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1.
Carbohydr Polym ; 339: 122264, 2024 Sep 01.
Article in English | MEDLINE | ID: mdl-38823928

ABSTRACT

Normal rice starch consists of amylopectin and amylose, whose relative amounts and chain-length distributions (CLDs) are major determinants of the digestibility and rheology of cooked rice, and are related to metabolic health and consumer preference. Here, the mechanism of how molecular structural features of pure amylopectin (waxy) starches affect starch properties was explored. Following debranching, chain-length distributions of seven waxy varieties were measured using size-exclusion chromatography, and parameterized using biosynthesis-based models, which involve breaking up the chain-length distribution into contributions from five enzyme sets covering overlapping ranges of chain length; structure-property correlations involving the fifth set were found to be statistically significant. Digestibility was measured in vitro, and parameters for the slower and longer digestion phase quantified using non-linear least-squares fitting. The coefficient for the significant correlation involving amylopectin fine structure for the fifth set was -0.903, while the amounts of amylopectin short and long chains were found to dominate breakdown viscosity (correlation coefficients 0.801 and - 0.911, respectively). This provides a methodology for finding or developing healthier starch in terms of lower digestion rate, while also having acceptable palatability. As rice breeders can to some extent control CLDs, this can help the development of waxy rices with improved properties.


Subject(s)
Amylopectin , Amylose , Oryza , Oryza/chemistry , Amylopectin/chemistry , Viscosity , Amylose/chemistry , Amylose/analysis , Starch/chemistry , Digestion , Rheology
2.
Carbohydr Polym ; 337: 122187, 2024 Aug 01.
Article in English | MEDLINE | ID: mdl-38710543

ABSTRACT

The effects of different electron beam irradiation doses (2, 4, 8 KGy) and various types of fatty acids (lauric acid, stearic acid, and oleic acid) on the formation, structure, physicochemical properties, and digestibility of starch-lipid complex were investigated. The complexing index of the complexes was higher than 85 %, indicating that the three fatty acids could easily form complexes with starch. With the increase of electron beam irradiation dose, the complexing index increased first and then decreased. The highest complexing index was lauric acid (97.12 %), stearic acid (96.80 %), and oleic acid (97.51 %) at 2 KGy radiation dose, respectively. Moreover, the microstructure, crystal structure, thermal stability, rheological properties, and starch solubility were analyzed. In vitro digestibility tests showed that adding fatty acids could reduce the content of hydrolyzed starch, among which the resistant starch content of the starch-oleic acid complex was the highest (54.26 %). The lower dose of electron beam irradiation could decrease the digestibility of starch and increase the content of resistant starch.


Subject(s)
Electrons , Fatty Acids , Solubility , Starch , Starch/chemistry , Fatty Acids/chemistry , Lauric Acids/chemistry , Rheology , Hydrolysis , Oleic Acid/chemistry , Lipids/chemistry
3.
Carbohydr Polym ; 337: 122118, 2024 Aug 01.
Article in English | MEDLINE | ID: mdl-38710546

ABSTRACT

Chrysin and rutin are natural polyphenols with multifaceted biological activities but their applications face challenges in bioavailability. Encapsulation using starch nanoparticles (SNPs) presents a promising approach to overcome the limitations. In this study, chrysin and rutin were encapsulated into self-assembled SNPs derived from quinoa (Q), maize (M), and waxy maize (WM) starches using enzyme-hydrolysis. Encapsulation efficiencies ranged from 74.3 % to 79.1 %, with QSNPs showing superior performance. Simulated in vitro digestion revealed sustained release and higher antioxidant activity in QSNPs compared to MSNPs and WMSNPs. Variations in encapsulation properties among SNPs from different sources were attributed to the differences in the structural properties of the starches. The encapsulated SNPs exhibited excellent stability, retaining over 90 % of chrysin and 85 % of rutin after 15 days of storage. These findings underscore the potential of SNP encapsulation to enhance the functionalities of chrysin and rutin, facilitating the development of fortified functional foods with enhanced bioavailability and health benefits.


Subject(s)
Antioxidants , Chenopodium quinoa , Flavonoids , Nanoparticles , Rutin , Starch , Zea mays , Flavonoids/chemistry , Rutin/chemistry , Zea mays/chemistry , Nanoparticles/chemistry , Chenopodium quinoa/chemistry , Starch/chemistry , Antioxidants/chemistry , Antioxidants/pharmacology , Biological Availability , Hydrolysis
4.
Carbohydr Polym ; 337: 122190, 2024 Aug 01.
Article in English | MEDLINE | ID: mdl-38710564

ABSTRACT

Starch structure is often characterized by the chain-length distribution (CLD) of the linear molecules formed by breaking each branch-point. More information can be obtained by expanding into a second dimension: in the present case, the total undebranched-molecule size. This enables answers to questions unobtainable by considering only one variable. The questions considered here are: (i) are the events independent which control total size and CLD, and (ii) do ultra-long amylopectin (AP) chains exist (these chains cannot be distinguished from amylose chains using simple size separation). This was applied here to characterize the structures of one normal (RS01) wheat and two high-amylose (AM) mutant wheats (an SBEIIa knockout and an SBEIIa and SBEIIb knockout). Absolute ethanol was used to precipitate collected fractions, then size-exclusion chromatography for total molecular size and for the size of branches. The SBEIIa and SBEIIb mutations significantly increased AM and IC contents and chain length. The 2D plots indicated the presence of small but significant amounts of long-chain amylopectin, and the asymmetry of these plots shows that the corresponding mechanisms share some causal effects. These results could be used to develop plants producing improved starches, because different ranges of the chain-length distribution contribute independently to functional properties.


Subject(s)
Amylopectin , Amylose , Starch Synthase , Triticum , Triticum/metabolism , Triticum/chemistry , Triticum/genetics , Amylopectin/chemistry , Amylopectin/biosynthesis , Amylose/chemistry , Amylose/biosynthesis , Starch Synthase/genetics , Starch Synthase/metabolism , Starch Synthase/chemistry , Starch/chemistry , Starch/biosynthesis , Starch/metabolism , Mutation , Plant Proteins/chemistry , Plant Proteins/genetics , Plant Proteins/metabolism
5.
Molecules ; 29(9)2024 Apr 23.
Article in English | MEDLINE | ID: mdl-38731414

ABSTRACT

Consumers are concerned about employing green processing technologies and natural ingredients in different manufacturing sectors to achieve a "clean label" standard for products and minimize the hazardous impact of chemical ingredients on human health and the environment. In this study, we investigated the effects of gelatinized starch dispersions (GSDs) prepared from six plant sources (indica and japonica rice, wheat, corn, potatoes, and sweet potatoes) on the formulation and stability of oil-in-water (O/W) emulsions. The effect of gelatinization temperature and time conditions of 85-90 °C for 20 min on the interfacial tension of the two phases was observed. Emulsification was performed using a primary homogenization condition of 10,000 rpm for 5 min, followed by high-pressure homogenization at 100 MPa for five cycles. The effects of higher oil weight fractions (15-25% w/w) and storage stability at different temperatures for four weeks were also evaluated. The interfacial tension of all starch GSDs with soybean oil decreased compared with the interfacial tension between soybean oil and water as a control. The largest interfacial tension reduction was observed for the GSD from indica rice. Microstructural analysis indicated that the GSDs stabilized the O/W emulsion by coating oil droplets. Emulsions formulated using a GSD from indica rice were stable during four weeks of storage with a volume mean diameter (d4,3) of ~1 µm, minimal viscosity change, and a negative ζ-potential.


Subject(s)
Emulsions , Soybean Oil , Starch , Water , Emulsions/chemistry , Starch/chemistry , Water/chemistry , Soybean Oil/chemistry , Oryza/chemistry , Gelatin/chemistry , Temperature , Surface Tension , Particle Size
6.
Int J Mol Sci ; 25(10)2024 May 08.
Article in English | MEDLINE | ID: mdl-38791154

ABSTRACT

Here, starch derivatives, i.e., sodium starch octenylsuccinate (OSA starch, hereinafter referred to as OSA), were employed as both reducing and stabilizing agents for the unique, inexpensive, and simple synthesis of gold nanoparticles (OSA-AuNPs) in an aqueous solution with gold salt. The obtained OSA-AuNPs were characterized by UV-vis spectrophotometry, transmission electron microscopy, scanning electron microscopy, and energy-dispersive X-ray spectroscopy. The catalytic activity of the obtained gold colloids was studied in the reduction of organic dyes, including methylene blue (C.I. Basic Blue 9) and rhodamine B (C.I. Basic Violet 10), and food coloring, including tartrazine (E102) and azorubine (E122), by sodium borohydride. Moreover, OSA-AuNPs were utilized as signal amplifiers in surface-enhanced Raman spectroscopy. The obtained results confirmed that gold nanoparticles can be used as effective catalysts in reduction reactions of selected organic dyes, as well as signal enhancers in the SERS technique.


Subject(s)
Gold , Metal Nanoparticles , Starch , Gold/chemistry , Metal Nanoparticles/chemistry , Catalysis , Starch/chemistry , Spectrum Analysis, Raman , Succinates/chemistry , Oxidation-Reduction
7.
Molecules ; 29(10)2024 May 18.
Article in English | MEDLINE | ID: mdl-38792242

ABSTRACT

The development of immobilized enzymes with high activity and stability is critical. Metal-organic frameworks (MOFs) have attracted much academic and industrial interest in the field of enzyme immobilization due to their unique properties. In this study, the amino-functionalized ionic liquid (NIL)-modified metal-organic framework (UiO-66-NH2) was prepared to immobilize Candida rugosa lipase (CRL), using dialdehyde starch (DAS) as the cross-linker. The results of the Fourier transform infrared (FT-IR) spectra, X-ray powder diffraction (XRD), and scanning electronic microscopy (SEM) confirmed that the NIL was successfully grafted to UiO-66-NH2. The CRL immobilized on NIL-modified UiO-66-NH2 (UiO-66-NH2-NIL-DAS@CRL) exhibited satisfactory activity recovery (79.33%), stability, reusability, and excellent organic solvent tolerance. The research results indicated that ionic liquid-modified UiO-66-NH2 had practical potential for application in enzyme immobilization.


Subject(s)
Enzymes, Immobilized , Ionic Liquids , Lipase , Metal-Organic Frameworks , Lipase/chemistry , Lipase/metabolism , Ionic Liquids/chemistry , Enzymes, Immobilized/chemistry , Metal-Organic Frameworks/chemistry , Enzyme Stability , Spectroscopy, Fourier Transform Infrared , X-Ray Diffraction , Starch/chemistry , Starch/analogs & derivatives , Saccharomycetales/enzymology , Phthalic Acids
8.
Sensors (Basel) ; 24(10)2024 May 09.
Article in English | MEDLINE | ID: mdl-38793849

ABSTRACT

The origin of agricultural products is crucial to their quality and safety. This study explored the differences in chemical composition and structure of rice from different origins using fluorescence detection technology. These differences are mainly affected by climate, environment, geology and other factors. By identifying the fluorescence characteristic absorption peaks of the same rice seed varieties from different origins, and comparing them with known or standard samples, this study aims to authenticate rice, protect brands, and achieve traceability. The study selected the same variety of rice seed planted in different regions of Jilin Province in the same year as samples. Fluorescence spectroscopy was used to collect spectral data, which was preprocessed by normalization, smoothing, and wavelet transformation to remove noise, scattering, and burrs. The processed spectral data was used as input for the long short-term memory (LSTM) model. The study focused on the processing and analysis of rice spectra based on NZ-WT-processed data. To simplify the model, uninformative variable elimination (UVE) and successive projections algorithm (SPA) were used to screen the best wavelengths. These wavelengths were used as input for the support vector machine (SVM) prediction model to achieve efficient and accurate predictions. Within the fluorescence spectral range of 475-525 nm and 665-690 nm, absorption peaks of nicotinamide adenine dinucleotide (NADPH), riboflavin (B2), starch, and protein were observed. The origin tracing prediction model established using SVM exhibited stable performance with a classification accuracy of up to 99.5%.The experiment demonstrated that fluorescence spectroscopy technology has high discrimination accuracy in tracing the origin of rice, providing a new method for rapid identification of rice origin.


Subject(s)
Algorithms , Oryza , Spectrometry, Fluorescence , Support Vector Machine , Oryza/chemistry , Oryza/classification , Spectrometry, Fluorescence/methods , Riboflavin/analysis , NADP/chemistry , NADP/analysis , NADP/metabolism , Starch/analysis , Starch/chemistry , Seeds/chemistry
9.
Int J Pharm ; 657: 124190, 2024 May 25.
Article in English | MEDLINE | ID: mdl-38701910

ABSTRACT

Lubricants are essential for most tablet formulations as they assist powder flow, prevent adhesion to tableting tools and facilitate tablet ejection. Magnesium stearate (MgSt) is an effective lubricant but may compromise tablet strength and disintegratability. In the design of orodispersible tablets, tablet strength and disintegratability are critical attributes of the dosage form. Hence, this study aimed to conduct an in-depth comparative study of MgSt with alternative lubricants, namely sodium lauryl sulphate (SLS), stearic acid (SA) and hydrogenated castor oil (HCO), for their effects on the tableting process as well as tablet properties. Powder blends were prepared with lactose, sodium starch glycolate or crospovidone as the disintegrant, and a lubricant at different concentrations. Angle of repose was determined for the mixtures. Comparative evaluation was carried out based on the ejection force, tensile strength, liquid penetration and disintegratability of the tablets produced. As the lubricant concentration increased, powder flow and tablet ejection improved. The lubrication efficiency generally decreased as follows: MgSt > HCO > SA > SLS. Despite its superior lubrication efficacy, MgSt is the only lubricant of four evaluated that reduced tablet tensile strength. Tablet disintegration time was strongly determined by tensile strength and liquid penetration, which were in turn affected by the lubricant type and concentration. All the above factors should be taken into consideration when deciding the type and concentration of lubricant for an orodispersible tablet formulation.


Subject(s)
Excipients , Lubricants , Stearic Acids , Tablets , Tensile Strength , Lubricants/chemistry , Stearic Acids/chemistry , Excipients/chemistry , Drug Compounding/methods , Powders/chemistry , Sodium Dodecyl Sulfate/chemistry , Castor Oil/chemistry , Povidone/chemistry , Starch/chemistry , Starch/analogs & derivatives , Lactose/chemistry , Administration, Oral , Solubility , Chemistry, Pharmaceutical/methods
10.
Ultrason Sonochem ; 106: 106904, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38749102

ABSTRACT

Ultrasound processing is an emerging green technology that has the potential for wider application in the food processing industry. While the effects of ultrasonication on isolated macromolecules such as protein and starch have been reported, the effects of physical barriers on sonication on these macro-molecules, for example inside whole seed, tissue or cotyledon cells, have mostly been overlooked. Intact chickpea cells were subjected to sonication with different ultrasound processing times, and the effects of sonication on the starch and protein structure and digestibility were studied. The digestibility of these macronutrients significantly increased with the extension of processing time, which, however was not due to the molecular degradation of starch or protein but related to damage to cell wall macro-structure with increasing sonication time, leading to enhanced enzyme accessibility. Through this study, it is demonstrated that ultrasound processing has least effect on whole food structure, for example, whole seeds but can modulate the nutrient bioavailability without changing the properties of the macronutrients in seed fractions e.g. intact cells, offering new scientific knowledge on effect of ultrasound in whole foods at various length scales.


Subject(s)
Cicer , Nutrients , Sonication , Cicer/chemistry , Starch/chemistry , Starch/metabolism , Plant Proteins/chemistry , Plant Proteins/metabolism , Digestion , Seeds/chemistry
11.
Int J Biol Macromol ; 268(Pt 2): 131940, 2024 May.
Article in English | MEDLINE | ID: mdl-38692554

ABSTRACT

Composite edible films were developed by casting method using sunnhemp protein isolate (SHPI) and potato starch (PS) at various proportions (100:0, 90:10, 80:20; 70:30, 60:40, and 50:50) containing glycerol as a plasticizer and clove oil. All the edible films were evaluated for thickness, moisture content, solubility, swelling ratio, water activity. Further characterization of edible films was done on the basis of mechanical, optical, thermal and structural attributes along with morphology. Among all the films, composite film containing 50 % SHPI, 50 % PS and 1 % clove oil were having better characteristics. The solubility and WVP decreased, while the tensile strength and elongation at break of composite film increased with the inclusion of potato starch and clove oil. Intermolecular interactions in the composite film matrix were confirmed by FTIR and XRD analysis. SEM images confirmed the structural compactness and integrity of all the developed films. The amino acid composition of edible films indicated presence of most of the essential amino acids. The present finding of this research work shows that the utilization of sunnhemp protein in the development of biocomposite edible films represents an alternative opportunity of sustainable edible food packaging.


Subject(s)
Amino Acids , Clove Oil , Edible Films , Solanum tuberosum , Solubility , Starch , Starch/chemistry , Solanum tuberosum/chemistry , Clove Oil/chemistry , Amino Acids/chemistry , Amino Acids/analysis , Food Packaging/methods , Plant Proteins/chemistry , Tensile Strength , Biopolymers/chemistry , Water/chemistry
12.
Int J Biol Macromol ; 268(Pt 2): 131996, 2024 May.
Article in English | MEDLINE | ID: mdl-38697417

ABSTRACT

This research investigated the effect of lecithin on the complexation of lauric acid with maize starch, potato starch, waxy maize starch, and high amylose maize starch. Rapid visco analysis showed that lecithin altered the setback pattern of potato starch-lauric acid and maize starch-lauric acid mixtures but not waxy maize starch-lauric acid. Further investigation, including differential scanning calorimetry, complex index, and X-ray diffraction, showed that lecithin enhanced the complexation of maize starch, potato starch, and high amylose maize starch with lauric acid. Fourier transform infrared and Raman spectroscopy revealed increasingly ordered structures formed in maize starch-lauric acid-lecithin, potato starch-lauric acid-lecithin, and high amylose maize starch-lauric acid-lecithin systems compared to corresponding binary systems. These highly ordered complexes of maize starch, potato starch, and high amylose maize starch also demonstrated greater resistance to in vitro enzymatic hydrolysis. Waxy maize starch complexation however remained unaffected by lecithin. The results of this study show that lecithin impacts complexation between fatty acids and native starches containing amylose, with the starch source being critical. Lecithin minimally impacted the complexation of low amylose starch and fatty acids.


Subject(s)
Amylose , Lauric Acids , Lecithins , Starch , Zea mays , Lauric Acids/chemistry , Lecithins/chemistry , Starch/chemistry , Amylose/chemistry , Zea mays/chemistry , Solanum tuberosum/chemistry , Hydrolysis , X-Ray Diffraction , Spectroscopy, Fourier Transform Infrared , Calorimetry, Differential Scanning
13.
J Agric Food Chem ; 72(20): 11759-11772, 2024 May 22.
Article in English | MEDLINE | ID: mdl-38738668

ABSTRACT

This study aimed to investigate alterations in gut microbiota and metabolites mediated by wheat-resistant starch and its repair of gut barrier dysfunction induced by a high-fat diet (HFD). Structural data revealed that chlorogenic acid (CA)/linoleic acid (LA) functioned through noncovalent interactions to form a more ordered structure and fortify antidigestibility in wheat starch (WS)-CA/LA complexes; the resistant starch (RS) contents of WS-CA, WS-LA, and WS-CA-LA complexes were 23.40 ± 1.56%, 21.25 ± 1.87%, and 35.47 ± 2.16%, respectively. Dietary intervention with WS-CA/LA complexes effectively suppressed detrimental alterations in colon tissue morphology induced by HFD and repaired the gut barrier in ZO-1 and MUC-2 levels. WS-CA/LA complexes could augment gut barrier-promoting microbes including Parabacteroides, Bacteroides, and Muribaculum, accompanied by an increase in short-chain fatty acids (SCFAs) and elevated expression of SCFA receptors. Moreover, WS-CA/LA complexes modulated secondary bile acid metabolism by decreasing taurochenodeoxycholic, cholic, and deoxycholic acids, leading to the activation of bile acid receptors. Collectively, this study offered guiding significance in the manufacture of functional diets for a weak gut barrier.


Subject(s)
Chlorogenic Acid , Diet, High-Fat , Gastrointestinal Microbiome , Linoleic Acid , Mice, Inbred C57BL , Starch , Triticum , Chlorogenic Acid/metabolism , Chlorogenic Acid/pharmacology , Chlorogenic Acid/administration & dosage , Chlorogenic Acid/chemistry , Diet, High-Fat/adverse effects , Triticum/chemistry , Triticum/metabolism , Gastrointestinal Microbiome/drug effects , Animals , Male , Mice , Starch/metabolism , Starch/chemistry , Linoleic Acid/metabolism , Linoleic Acid/chemistry , Bacteria/classification , Bacteria/metabolism , Bacteria/genetics , Bacteria/drug effects , Bacteria/isolation & purification , Intestinal Mucosa/metabolism , Intestinal Mucosa/drug effects , Humans , Fatty Acids, Volatile/metabolism , Resistant Starch/metabolism
14.
Food Chem ; 451: 139478, 2024 Sep 01.
Article in English | MEDLINE | ID: mdl-38692242

ABSTRACT

The market share of Sichuan pepper oleoresin (SPO) in the flavor industry is increasing steadily; however, its high volatility, low water solubility, and poor stability continue to pose significant challenges to application. The microencapsulation prepared by emulsion embedding and spray drying is considered as an effective technique to solve the above problems. Sodium octenyl succinate starch (OSA starch) and tea polyphenols (TPs) were used to develop OSA-TPs complex as encapsulants for SPO to prepare orally soluble microcapsules. And the optimum doping of TPs was determined. SPO microcapsules have good properties with high encapsulation efficiency up to 88.13 ± 1.48% and high payload up to 41.58 ± 1.86% with low water content and high heat resistance. The binding mechanism of OSA starch with TPs and its regulation mechanism and effect on SPOs were further analyzed and clarified. The binding mechanism between OSA starch and TPs was clarified in further analyses. The OSA-TPs complexes enhanced the rehydration, release in food matrix and storage stability of SPO, and exhibited good sensory immediacy. Flavor-improved mooncakes were successfully developed, achieving the combination of mooncake flavor and SPO flavor. This study provided a valuable way to prepare flavoring microcapsules suitable for the catering industry, opened up the combined application of SPO and bakery ingredients, and was of great practical value and significance for improving the processing quality of flavor foods, driving the development of the SPO industry, and enhancing the national dietary experience.


Subject(s)
Drug Compounding , Flavoring Agents , Plant Extracts , Polyphenols , Starch , Taste , Polyphenols/chemistry , Starch/chemistry , Flavoring Agents/chemistry , Plant Extracts/chemistry , Humans , Tea/chemistry , Capsicum/chemistry , Solubility , Capsules/chemistry , Camellia sinensis/chemistry
15.
Ultrason Sonochem ; 106: 106891, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38701549

ABSTRACT

Microalgae are new and sustainable sources of starch with higher productivity and flexible production modes than conventional terrestrial crops, but the downstream processes need further development. Here, ultrasonication (with power of 200 W or 300 W and duration of 10, 15, 20, or 25 min) was applied to simultaneously extract and modify starch from a marine microalga Tetraselmis subcordiformis for reducing the digestibility, and an aqueous two-phase system (ATPS) of ethanol/NaH2PO4 was then used to isolate the starches with varied properties. Increasing ultrasonic duration facilitated the partition of starch into the bottom pellet, while enhancing the ultrasonic power was conducive to the allocation in the interphase of the ATPS. The overall starch recovery yield reached 73 âˆ¼ 87 % and showed no significant difference among the ultrasonic conditions tested. The sequential ultrasonication-ATPS process successfully enriched the starch with purities up to 65 % âˆ¼ 88 %, which was among the top levels reported in microalgal starch isolated. Ultrasonication produced more amylose which was mainly fractionated into the interface of the ATPS. The digestibility of the starch was altered under different ultrasonic conditions and varied from different ATPS phases as well, with the one under the ultrasonic power of 200 W for 15 min at the bottom pellet having the highest resistant starch content (RS, 39.7 %). The structural and compositional analysis evidenced that the ultrasonication-ATPS process could exert impacts on the digestibility through altering the surface roughness and fissures of the starch granules, modulating the impurity compositions (protein and lipid) that could interact with starch, and modifying the long- and short-range ordered structures. The developed ultrasonication-ATPS process provided novel insights into the mechanism and strategy for efficient production of functional starch from microalgae with a potential in industrial application.


Subject(s)
Microalgae , Sonication , Starch , Starch/chemistry , Starch/isolation & purification , Microalgae/chemistry , Sonication/methods , Water/chemistry , Chemical Fractionation/methods
16.
Food Chem ; 451: 139506, 2024 Sep 01.
Article in English | MEDLINE | ID: mdl-38703733

ABSTRACT

This study aimed to characterize and evaluate the in vitro bioactive properties of green banana pulp (GBPF), peel (GBPeF), and mixed pulp/peel flours M1 (90/10) and M2 (80/20). Lipid concentration was higher in GBPeF (7.53%), as were the levels of free and bound phenolics (577 and 653.1 mg GAE/100 g, respectively), whereas the resistant starch content was higher in GBPF (44.11%). Incorporating up to 20% GBPeF into the mixed flour had a minor effect on the starch pasting properties of GBPF. GBPeF featured rutin and trans-ferulic acid as the predominant free and bound phenolic compounds, respectively. GBPF presented different major free phenolics, though it had similar bound phenolics to GBPeF. Both M1 and M2 demonstrated a reduction in intracellular reactive oxygen species (ROS) generation. Consequently, this study validates the potential of green banana mixed flour, containing up to 20% GBPeF, for developing healthy foods and reducing post-harvest losses.


Subject(s)
Flour , Fruit , Musa , Nutritive Value , Phenols , Musa/chemistry , Flour/analysis , Fruit/chemistry , Phenols/analysis , Phenols/chemistry , Plant Extracts/chemistry , Plant Extracts/analysis , Reactive Oxygen Species/metabolism , Starch/chemistry , Starch/analysis
17.
Food Chem ; 451: 139395, 2024 Sep 01.
Article in English | MEDLINE | ID: mdl-38703736

ABSTRACT

Amaranth is a pseudocereal that contains between 50 and 60% starch, gluten-free protein, and essential amino acids. This study investigates the physicochemical changes in Amaranthus spp. grains, flour, isolated starch and nanocrystals during germination and malting. The moisture content increased from 8.9% to 41% over 2 h of soaking. The percentage of germination increased rapidly, reaching 96% after 60 h, a remarkable advantage over other cereals. The nutrient composition varied, including protein synthesis and lipid degradation. Lipid concentration decreased during malting, except for soaking, which increased by 62%. Scanning electron microscopy shows that germination does not cause morphological changes on the outer surface of the grains, while transmission electron microscopy indicates the presence of isolated nanocrystals with orthorhombic crystal structure confirmed by X-ray diffraction. The viscosity profile shows a decrease in peak viscosity. Therefore, amaranth is a potential pseudocereal that can be used as an additive in the production of fermented beverages.


Subject(s)
Amaranthus , Flour , Germination , Nanoparticles , Starch , Amaranthus/chemistry , Amaranthus/growth & development , Amaranthus/metabolism , Flour/analysis , Starch/chemistry , Starch/metabolism , Nanoparticles/chemistry , Viscosity , Seeds/chemistry , Seeds/growth & development , Seeds/metabolism , Food Handling
18.
Food Res Int ; 183: 114186, 2024 May.
Article in English | MEDLINE | ID: mdl-38760125

ABSTRACT

The rise of pre-diabetes at the global level has created a significant interest in developing low glycaemic index food products. The pearl millet is a cheaper source of starch and its germ contains significant amount of protein and fat. The complexing of pearl millet starch and germ by dry heat treatment (PMSGH) resulted an increase in the resistant starch content upto 45.09 % due to formation of amylose-glutelin-linoleic acid complex. The resulting pearl millet starch germ complex was incorporated into wheat bread at 20, 25, and 30 %. The PMSGH incorporated into bread at 30 % reduced the glycaemic index to 52.31. The PMSGH incorporated bread had significantly (p < 0.05)increased in the hardness with a reduction in springiness and cohesiveness. The structural attributes of the 30 % PMSGH incorporated bread revealed a significant (p < 0.05)increase in 1040/1020 cm-1 ratio and relative crystallinity. The consumption of functional bread incorporated with pearl millet starch germ complex reduced blood glucose levels and in vivo glycaemic index in healthy and pre-diabetic participants when compared to white bread. Hence, the study showed that the incorporation of pearl millet starch-germ complex into food products could be a potential new and healthier approach for improving dietary options in pre-diabetes care.


Subject(s)
Blood Glucose , Bread , Glycemic Index , Pennisetum , Prediabetic State , Starch , Humans , Bread/analysis , Pennisetum/chemistry , Starch/chemistry , Male , Adult , Female , Nutritive Value , Single-Blind Method , Young Adult , Middle Aged , Amylose/chemistry
19.
Food Res Int ; 183: 114226, 2024 May.
Article in English | MEDLINE | ID: mdl-38760145

ABSTRACT

Highland barley (HB) is an intriguing plateau cereal crop with high nutrition and health benefits. However, abundant dietary fiber and deficient gluten pose challenges to the processing and taste of whole HB products. Extrusion technology has been proved to be effective in overcoming these hurdles, but the association between the structure and physicochemical properties during extrusion remains inadequately unexplored. Therefore, this study aims to comprehensively understand the impact of extrusion conditions on the physicochemical properties of HB flour (HBF) and the multi-scale structure of starch. Results indicated that the nutritional value of HBF were significantly increased (soluble dietary fiber and ß-glucan increased by 24.05%, 19.85% respectively) after extrusion. Typical underlying mechanisms based on starch structure were established. High temperature facilitated starch gelatinization, resulting in double helices unwinding, amylose leaching, and starch-lipid complexes forming. These alterations enhanced the water absorption capacity, cold thickening ability, and peak viscosity of HBF. More V-type complexes impeded amylose rearrangement, thus enhancing resistance to retrogradation and thermal stability. Extrusion at high temperature and moisture exhibited similarities to hydrothermal treatment, partly promoting amylose rearrangement and enhancing HBF peak viscosity. Conversely, under low temperature and high moisture, well-swelled starch granules were easily broken into shorter branch-chains by higher shear force, which enhanced the instant solubility and retrogradation resistance of HBF as well as reduced its pasting viscosity and the capacity to form gel networks. Importantly, starch degradation products during this condition were experimentally confirmed from various aspects. This study provided some reference for profiting from extrusion for further development of HB functional food and "clean label" food additives.


Subject(s)
Amylose , Flour , Food Handling , Hordeum , Starch , Hordeum/chemistry , Starch/chemistry , Flour/analysis , Viscosity , Amylose/chemistry , Food Handling/methods , Nutritive Value , Dietary Fiber/analysis , Solubility , beta-Glucans/chemistry , Chemical Phenomena , Hot Temperature
20.
Food Res Int ; 187: 114373, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38763649

ABSTRACT

Effect of complexation of three medium-chain fatty acids (octanoic, decylic and lauric acid, OA, DA and LA, respectively) on structural characteristics, physicochemical properties and digestion behaviors of cassava starch (CS) was investigated. Current study indicated that LA was more easily to combine with CS (complex index 88.9%), followed by DA (80.9%), which was also consistent with their corresponding complexed lipids content. Following the investigation of morphology, short-range ordered structure, helical structure, crystalline/amorphous region and fractal dimension of the various complexes, all cassava starch-fatty acids complexes (CS-FAs) were characterized with a flaked morphology rather than a round morphology in native starch (control CS). X-ray diffraction demonstrated that all CS-FAs had a V-type crystalline structure, and nuclear magnetic resonance spectroscopy confirmed that the complexes made from different fatty acids displayed similar V6 or V7 type polymorphs. Interestingly, small-angle X-ray scattering analysis revealed that α value became greater following increased carbon chain length of fatty acids, indicating the formation of a more ordered fractal structure in the aggregates. Changes in rheological parameters G' and G'' indicated that starch complexed with fatty acids was more likely to form a gel network, but difference among three CS-FAs complexes was significant, which might be contributed to their corresponding hydrophobicity and hydrophilicity raised from individual fatty acids. Importantly, digestion indicated that CS-LA complexes had the lowest hydrolysis degree, followed by the greatest RS content, indicating the importance of chain length of fatty acids for manipulating the fine structure and functionality of the complexes.


Subject(s)
Digestion , Fatty Acids , Lauric Acids , Manihot , Starch , X-Ray Diffraction , Manihot/chemistry , Starch/chemistry , Lauric Acids/chemistry , Fatty Acids/chemistry , Decanoic Acids/chemistry , Rheology , Caprylates/chemistry , Magnetic Resonance Spectroscopy
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