| [1] |
Sowbhagya HB, Sampathu SR, Krishnamurthy N. 2004. Natural colorant from marigold-chemistry and technology. |
| [2] |
Sharma E, Lal P, Kumar A, Prasad K, Tiwari RK, et al. 2024. Colourful staples on your table: Unus ex genere suo. |
| [3] |
Niu H, Aruhan, Surenjidiin S, Zhang LM, Zhang CH, et al. 2024. Yinshan Zhengyao: exploring the power of food and inheriting healthy thoughts. |
| [4] |
Xie Y, Lu ZJ, Du LB, Huang QY, Liang AX. 2025. The anti-aging effect of a nutritional supplement based on Lycopene and grape extract. |
| [5] |
Hu QY, Tang XX, Li Z, Wei LF, Wu XP, et al. 2025. Effects of lactic acid bacteria fermentation on antioxidant activity and sensory quality of Rosa sterilis S D Shi. |
| [6] |
Chew EY, Clemons TE, Agrón E, Domalpally A, Keenan TDL, et al. 2022. Long-term outcomes of adding lutein/zeaxanthin and ω-3 fatty acids to the AREDS supplements on age-related macular degeneration progression: AREDS2 Report 28. |
| [7] |
Kalu K, Lin S, McMonnies C, Arcot J. 2024. Relative bioavailability of lutein and zeaxanthin in the presence of Omega-3 supplements and oxidative stress levels in humans. |
| [8] |
Johra FT, Bepari AK, Bristy AT, Reza HM. 2020. A mechanistic review of β-carotene, lutein, and zeaxanthin in eye health and disease. |
| [9] |
Grudzinski W, Luchowski R, Ostrowski J, Sęk A, Mendes Pinto MM, et al. 2023. Physiological significance of the heterogeneous distribution of zeaxanthin and lutein in the retina of the human eye. |
| [10] |
Chen W, Zhang H, Liu G, Kang J, Wang B, et al. 2022. Lutein attenuated methylglyoxal-induced oxidative damage and apoptosis in PC12 cells via the PI3K/Akt signaling pathway. |
| [11] |
Han J, Wang R, Bai L, Liu Y, Liao M, et al. 2024. Impact of serum carotenoids on cardiovascular mortality risk in middle-aged and elderly adults with metabolic syndrome. |
| [12] |
Smeriglio A, Lionti J, Ingegneri M, Burlando B, Cornara L, et al. 2023. Xanthophyll-rich extract of Phaeodactylum tricornutum Bohlin as new photoprotective cosmeceutical agent: safety and efficacy assessment on in vitro reconstructed human epidermis model. |
| [13] |
van Breemen RB, Dong L, Pajkovic ND. 2012. Atmospheric pressure chemical ionization tandem mass spectrometry of carotenoids. |
| [14] |
Erdoğan A, Karataş AB, Demir D, Demirel Z, Aktürk M, et al. 2024. Comprehensive analysis of lutein and loroxanthin in Scenedesmus obliquus: from quantification to isolation. |
| [15] |
Sadukha S, Mehta B, Chatterjee S, Ghosh A, Dineshkumar R. 2023. Sequential downstream process for concurrent extraction of lutein, phytol, and biochemicals from marine microalgal biomass as a sustainable biorefinery. |
| [16] |
Liu Z, van den Berg C, Weusthuis RA, Dragone G, Mussatto SI. 2021. Strategies for an improved extraction and separation of lipids and carotenoids from oleaginous yeast. |
| [17] |
Zhang L, Wang S, Yang R, Mao J, Jiang J, et al. 2019. Simultaneous determination of tocopherols, carotenoids and phytosterols in edible vegetable oil by ultrasound-assisted saponification, LLE and LC-MS/MS. |
| [18] |
Cortés-Herrera C, Chacón A, Artavia G, Granados-Chinchilla F. 2019. Simultaneous LC/MS analysis of carotenoids and fat-soluble vitamins in Costa Rican avocados (Persea americana Mill.). |
| [19] |
Awad AM, Kumar P, Ismail-Fitry MR, Jusoh S, Ab Aziz MF, et al. 2021. Green extraction of bioactive compounds from plant biomass and their application in meat as natural antioxidant. |
| [20] |
Sun J, Wei Z, Xue C. 2023. Recent research advances in astaxanthin delivery systems: fabrication technologies, comparisons and applications. |
| [21] |
Hong HT, Takagi T, O'Hare TJ. 2022. An optimal saponification and extraction method to determine carotenoids in avocado. |
| [22] |
Nan S, Zhu Z, Xie Y, Wang F, Lv T, et al. 2026. Recognition-mediated electrochemiluminescence sensors: recent five-year breakthroughs and future directions in acute myocardial infarction biomarker analysis. |
| [23] |
Zhu Y, Qin J, Wu W, Cai L. 2024. Development and validation of a novel high-performance liquid chromatography (HPLC) method for the detection of related substances of pralsetinib, a new anti-lung cancer drug. |
| [24] |
Aguillón-Páez YJ, Díaz GJ. 2023. Lutein and zeaxanthin content in 21 plant species from a very humid premontane forest in Colombia palatable for free-range laying hens. |
| [25] |
Wei Y, Huang C, Chen L, Chen Q, Hou J, et al. 2024. Determination of chlordimeform and its metabolite residue in milk by gas chromatography–tandem mass spectrometry. |
| [26] |
Bjørstorp S, Malmstrøm J. 2024. Quantitative 31P NMR spectroscopy platform method for the assay of oligonucleotides as pure drug substances and in drug product formulations using the internal standard method. |
| [27] |
Zhang R, Tang N, Zhu H, Xi Y, Cheng H, et al. 2024. Compositional analysis and quantitative evaluation of organic emissions from asphalt materials: improvements and refinements. |
| [28] |
Jing YS, Hu JY, Wang ZY, Tao C, Zhang SL, et al. 2025. Research progress on extraction, structure, bioactivity, structure-activity relationship and product applications of polysaccharides from Mori Fructus. |
| [29] |
Zhao DN, Zhou XM, Gong XJ, Quan WX, Gao GS, et al. 2024. Optimization of ultrasound-assisted extraction of flavonoids from Emilia prenanthoidea DC. using response surface methodology and exploration of the ecological factors on total flavonoid and antioxidant activity. |
| [30] |
Zeng Y, Zhao L, Hao M, Maimaiti M, Li Z, et al. 2024. Analysis of an aqueous extract from turkish galls based on multicomponent qualitative and quantitative analysis combined with network pharmacology and chemometric analysis. |
| [31] |
Zhao J, Shi T, Zhu W, Chen L, Guan Y, et al. 2020. Quality control method of sterols in fermented Cordyceps sinensis based on combined fingerprint and quantitative analysis of multicomponents by single marker. |
| [32] |
Champati BB, Das PK, Sahoo C, Ray A, Jena S, et al. 2024. Chemical fingerprinting and multicomponent quantitative analysis for quality control of Cinnamomum tamala collected from Western Himalaya by HPLC-DAD. |
| [33] |
Zhu B, Hu D, Zhao J, Li S. 2024. Rapid identification and quantification of Pseudostellaria heterophylla with its adulterants by HPLC-CAD fingerprint combined with improved quantitative analysis of multi-components by single marker (QAMS). |
| [34] |
Li DW, Zhu M, Shao YD, Shen Z, Weng CC, et al. 2016. Determination and quality evaluation of green tea extracts through qualitative and quantitative analysis of multi-components by single marker (QAMS). |
| [35] |
Gregory GK, Chen TS, Philip T. 1986. Quantitative analysis of lutein esters in marigold flowers (Tagetes erecta) by high performance liquid chromatography. |
| [36] |
Jiang XY, Chen LS, Zhou CS. 2005. Lutein and lutein esters in marigold flowers by high performance chromatography. |
| [37] |
Abdel-Aal EM, Rabalski I. 2015. Composition of lutein ester regioisomers in marigold flower, dietary supplement, and herbal tea. |
| [38] |
Saini RK, Ahn HY, Park GW, Shin JW, Lee JH, et al. 2023. Quantitative profiling of carotenoids, tocopherols, phytosterols, and fatty acids in the flower petals of ten marigold (Tagetes spp. L.) cultivars. |
| [39] |
Fratianni A, Niro S, Alam MDR, Cinquanta L, Di Matteo M, et al. 2018. Effect of a physical pre-treatment and drying on carotenoids of goji berries (Lycium barbarum L.). |
| [40] |
Young JC, Abdel-Aal EM, Rabalski I, Blackwell BA. 2007. Identification of synthetic regioisomeric lutein esters and their quantification in a commercial lutein supplement. |
| [41] |
de Jesus Ornelas-Paz J, Yahia EM, Gardea-Bejar A. 2007. Identification and quantification of xanthophyll esters, carotenes, and tocopherols in the fruit of seven Mexican mango cultivars by liquid chromatography−atmospheric pressure chemical ionization−time-of-flight mass spectrometry [LC-(APcI+)-MS]. |