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1.
Food Res Int ; 193: 114812, 2024 Oct.
Article in English | MEDLINE | ID: mdl-39160037

ABSTRACT

Microgreens, also called superfoods, emerge because of their high levels of nutrients, diverse flavour profiles, and sustainable cultivation methods, which make them culinary delights and valuable to a healthy and flavorful diet. The present study investigated Brassicaceae family microgreens, proposing a novel system (quality indices) that allows scoring among them. Fourteen Brassica microgreen species were morphological, phytochemical, and sensorial investigated. The morphological assessment revealed that radish microgreens exhibited the highest leaf area (p < 0.05), while red mizuna demonstrated superior yield. Cauliflower microgreens contained the highest concentrations of ascorbic acid (HPLC-DAD) and total phenolic content (p < 0.05). Phytochemical analysis using HPLC-MS/MS identified over 18 glucosinolates and phenolic compounds. Red mustard and red cabbage showed the highest glucosinolate content (p < 0.05). Watercress exhibited the highest phenolic compound content (p < 0.05), primarily flavonoids, while broccoli and radish contained the highest isothiocyanate levels. Cauliflower microgreens resulted in the most consumer-accepted variety. Appling quality indices scoring system identified radish, cauliflower, and broccoli microgreens as the most promising species. This study underscores the potential of Brassica microgreens as an excellent source of health-promoting phytochemicals with favorable market acceptance, providing valuable insights for both nutritional research and commercial applications.


Subject(s)
Brassicaceae , Glucosinolates , Phenols , Phytochemicals , Taste , Phytochemicals/analysis , Glucosinolates/analysis , Phenols/analysis , Brassicaceae/chemistry , Chromatography, High Pressure Liquid , Tandem Mass Spectrometry , Humans , Ascorbic Acid/analysis , Flavonoids/analysis , Brassica/chemistry , Plant Leaves/chemistry , Isothiocyanates/analysis , Raphanus/chemistry
2.
Molecules ; 29(16)2024 Aug 10.
Article in English | MEDLINE | ID: mdl-39202882

ABSTRACT

Lunaria annua L. (Brassicaceae) is an ornamental plant newly identified in Europe as a promising industrial oilseed crop for its valuable very-long-chain monounsaturated fatty acids (MUFAs), especially erucic acid (EA) and nervonic acid (NA). L. annua seeds were obtained from annual winter-type plants selected and cultivated in Northern France. Using a systematic multiple-method approach, we set out to determine the profile and content of glucosinolates (GSLs), which are the relevant chemical tag of Brassicaceae. Intact GSLs were analyzed through a well-established LC-MS method. Identification and quantification were performed by HPLC-PDA of desulfo-GSLs (dGLs) according to the official EU ISO method. Moreover, GSL structures were confirmed by GC-MS analysis of the related isothiocyanates (ITCs). Seven GSLs were identified, directly or indirectly, as follows: 1-methylethyl GSL, (1S)-1-methylpropyl GSL, (Rs)-5-(methylsulfinyl)pentyl GSL, (Rs)-6-(methylsulfinyl)hexyl GSL, (2S)-2-hydroxy-4-pentenyl GSL, 2-phenylethyl GSL, and 1-methoxyindol-3-ylmethyl GSL. In other respects, the FA composition of the seed oil was determined. Results revealed cultivated L. annua seed to be a source of NA-rich oil, and presscake as a valuable coproduct. This presscake is indeed rich in GSLs (4.3% w/w), precursors of promising bioactive molecules for agricultural and nutraceutical applications.


Subject(s)
Brassicaceae , Fatty Acids , Gas Chromatography-Mass Spectrometry , Glucosinolates , Seeds , Glucosinolates/analysis , Glucosinolates/chemistry , Seeds/chemistry , Fatty Acids/analysis , Fatty Acids/chemistry , Gas Chromatography-Mass Spectrometry/methods , Chromatography, High Pressure Liquid/methods , Brassicaceae/chemistry , Mass Spectrometry/methods , Liquid Chromatography-Mass Spectrometry
3.
Methods Enzymol ; 702: 229-245, 2024.
Article in English | MEDLINE | ID: mdl-39155114

ABSTRACT

In Brassica plants, glucosinolates are a diverse class of natural products, of which aliphatic methionine-derived glucosinolates are the most abundant form. Their structural diversity comes from the elongation of some side-chains by up to 9 carbons, which, after the formation of the core glucosinolate structure, can undergo further chemical modifications. Methylthioalkylmalate synthase (MAMS) catalyzes the iterative elongation process for aliphatic methionine-derived glucosinolates. Most biochemical studies on MAMS have been performed using liquid chromatography/mass spectrometry (LC/MS)-based assays or high-performance liquid chromatography (HPLC)-based assays. The LC/MS- and HPLC-based methods are endpoint assays, which cannot be monitored in real time and require a laborious process for data collection. These analytical methods are inefficient for performing multiple enzymatic assays needed to determine steady-state kinetic parameters or for mechanistic evaluation of pH-dependence and kinetic isotope effect studies. Although the function of MAMS has long been defined, there is a gap in knowledge as it pertains to biochemical characterization of this plant enzyme. Part of this may be due to the lack of efficient methods that can be used for this type of research. This chapter describes a continuous photometric assay to track MAMS activity in real time using the 4-aldrithiol reagent for reaction detection.


Subject(s)
Enzyme Assays , Enzyme Assays/methods , Photometry/methods , Kinetics , Alkyl and Aryl Transferases/metabolism , Alkyl and Aryl Transferases/chemistry , Brassica/enzymology , Brassica/chemistry , Glucosinolates/chemistry , Glucosinolates/analysis , Glucosinolates/metabolism
4.
Molecules ; 29(13)2024 Jun 21.
Article in English | MEDLINE | ID: mdl-38998918

ABSTRACT

The Brassicaceae family, commonly referred to as cruciferous plants, is globally cultivated and consumed, with the Brassica genus being particularly renowned for its functional components. These vegetables are rich sources of nutrients and health-promoting phytochemicals, garnering increased attention in recent years. This study presents a comprehensive microscopic, chromatographic, and spectroscopic characterization of Brassica napus L. seeds from Kazakhstan aimed at elucidating their morphological features and chemical composition. Microscopic analysis revealed distinct localization of flavonoids, total lipids, and alkaloids. High-performance thin-layer chromatography (HPTLC) analysis of seed extracts demonstrated a complex chemical profile with significant quantities of non-polar compounds in the hexane extracts. Additionally, methanolic extracts revealed the presence of diverse chemical compounds, including alkaloids, flavonoids, and glucosinolates. The chemical composition exhibited varietal differences across different Brassica species, with B. napus L. seeds showing higher concentrations of bioactive compounds. Furthermore, liquid chromatography-quadrupole time-of-flight mass spectrometry (LC-QToF-MS) analysis provided insights into the chemical composition, with sinapine isomers, feruloyl, and sinapoyl choline derivatives as major compounds in the seeds. This study contributes to a better understanding of the chemical diversity and quality control methods' approximations of B. napus L. seeds, highlighting their importance in functional food and nutraceutical applications.


Subject(s)
Brassica napus , Seeds , Brassica napus/chemistry , Seeds/chemistry , Plant Extracts/chemistry , Plant Extracts/analysis , Phytochemicals/analysis , Phytochemicals/chemistry , Chromatography, Thin Layer/methods , Chromatography, High Pressure Liquid/methods , Flavonoids/analysis , Flavonoids/chemistry , Alkaloids/analysis , Alkaloids/chemistry , Chromatography, Liquid/methods , Mass Spectrometry/methods , Glucosinolates/analysis , Glucosinolates/chemistry
5.
Food Chem ; 454: 139782, 2024 Oct 01.
Article in English | MEDLINE | ID: mdl-38795626

ABSTRACT

The effect of heat treatment on the abundant bioactive compounds in moringa seed kernels (MSKs) during different degrees of roasting remains sparingly explored despite the flour of roasted MSKs has been incorporated into the human diet (e.g., cakes, cookies, and burgers) as a substitute to enrich the nutritional content. Therefore, we investigated the impacts of different roasting conditions (e.g., temperature and duration) on bioactive compounds (e.g., glucosinolates (GSLs), phenolic acids and alkaloids) and antioxidant capacity of MSKs. Our results showed that light and medium roasting increased the glucomoringin (GMG, the main GSL in MSKs) content from 43.7 (unroasted MSKs) to 69.7-127.3 µmol/g MSKs (dry weight), while excessive/dark roasting caused thermally-induced degradation of GMG (trace/undetectable level) in MSKs, resulting in the formation of various breakdown products (e.g., thiourea, nitrile, and amide). In addition, although roasting caused a significant reduction of some phenolic compounds (e.g., gallic, chlorogenic, p-coumaric acids, and trigonelline), other phenolic acids (e.g., caffeic and ferulic acids) and alkaloids (e.g., caffeine, theobromine, and theophylline) remarkably increased after roasting, which may contribute to the enhanced total phenolic content (up to 2.9-fold) and antioxidant capacity (up to 5.8-fold) of the roasted MSKs.


Subject(s)
Cooking , Hot Temperature , Moringa , Phenols , Seeds , Seeds/chemistry , Phenols/chemistry , Phenols/analysis , Moringa/chemistry , Antioxidants/chemistry , Antioxidants/analysis , Plant Extracts/chemistry , Glucosinolates/chemistry , Glucosinolates/analysis
6.
Int J Mol Sci ; 25(9)2024 Apr 29.
Article in English | MEDLINE | ID: mdl-38732049

ABSTRACT

In this study, the variability of major glucosinolates in the leaf lamina of 134 Chinese cabbage accessions was investigated using Acquity ultra-performance liquid chromatography (UPLC-ESI-MS/MS). A total of twenty glucosinolates were profiled, of which glucobrassicanapin and gluconapin were identified as the predominant glucosinolates within the germplasm. These two glucosinolates had mean concentration levels above 1000.00 µmol/kg DW. Based on the principal component analysis, accessions IT186728, IT120044, IT221789, IT100417, IT278620, IT221754, and IT344740 were separated from the rest in the score plot. These accessions exhibited a higher content of total glucosinolates. Based on the VIP values, 13 compounds were identified as the most influential and responsible for variation in the germplasm. Sinigrin (r = 0.73), gluconapin (r = 0.78), glucobrassicanapin (r = 0.70), epiprogoitrin (r = 0.73), progoitrin (r = 0.74), and gluconasturtiin (r = 0.67) all exhibited a strong positive correlation with total glucosinolate at p < 0.001. This indicates that each of these compounds had a significant influence on the overall glucosinolate content of the various accessions. This study contributes valuable insights into the metabolic diversity of glucosinolates in Chinese cabbage, providing potential for breeding varieties tailored to consumer preferences and nutritional demands.


Subject(s)
Brassica rapa , Glucosinolates , Tandem Mass Spectrometry , Glucosinolates/analysis , Glucosinolates/metabolism , Tandem Mass Spectrometry/methods , Brassica rapa/genetics , Brassica rapa/chemistry , Brassica rapa/metabolism , Chromatography, High Pressure Liquid/methods , Spectrometry, Mass, Electrospray Ionization/methods , Plant Leaves/chemistry , Plant Leaves/metabolism , Principal Component Analysis
7.
Food Chem ; 452: 139565, 2024 Sep 15.
Article in English | MEDLINE | ID: mdl-38759437

ABSTRACT

Microgreens constitute natural-based foods with health-promoting properties mediated by the accumulation of glucosinolates (GLs) and phenolic compounds (PCs), although their bioaccessibility may limit their nutritional potential. This work subjected eight Brassicaceae microgreens to in vitro gastrointestinal digestion and large intestine fermentation before the metabolomics profiling of PCs and GLs. The application of multivariate statistics effectively discriminated among species and their interaction with in vitro digestion phases. The flavonoids associated with arugula and the aliphatic GLs related to red cabbage and cauliflower were identified as discriminant markers among microgreen species. The multi-omics integration along in vitro digestion and fermentation predicted bioaccessible markers, featuring potential candidates that may eventually be responsible for these functional foods' nutritional properties. This combined analytical and computational framework provided a promising platform to predict the nutritional metabolome-wide outcome of functional food consumption, as in the case of microgreens.


Subject(s)
Brassicaceae , Glucosinolates , Metabolomics , Polyphenols , Glucosinolates/metabolism , Glucosinolates/analysis , Glucosinolates/chemistry , Polyphenols/metabolism , Polyphenols/chemistry , Polyphenols/analysis , Brassicaceae/metabolism , Brassicaceae/chemistry , Digestion , Humans , Chemometrics , Plant Extracts/metabolism , Plant Extracts/chemistry
8.
J Agric Food Chem ; 72(19): 11278-11291, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38708781

ABSTRACT

Moringa seeds are an excellent dietary source of phytochemicals (i.e., glucosinolates, GSLs; isothiocyanates, ITCs) with health-beneficial effects. Although numerous studies have been conducted on moringa seeds, the effect of germination on the regulation of GSLs remains scarcely explored. The present study investigated the dynamic changes of GSLs in moringa seeds during germination (at 25, 30, and 35 °C for 6 days in the dark) through an untargeted metabolomics approach and compared the antioxidant capacity of ungerminated and germinated moringa seeds. Our results showed that germination significantly increased the total GSL content from 150 (day 0) to 323 µmol/g (35 °C, day 6) on a dry weight (DW) basis, especially glucomoringin (GMG), the unique glucosinolate in moringa seeds, which was significantly upregulated from 61 (day 0) to 149 µmol/g DW (35 °C, day 4). The upregulation of GMG corresponded to the metabolism of tyrosine, which might be the initial precursor for the formation of GMG. In addition, germination enhanced the total ITC content from 85 (day 0) to 239 µmol SE/g DW (35 °C, day 6), indicating that germination may have also increased the activity of myrosinase. Furthermore, germination remarkably increased the total phenolic content (109-507 mg GAE/100 g DW) and antioxidant capacity of moringa seeds. Our findings suggest that moringa sprouts could be promoted as a novel food and/or ingredient rich in GMG.


Subject(s)
Germination , Glucosinolates , Moringa , Seeds , Tyrosine , Seeds/chemistry , Seeds/metabolism , Seeds/growth & development , Tyrosine/metabolism , Tyrosine/analysis , Moringa/chemistry , Moringa/metabolism , Moringa/growth & development , Glucosinolates/metabolism , Glucosinolates/analysis , Glucosinolates/chemistry , Antioxidants/metabolism , Antioxidants/chemistry , Antioxidants/analysis
9.
Plant Foods Hum Nutr ; 79(2): 359-366, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38607508

ABSTRACT

Broccoli is commonly consumed as food and as medicine. However, comprehensive metabolic profiling of two broccoli varieties, Romanesco broccoli (RB) and purple broccoli (PB), in relation to their anticholinergic activity has not been fully disclosed. A total of 110 compounds were tentatively identified using UPLC-Q-TOF-MS metabolomics. Distinctively different metabolomic profiles of the two varieties were revealed by principal component analysis (PCA). Furthermore, by volcano diagram analysis, it was found that PB had a significantly higher content of phenolic acids, flavonoids, and glucosinolates, indicating the different beneficial health potentials of PB that demonstrated higher antioxidant and anticholinergic activities. Moreover, Pearson's correlation analysis revealed 18 metabolites, mainly phenolic and sulfur compounds, as the main bioactive. The binding affinity of these biomarkers to the active sites of acetyl- and butyryl-cholinesterase enzymes was further validated using molecular docking studies. Results emphasize the broccoli significance as a functional food and nutraceutical source and highlight its beneficial effects against Alzheimer's disease.


Subject(s)
Acetylcholinesterase , Brassica , Cholinesterase Inhibitors , Metabolomics , Molecular Docking Simulation , Brassica/chemistry , Cholinesterase Inhibitors/pharmacology , Acetylcholinesterase/metabolism , Glucosinolates/metabolism , Glucosinolates/analysis , Flavonoids/analysis , Flavonoids/pharmacology , Antioxidants/pharmacology , Antioxidants/analysis , Chromatography, Liquid , Phenols/analysis , Phenols/pharmacology , Principal Component Analysis , Hydroxybenzoates/analysis , Hydroxybenzoates/pharmacology , Butyrylcholinesterase/metabolism , Computer Simulation , Plant Extracts/pharmacology , Plant Extracts/chemistry , Mass Spectrometry
10.
New Phytol ; 243(5): 1951-1965, 2024 Sep.
Article in English | MEDLINE | ID: mdl-38553428

ABSTRACT

Here, we characterized the independent role of soil microbiomes (bacterial and fungal communities) in determining the flavor chemistry of harvested mustard seed (Brassica juncea). Given the known impacts of soil microbial communities on various plant characteristics, we hypothesized that differences in rhizosphere microbiomes would result in differences in seed flavor chemistry (glucosinolate content). In a glasshouse study, we introduced distinct soil microbial communities to mustard plants growing in an otherwise consistent environment. At the end of the plant life cycle, we characterized the rhizosphere and root microbiomes and harvested produced mustard seeds for chemical characterization. Specifically, we measured the concentrations of glucosinolates, secondary metabolites known to create spicy and bitter flavors. We examined associations between rhizosphere microbial taxa or genes and seed flavor chemistry. We identified links between the rhizosphere microbial community composition and the concentration of the main glucosinolate, allyl, in seeds. We further identified specific rhizosphere taxa predictive of seed allyl concentration and identified bacterial functional genes, namely genes for sulfur metabolism, which could partly explain the observed associations. Together, this work offers insight into the potential influence of the belowground microbiome on the flavor of harvested crops.


Subject(s)
Glucosinolates , Microbiota , Mustard Plant , Rhizosphere , Seeds , Soil Microbiology , Mustard Plant/microbiology , Glucosinolates/metabolism , Glucosinolates/analysis , Seeds/microbiology , Plant Roots/microbiology , Flavoring Agents/analysis , Bacteria/genetics , Bacteria/classification , Bacteria/metabolism , Taste
11.
Food Chem ; 445: 138644, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38354638

ABSTRACT

Vegetables are frequently processed before consumption. However, vegetable functionalization continues beyond ingestion as the human digestive tract exposes vegetable products to various conditions (e.g. elevated temperature, pH alterations, enzymes, electrolytes, mechanical disintegration) which can affect the stability of micronutrients and phytochemicals. Besides the extent to which these compounds withstand the challenges posed by digestive conditions, it is equally important to consider their accessibility for potential absorption by the body. Therefore, this study investigated the impact of static in vitro digestion on the stability (i.e. concentration) and bioaccessibility of vitamin C, vitamin K1, glucosinolates, S-alk(en)yl-l-cysteine sulfoxides (ACSOs) and carotenoids in Brussels sprouts (Brassica oleracea var. gemmifera) and leek (Allium ampeloprasum var. porrum). Water-soluble compounds, glucosinolates and ACSOs, remained stable during digestion while vitamin C decreased by >48%. However, all water-soluble compounds were completely bioaccessible. Lipid-soluble compounds were also stable during digestion but were only bioaccessible for 26-81%.


Subject(s)
Brassica , Onions , Humans , Onions/chemistry , Micronutrients , Glucosinolates/analysis , Brassica/chemistry , Vegetables , Ascorbic Acid , Vitamins , Digestion , Water , Phytochemicals
12.
ACS Synth Biol ; 13(3): 736-744, 2024 03 15.
Article in English | MEDLINE | ID: mdl-38412618

ABSTRACT

Glucosinolates are plant-specialized metabolites that can be hydrolyzed by glycosyl hydrolases, called myrosinases, creating a variety of hydrolysis products that benefit human health. While cruciferous vegetables are a rich source of glucosinolates, they are often cooked before consumption, limiting the conversion of glucosinolates to hydrolysis products due to the denaturation of myrosinases. Here we screen a panel of glycosyl hydrolases for high thermostability and engineer the Brassica crop, broccoli (Brassica oleracea L.), for the improved conversion of glucosinolates to chemopreventive hydrolysis products. Our transgenic broccoli lines enabled glucosinolate hydrolysis to occur at higher cooking temperatures, 20 °C higher than in wild-type broccoli. The process of cooking fundamentally transforms the bioavailability of many health-relevant bioactive compounds in our diet. Our findings demonstrate the promise of leveraging genetic engineering to tailor crops with novel traits that cannot be achieved through conventional breeding and improve the nutritional properties of the plants we consume.


Subject(s)
Brassica , Humans , Brassica/genetics , Glucosinolates/analysis , Cooking , Crops, Agricultural/genetics , Glycoside Hydrolases/genetics , Glycoside Hydrolases/metabolism , Isothiocyanates/metabolism
13.
Sci Total Environ ; 915: 170115, 2024 Mar 10.
Article in English | MEDLINE | ID: mdl-38232848

ABSTRACT

Grafting is an effective horticultural method to reduce Cd accumulation in crops. However, the mechanism of grafting inducing the decrease in Cd content in scions remains unclear. This study evaluated the effect of grafting on fruit quality, yield, and Cd content of Solanum melongena, and explored the potential mechanism of grafting reducing Cd content in scions. In the low Cd-contaminated soil, compared with un-grafted (UG) and self-grafted plants (SG), the fruit yield of inter-grafted plants (EG) increased by 38 %, and the fruit quality was not markedly affected. In EG, the decrease in total S and Cd content was not related to organic acids and thiol compounds. The decrease in total S and Cd content in EG leaves and fruits was closely related to the synthesis and transportation of glucosinolates (GSL). The genes encoding GSL synthesis in leaves, such as basic helix-loop-helix, myelocytomatosis proteins, acetyl-CoA, cytochrome P450, and glutathione S-transferases, were significantly downregulated. In EG leaves, the contents of five of the eight amino acids involved in GSL synthesis decreased significantly (P < 0.05). Notably, total GSL in EG stems, leaves, and fruits had a significant linear correlation with total S and Cd. In summary, the decrease in total S and Cd content in scions caused by grafting is closely related to GSL. Our findings provide a theoretical basis for the safe use of Cd-contaminated soil, exploring the long-distance transport of Cd in plants and cultivating crops with low Cd accumulation.


Subject(s)
Soil Pollutants , Solanum melongena , Cadmium/analysis , Solanum melongena/metabolism , Glucosinolates/analysis , Antioxidants/metabolism , Soil , Soil Pollutants/analysis , Plant Roots/metabolism
14.
J Agric Food Chem ; 71(30): 11466-11475, 2023 Aug 02.
Article in English | MEDLINE | ID: mdl-37462686

ABSTRACT

The health-beneficial effects of Brassica vegetables are mainly attributed to their high contents of glucosinolates and the products of their hydrolysis, especially isothiocyanates. Distribution of glucosinolates across plant organs can strongly vary. Here, we investigated the effect of leaf age on glucosinolate accumulation and hydrolysis in two leafy Brassica vegetables, pak choi and giant red mustard. We also evaluated the activity of the hydrolyzing enzyme myrosinase across the leaves. Finally, we assessed whether glucosinolates are transported from older leaves to younger leaves. Young leaves of both species contained more than 3-fold more glucosinolates than older ones. Accordingly, more isothiocyanates were released in the young leaves. Myrosinases fully hydrolyzed all of the amounts of glucosinolates regardless of the leaf age. Moreover, older leaves were observed to supply younger leaves with glucosinolates. Thus, this study suggests that consumers can improve the nutritional value of food by incorporating young leaves of leafy Brassicas in their diet.


Subject(s)
Glucosinolates , Vegetables , Glucosinolates/analysis , Hydrolysis , Mustard Plant , Glycoside Hydrolases , Isothiocyanates , Plant Leaves/chemistry
15.
Food Res Int ; 168: 112742, 2023 06.
Article in English | MEDLINE | ID: mdl-37120197

ABSTRACT

Plant extracts have recently received increased attention as alternative sources of antimicrobial agents in the fight against multidrug-resistant bacteria. Non-targeted metabolomics liquid chromatography-quadrupole time-of-flight tandem mass spectrometry, molecular networking, and chemometrics were used to evaluate the metabolic profiles of red and green leaves of two Brassica juncea (L.) varieties, var. integrifolia (IR and IG) and var. rugosa (RR and RG), as well as to establish a relationship between the elucidated chemical profiles and antivirulence activity. In total, 171 metabolites from different classes were annotated and principal component analysis revealed higher levels of phenolics and glucosinolates in var. integrifolia leaves and color discrimination, whereas fatty acids were enriched in var. rugosa, particularly trihydroxy octadecadienoic acid. All extracts demonstrated significant antibacterial activity against Staphylococcus aureus and Enterococcus faecalis, presenting the IR leaves the highest antihemolytic activity against S. aureus (99 % inhibition), followed by RR (84 %), IG (82 %), and RG (37 %) leaves. Antivirulence of IR leaves was further validated by reduction in alpha-hemolysin gene transcription (∼4-fold). Using various multivariate data analyses, compounds positively correlated to bioactivity, primarily phenolic compounds, glucosinolates, and isothiocyanates, were also identified.


Subject(s)
Mustard Plant , Tandem Mass Spectrometry , Chromatography, Liquid/methods , Chromatography, High Pressure Liquid/methods , Tandem Mass Spectrometry/methods , Staphylococcus aureus , Glucosinolates/pharmacology , Glucosinolates/analysis , Phenols/analysis , Vegetables
16.
Food Res Int ; 166: 112598, 2023 04.
Article in English | MEDLINE | ID: mdl-36914324

ABSTRACT

Green tissues and seeds from cruciferous vegetables growing in conventional and ecological conditions (Brassica carinata; Brassica rapa; Eruca vesicaria and Sinapis alba) were analyzed to determine their contents of glucosinolates, isotihiocyanates (ITCs) and inorganic micronutrients (Ca, Cr, Cu, Fe, Mn, Ni, Se and Zn), and the bioaccessibility of these compounds. Regarding total contents and bioaccessibility values of these compounds, no clear difference was found between the organic and conventional systems. Glucosinolates bioaccessibility present in green tissues were high, with values around 60-78%. In additon, it was quantified in bioaccessible fraction ITCs concentrations such as Allyl - ITC; 3 - Buten - 1 - yl - ITC and 4 - Penten - 1 - yl - ITC. Trace elements bioaccessibility in green tissues was also high for Ca (2.26-7.66 mg/g), Cu (0.60-2.78 µg/g), Se (9.93-74.71 µg/Kg) and Zn (12.98-20.15 µg/g). By contrast, the bioaccessibility of glucosinolates and trace elements in cruciferous seeds was extremely low. With the exception of Cu, these bioaccessibility percentages did not exceed 1% in most cases.


Subject(s)
Brassica , Trace Elements , Vegetables , Trace Elements/analysis , Micronutrients , Glucosinolates/analysis , Isothiocyanates , Digestion
17.
Int J Mol Sci ; 24(6)2023 Mar 14.
Article in English | MEDLINE | ID: mdl-36982584

ABSTRACT

Soil salinity can have various negative consequences on agricultural products, from their quality and production to their aesthetic traits. In this work, the possibility to use salt-affected vegetables, that otherwise would be discarded, as a source of nutraceuticals was explored. To this aim, rocket plants, a vegetable featuring bioactive compounds such as glucosinolates, were exposed to increasing NaCl concentrations in hydroponics and analysed for their content in bioactive compounds. Salt levels higher than 68 mM produced rocket plants that did not comply with European Union regulations and would therefore be considered a waste product. Anyway, our findings, obtained by Liquid Chromatography-High Resolution Mass Spectrometry, demonstrated a significant increase in glucosinolates levels in such salt-affected plants. opening the opportunity for a second life of these market discarded products to be recycled as glucosinolates source. Furthermore, an optimal situation was found at NaCl 34 mM in which not only were the aesthetic traits of rocket plants not affected, but also the plants revealed a significant enrichment in glucosinolates. This can be considered an advantageous situation in which the resulting vegetables still appealed to the market and showed improved nutraceutical aspects.


Subject(s)
Brassicaceae , Brassicaceae/chemistry , Sodium Chloride , Glucosinolates/analysis , Plant Leaves/chemistry , Vegetables , Sodium Chloride, Dietary
18.
Food Res Int ; 164: 112401, 2023 02.
Article in English | MEDLINE | ID: mdl-36738020

ABSTRACT

Appropriate processing and cooking technologies can effectively improve the content of bioactive compounds in vegetables. The effects of microwave bag cooking on broccoli floret quality attributes, glucosinolates (GLSs) content and hydrolysate production were investigated in this study. Microwave bag cooking not only preserved the color of the florets, but also enhanced the total phenolic and flavonoid content, as well as total chlorophyll and ascorbic acid content. Furthermore, the majority of the microorganisms were inactivated, and the structure of the florets was greatly destroyed, thereby increasing antioxidant capacity and promoting the release of GLSs and myrosinase activity in the florets. Moreover, microwave bag cooking significantly enriched the sulforaphane (SFN) and indole-3-carbinol (I3C) production of broccoli florets in the meantime, demonstrating that it was a convenient and quick cooking option to satisfy the requirements of modern consumers.


Subject(s)
Brassica , Brassica/chemistry , Glucosinolates/analysis , Microwaves , Cooking , Antioxidants
19.
Food Chem ; 404(Pt A): 134594, 2023 Mar 15.
Article in English | MEDLINE | ID: mdl-36265272

ABSTRACT

Brassica vegetables are frequently consumed foods of nutritional interest, because they are rich in glucosinolates (GLSs). Among GLS breakdown products, especially isothiocyanates are known for their health-beneficial effects, while nitriles are less beneficial. To increase the understanding of the plant matrix's influence on GLS degradation, differently concentrated vegetable broths were prepared from selected Brassica vegetables (kohlrabi and red cabbage) and subsequently boiled. Altogether, heat stability and conversion of GLSs to the corresponding nitriles were both strongly influenced by vegetable type and plant matrix concentration in the broths. After boiling kohlrabi broths for 120 min, recovery of 4-(methylthio)butyl-GLS as nitrile was 55.5 % in 1 g/mL broth and 8.4 % in 0.25 g/mL broth. In follow-up experiments, a pronounced influence of the matrix's redox status was identified, with H2S being an important factor. A better understanding of these processes will help to preserve health-promoting effects of GLSs in Brassica vegetables in the future.


Subject(s)
Brassica , Glucosinolates , Glucosinolates/analysis , Brassica/metabolism , Vegetables/metabolism , Nitriles/metabolism , Oxidation-Reduction
20.
Crit Rev Food Sci Nutr ; 63(24): 7025-7042, 2023.
Article in English | MEDLINE | ID: mdl-35174750

ABSTRACT

Red and white cabbages (Brassica oleracea var. capitata f. alba and rubra, respectively) are two of the most commercially valued vegetables in crucifers, well-recognized for their unique sensory and nutritive attributes in addition to a myriad of health-promoting benefits. The current review addressed the differential qualitative/quantitative phytochemical make-ups for the first time for better utilization as nutraceuticals and to identify potential uses based on the chemical makeup of both cultivars (cvs.). In addition, extraction methods are compared highlighting their advantages and/or limitations with regards to improving yield and stability of cabbage bioactives, especially glucosinolates. Besides, the review recapitulated detailed action mechanism and safety of cabbage bioactives, as well as processing technologies to further improve their effects are posed as future perspectives. White and red cabbage cvs. revealed different GLSs profile which affected by food processing, including enzymatic hydrolysis, thermal breakdown, and leaching. In addition, the red cultivar provides high quality pigment for industrial applications. Moreover, non-conventional modern extraction techniques showed promising techniques for the recovery of their bioactive constituents compared to solvent extraction. All these findings pose white and red cabbages as potential candidates for inclusion in nutraceuticals and/or to be commercialized as functional foods prepared in different culinary forms.


Subject(s)
Brassica , Vegetables , Food Handling , Glucosinolates/analysis , Phytochemicals/metabolism
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