaert D, Storozhenko S, Loizeau K, et al. 2010. Folates and folic acid: From fundamental research toward sustainable health. Crit Rev Plant Sci, 29(1): 14-35.
[9] Blancquaert D, van Daele J, Storozhenko S, et al. 2013a. Rice folate enhancement through metabolic engineering has an impact on rice seed metabolism, but does not affect the expression of the endogenous folate biosynthesis genes. Plant Mol Biol, 83(4/5): 329-349.
[10] Blancquaert D, Storozhenko S, van Daele J, et al. 2013b. Enhancing pterin and para-aminobenzoate content is not sufficient to successfully biofortify potato tubers and Arabidopsis thaliana plants with folate. J Exp Bot, 64(12): 3899-3909.
[11] Blancquaert D, van Daele J, Strobbe S, et al. 2015. Improving folate (vitamin B9) stability in biofortified rice through metabolic engineering. Nat Biotechnol, 33(10): 1076-1078.
[12] Boggio S B, Palatnik J F, Heldt H W, et al. 2000. Changes in amino acid composition and nitrogen metabolizing enzymes in ripening fruits of Lycopersicon esculentum Mill. Plant Sci, 159(1): 125-133.
[13] Bouis H E, Saltzman A. 2017. Improving nutrition through biofortification: A review of evidence from HarvestPlus, 2003 through 2016. Glob Food Sec, 12: 49-58.
[14] Cole P D, Kamen B A, Gorlick R, et al. 2001. Effects of over-expression of gamma-glutamyl hydrolase on methotrexate metabolism and resistance. Cancer Res, 61(11): 4599-4604.
[15] de la Garza R D, Quinlivan E P, Klaus S M J, et al. 2004. Folate biofortification in tomatoes by engineering the pteridine branch of folate synthesis. Proc Natl Acad Sci USA, 101(38): 13720-13725.
[16] de la Garza R I D,Gregory 3rd J F, Hanson A D. 2007. Folate biofortification of tomato fruit. Proc Natl Acad Sci USA, 104(10): 4218-4222.
[17] Dong W, Cheng Z J, Wang X L, et al. 2011. Determination of folate content in rice germplasm (Oryza sativa L.) using tri-enzyme extraction and microbiological assays. Int J Food Sci Nutr, 62(5): 537-543.
[18] Dong W, Cheng Z J, Lei C L, et al. 2014. Overexpression of folate biosynthesis genes in rice (Oryza sativa L.) and evaluation of their impact on seed folate content. Plant Foods Hum Nutr, 69(4): 379-385.
[19] Fabio L C M, Lucas T M R, Sandra H U T, et al. 2018. Rice (Oryza sativa) breeding strategies for grain biofortification. Afr J Biotechnol, 17(14): 466-477.
[20] Gillies S A, McIntosh S R, Henry R J. 2008. A Cereal Crop with Enhanced Folate: Rice Transgenic for Wheat HPPK/DHPS. ComBio, Canberra, ACT, September 21-25, 2008.
[21] Gorelova V, Ambach L, Rébeillé F, et al. 2017. Folates in plants: Research advances and progress in crop biofortification. Front Chem, 5: 21.
[22] Hossain T, Rosenberg I, Selhub J, et al. 2004. Enhancement of folates in plants through metabolic engineering. Proc Natl Acad Sci USA, 101(14): 5158-5163.
[23] Hui S Z, Li H J, Mawia A M, et al. 2022. Production of aromatic three-line hybrid rice using novel alleles of BADH2. Plant Biotechnol J, 20(1): 59-74.
[24] Khan A, Pudhuvai B, Shrestha A, et al. 2024. CRISPR-mediated iron and folate biofortification in crops: Advances and perspectives. Biotechnol Genet Eng Rev, 40(4): 4138-4168.
[25] Kiekens F, Blancquaert D, Devisscher L, et al. 2015. Folates from metabolically engineered rice: A long-term study in rats. Mol Nutr Food Res, 59(3): 490-500.
[26] Kim D, Langmead B, Salzberg S L. 2015. HISAT: A fast spliced aligner with low memory requirements. Nat Methods, 12(4): 357-360.
[27] Lian T, Wang X X, Li S, et al. 2022. Comparative transcriptome analysis reveals mechanisms of folate accumulation in maize grains. Int J Mol Sci, 23(3): 1708.
[28] Livak K J, Schmittgen T D. 2001. Analysis of relative gene expression data using real-time quantitative PCR and the 2-ΔΔCT method. Methods, 25(4): 402-408.
[29] Love M I, Huber W, Anders S. 2014. Moderated estimation of fold change and dispersion for RNA-seq data with DESeq2 Genome Biol, 15(12): 550.
[30] Majumder S, Datta K, Datta S K. 2019. Rice biofortification: High iron, zinc, and vitamin-A to fight against ‘hidden hunger’. Agronomy, 9(12): 803.
[31] McIntosh S R, Brushett D, Henry R J. 2008. GTP cyclohydrolase 1 expression and folate accumulation in the developing wheat seed. J Cereal Sci, 48(2): 503-512.
[32] Mohidem N A, Hashim N, Shamsudin R, et al. 2022. Rice for food security: Revisiting its production, diversity, rice milling process and nutrient content. Agriculture, 12(6): 741.
[33] Nar H, Huber R, Auerbach G, et al. 1995. Active site topology and reaction mechanism of GTP cyclohydrolase I. Proc Natl Acad Sci USA, 92(26): 12120-12125.
[34] Paine J A, Shipton C A, Chaggar S, et al. 2005. Improving the nutritional value of Golden Rice through increased pro-vitamin A content. Nat Biotechnol, 23(4): 482-487.
[35] Qian D D, Qiu B, Zhou N, et al. 2020. Hypotensive activity of transgenic rice seed accumulating multiple antihypertensive peptides. J Agric Food Chem, 68(27): 7162-7168.
[36] Saltzman A, Birol E, Bouis H E, et al. 2013. Biofortification: Progress toward a more nourishing future. Glob Food Secur, 2(1): 9-17.
[37] Shan Q J, Liu J H, Li W, et al. 2019. Comprehensive evaluation of biosynthesis, accumulation, regulation of folate and vitamin C in waxy maize (Zea mays L. var. Ceratina) with kernel development. J Cereal Sci, 87: 215-224.
[38] Sharma P, Aggarwal P, Kaur A. 2017. Biofortification: A new approach to eradicate hidden hunger. Food Rev Int, 33(1): 1-21.
[39] Shohag M J I, Wei Y Y, Zhang J, et al. 2020. Genetic and physiological regulation of folate in pak choi (Brassica rapa subsp. Chinensis) germplasm. J Exp Bot, 71(16): 4914-4929.
[40] Sohta Y, Ohta T, Masada M. 1997. Purification and some properties of GTP cyclohydrolase I from spinach leaves. Biosci Biotechnol Biochem, 61(7): 1081-1085.
[41] Storozhenko S, de Brouwer V, Volckaert M, et al. 2007. Folate fortification of rice by metabolic engineering. Nat Biotechnol, 25(11): 1277-1279.
[42] Strobbe S, van der Straeten D. 2017. Folate biofortification in food crops. Curr Opin Biotechnol, 44: 202-211.
[43] van der Straeten D, Bhullar N K, de Steur H, et al. 2020. Multiplying the efficiency and impact of biofortification through metabolic engineering. Nat Commun, 11(1): 5203.
[44] Viswanathan V K, Green J M, Nichols B P. 1995. Kinetic characterization of 4-amino 4-deoxychorismate synthase from Escherichia coli. J Bacteriol, 177(20): 5918-5923.
[45] Wakasa K, Hasegawa H, Nemoto H, et al. 2006. High-level tryptophan accumulation in seeds of transgenic rice and its limited effects on agronomic traits and seed metabolite profile. J Exp Bot, 57(12): 3069-3078.
[46] Waller J C, Akhtar T A, Lara-Núñez A, et al. 2010. Developmental and feedforward control of the expression of folate biosynthesis genes in tomato fruit. Mol Plant, 3(1): 66-77.
[47] Wirth J, Poletti S, Aeschlimann B, et al. 2009. Rice endosperm iron biofortification by targeted and synergistic action of nicotianamine synthase and ferritin. Plant Biotechnol J, 7(7): 631-644.
[48] Zhao M C, Lin Y J, Chen H. 2020. Improving nutritional quality of rice for human health. Theor Appl Genet, 133(5): 1397-1413.
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