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Vitamin A deficiency remains a severe global health issue, which creates a need to biofortify crops with provitamin A carotenoids (PACs). Expanding plant cell capacity for synthesis and storing of PACs outside the plastids is a promising biofortification strategy that has been little explored. Here, we engineered PAC formation and sequestration in the cytosol of Nicotiana benthamiana leaves, Arabidopsis seeds, and citrus callus cells, using a fungal (Neurospora crassa) carotenoid pathway that consists of only three enzymes converting C isopentenyl building blocks formed from mevalonic acid into PACs, including β-carotene. This strategy led to the accumulation of significant amounts of phytoene and γ- and β-carotene, in addition to fungal, health-promoting carotenes with 13 conjugated double bonds, such as the PAC torulene, in the cytosol. Increasing the isopentenyl diphosphate pool by adding a truncated Arabidopsis hydroxymethylglutaryl-coenzyme A reductase substantially increased cytosolic carotene production. Engineered carotenes accumulate in cytosolic lipid droplets (CLDs), which represent a novel sequestering sink for storing these pigments in plant cytosol. Importantly, β-carotene accumulated in the cytosol of citrus callus cells was more light stable compared to compared with plastidial β-carotene. Moreover, engineering cytosolic carotene formation increased the number of large-sized CLDs and the levels of β-apocarotenoids, including retinal, the aldehyde corresponding to vitamin A. Collectively, our study opens up the possibility of exploiting the high-flux mevalonic acid pathway for PAC biosynthesis and enhancing carotenoid sink capacity in green and non-green plant tissues, especially in lipid-storing seeds, and thus paves the way for further optimization of carotenoid biofortification in crops.
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http://dx.doi.org/10.1016/j.molp.2023.05.003 | DOI Listing |
Biotechnol Adv
September 2025
Science Center for Future Foods, Jiangnan University, 1800 Lihu Road, Wuxi 214122, China; Key Laboratory of Industrial Biotechnology, Ministry of Education, School of Biotechnology, Jiangnan University, 1800 Lihu Road, Wuxi 214122, China; Jiangsu Province Basic Research Center for Synthetic Biology,
Carotenoids and their cleavage products (referred to as apocarotenoids) have functional properties such as antioxidant activity, fragrance, and color that are important in the pharmaceutical, healthcare, cosmetics, and food industries. Currently, carotenoids and apocarotenoids are primarily obtained through extraction from natural sources or chemical synthesis, both of which are associated with inefficiencies, environmental impact, and product limitations. Ongoing advances in metabolic engineering and synthetic biology have positioned heterologous biosynthesis as a promising, efficient, and sustainable production strategy.
View Article and Find Full Text PDFFood Sci Biotechnol
October 2025
Department of Herbal Medicine, College of Pharmacy, Wonkwang University, 460 Iksandae-Ro, Iksan, Jeonbuk 54538 Republic of Korea.
Lycii fructus (LF) is widely used in traditional Asian medicine and as a dietary supplement due to its potential health benefits. Zeaxanthin (ZEA), a key carotenoid in LF, is crucial in supporting eye health. However, the effects of LF and ZEA on receptor activator of NF-kappaB Ligand (RANKL)-mediated osteoclast differentiation were not confirmed.
View Article and Find Full Text PDF, commonly known as sweet potato, is an increasingly valued functional food because of its vivid coloration and rich bioactive compounds, especially anthocyanins and carotenoids, such as ipomoeaxanthin. This review focuses on the bioavailability, mechanisms of action, and therapeutic potential of sweet potato-derived anthocyanins in diabetes and metabolic disorders. Anthocyanins, which are plant pigments, exhibit high antioxidant activity by scavenging free radicals and stimulating endogenous antioxidant enzymes such as catalase and superoxide dismutase, thereby protecting cellular structures from damage and reducing oxidative damage in vital metabolic organs such as the pancreas, liver, brain, and muscles.
View Article and Find Full Text PDFPhysiol Plant
September 2025
Agriculture and Agri-Food Canada, Saskatoon Research and Development Centre, Saskatoon, Saskatchewan, Canada.
Dormancy release and germination of the seed are two separate, but continuous phases controlled by both external (e.g., light and temperature) and internal (e.
View Article and Find Full Text PDFInt J Biol Macromol
September 2025
Plant Biotechnology Research Center, Fudan-SJTU-Nottingham Plant Biotechnology R&D Center, School of Agriculture and Biology, Shanghai Jiao Tong University, Minhang, Shanghai, 200240, China. Electronic address:
Vitamin A deficiency is one of the most severe micronutrient-related health issues worldwide. Tomatoes, a widely cultivated crop for their adaptability, nutritional value, and lycopene content (a beta-carotene precursor), are ideal candidates for biofortification. In this study, CRISPR-mediated knockout mutants (cr-SlLCYe and cr-SlBCH) were generated to enhance the precursor supply to the β-carotene biosynthetic pathway and reduce its degradation.
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