KMITL
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Item type:Publication, Effect of Calcium carbide and Ethephon on flavor profile of ‘Kluai Hom Thong’(2026-06-01) ;Laryea, Damian ;Pinsirodom, Praphan ;Wattanachaisaereekul, Songsak ;Supapvanich, SuriyanArsa, SupeerayaBanana is a nutritious dessert with its rising demand resulting in the use of ripening agents to increase the ripening rate of bananas. There is, however, limited information on the effect these ripening agents may have on banana quality, including the flavor of bananas. This study determined the effect of CaC<inf>2</inf> and ethephon on the flavor profile of ‘Kluai Hom Thong’ (Musa AAA) banana at the ripe and overripe stages of ripening. Bananas were harvested at the green matured stage and treated with 1000 ppm ethephon and 3.07g/kg CaC<inf>2</inf>. Samples were taken at the fully ripe and overripe stages and analyzed using GC–MS. The Relative Odor Activity Value (ROAV) was also calculated. Esters were the most dominant volatile compounds in both the ripe and overripe stages. Ethephon and CaC<inf>2</inf> reduced the amount of esters in the bananas. Detection and relative content of alcohol and aldehyde volatile compounds varied among treatments. Isoamyl acetate (1-Butanol, 3-methyl-, acetate), an ester, was dominant in both stages of ripening with the control sample having a significantly higher amount among samples. Isoamyl acetate was established as the key volatile compound contributing to the overall aroma and flavor of Musa AAA. Ripening stage and treatments were observed to affect this key volatile compound and could contribute to significant changes in the perception of untreated and treated bananas. Therefore, care has to be taken when using ripening agents as they may affect the flavor of bananas. CaC<inf>2</inf>, however, may contain toxic chemicals; therefore, should be used with caution. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Heating Before or After Complexation Differentially Affects Structural and Functional Properties of Whey Protein Isolate–Gallic Acid Complexes(2026-05-01) ;Pangastuti, Hesti Ayuningtyas ;Wattanachaisaereekul, Songsak ;Karnjanapratum, SupatraPinsirodom, PraphanWhey proteins readily form complexes with polyphenols, the structure and functionality of which are influenced by factors such as polyphenol concentration and heat treatment. However, previous studies have largely examined these factors independently, and limited information is available regarding how the sequence of heat application (pre- vs. post-complexation) interacts with varying polyphenol concentrations to modulate the structure–function relationship of whey protein-polyphenol systems. This study investigated the effects of different heating conditions and gallic acid (GA) concentration on structural and functional properties of whey protein isolate–gallic acid (WPI-GA) complexes at pH 7.0. The treatments included native whey protein isolate (WPI), preheated WPI, native WPI-GA complexes, and WPI-GA complexes at two ratios (1:0.5 and 1:1 w/w) and heated either before or after complexation. GA addition and heat treatment increased turbidity and particle size, indicating enhanced complexation. The zeta potential showed minimal change, suggesting limited involvement of electrostatic interactions. Fluorescence quenching increased with GA concentration, confirming interactions between GA and WPI. Heat treatments increased fluorescence intensity and surface hydrophobicity, likely due to protein unfolding and exposure of hydrophobic regions. Higher GA concentration enhanced antioxidant activity, reduced foaming capacity, and did not affect emulsifying properties. Preheating also decreased the foaming capacity of the complexes, whereas post-heating restored it. Both heat treatments reduced the emulsifying activity index (EAI) but increased the emulsion stability index (ESI) compared with native WPI. Overall, this study provides insight into how GA concentration and heating sequence influence the complexation and functionality of WPI, contributing to a better understanding of protein–polyphenol interactions in bioactive-enriched dairy systems. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Fungal biotransformation of okara into functional food: Comparative species-dependent metabolomic and antioxidant profiles(2026-01-01) ;Farniga, Analdi ;Pinsirodom, PraphanWattanachaisaereekul, SongsakAbstractOkara, a nutrient-dense by-product of soybean processing, is abundantly produced in many Asian countries and holds significant potential for multiple purposes. Solid-state fungal fermentation represents a promising approach to improve its nutritional quality and functional properties; however, there is currently no research available on how fungal starter selection shapes the metabolites in the final product. This study aimed to investigate and compare the metabolite profiles of okara fermented using five different fungi: three species of Rhizopus (Rhizopus microsporus, Rhizopus oligosporus, and Rhizopus oryzae), Aspergillus oryzae, and Neurospora sitophila. Increased glucan content, which represents the fungal biomass, was observed after all fermentation periods (24 h for Rhizopus spp.; 48 h for A. oryzae; 72 h for N. sitophila). The highest glucan content, at 9.07% w/w, was achieved after fermentation with N. sitophila, representing an 11.20-fold increase, with α-glucan accounting for 6.38%. Meanwhile, R. microsporus yielded the highest β-glucan content at 5.93%, achieving a 20.45-fold increase. The LC-MS results showed that each starter facilitated the expression of different metabolites. A total of 181 metabolites were detected, with Rhizopus spp. notably producing 49–61 unique metabolites, while A. oryzae and N. sitophila distinctively resulted in formation of betaine and L-glutamic acid. In addition, fungal-fermented okara exhibited elevation of phenolic compounds by 2.19- to 4.13-fold and correspondingly possessed superior antioxidant properties compared to non-fermented okara. All told, the present study provides substantial information on considerations in fungal starter selection for fermenting okara. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Consumer Perceptions of the Tempe Quality in Local, National, and International Markets(2025-12-31) ;Fitri, Angel Kurnilah ;Ekawananto, Dimas Wahyu ;Astawan, Made ;Saraswati, SaraswatiWresdiyati, Tutik - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Characterization and physicochemical properties of a novel microencapsulated bio-calcium from Asian sea bass bones(2025-12-01) ;Phengleng, Salinee ;Sangadkit, Wipavadee ;Wattanachaisaereekul, Songsak ;Sirison, JirapornRuangsomboon, SuneeratCalcium is the most abundant mineral in the human body, yet intake remains insufficient in many populations. Fishbone-derived bio-calcium from Asian sea bass (Lates calcarifer), containing approximately 37.5 % calcium (dry weight), offers a cost-effective source. However, its primary form, hydroxyapatite, has low solubility due to high crystallinity, limiting its application in food fortification. This study aimed to enhance the physicochemical properties of bio-calcium (B) powders by encapsulating them with maltodextrin (M), gum arabic (G), and their combination (MG) at 5 %, 10 %, and 15 % (w/v) using spray drying. A 1:4 (w/w) ratio of B to wall materials was applied at 180 °C (inlet) and 60 °C (outlet) temperatures. Powder yields ranged from 25.2 % (15 % BG) to 30.3 % (15 % BM), with no significant differences (p > 0.05) among treatments. Encapsulated powders had higher lightness (L*) than B. The highest calcium content and encapsulation efficiency were observed in 5 % BG, while BM showed the lowest. Moisture content and water activity remained below 10 % and 0.6 %, respectively. BG had the highest hygroscopicity, while wall concentration had no significant (p > 0.05) impact. Encapsulation improved water solubility index (75.4–86.5 %), especially in BM. Particle sizes ranged from 0.92 µm (10 % BMG) to 2.89 µm (15 % BM), while zeta potentials ranged from -8.71 mV (15 % BM) to -20.90 mV (15 % BMG). Encapsulated powders were more spherical and smoother than B, while BG particles showed aggregation, whereas BMG showed mixed morphologies. These findings suggest that encapsulation enhanced the physicochemical properties of bio-calcium, supporting its potential application in calcium-fortified foods and dietary supplements. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Assessing the impact of polyphenol-rich plant extracts on ice cream meltdown behavior and structural elements using multivariate analysis(2025-06-01) ;Pangastuti, Hesti Ayuningtyas ;Wattanachaisaereekul, SongsakPinsirodom, PraphanPlant extracts are a rich source of polyphenols and become popular as a functional ingredient in ice cream products. However, addition of polyphenols in an ice cream mix can influent its structure and meltdown parameters. The objective of this study was to understand the effects of polyphenol-rich plant extracts on ice cream meltdown behavior and structural elements. Four plant extracts (grape seed, green tea, pomegranate, and roselle) were incorporated into ice cream mixes at 1, 2, and 3 wt % concentrations. All extracts resulted in ice creams with higher initial drip times (239–1421.5 s) and time to 50 % drip-through (1930–3397 s) with a concentration dependence compared to the control (234 and 1632 s, respectively), ranking highest to lowest as follows: green tea, grape seed, roselle, and pomegranate. The ice creams incorporating extracts could be classified into four distinct groups based on structural elements. The first group included green tea and pomegranate sample, which exhibited relatively high flow behavior index and low consistency coefficient. The second group was grape seed extract, characterized by high viscosity and low overrun. The third group comprised 2 % and 3 % roselle extract samples, with high fat globule size, and the fourth group solely the 1 % roselle extract, which showed high overrun. The results demonstrate that polyphenol-rich plant extracts can modify ice cream meltdown behavior due to changing its structural elements, and different polyphenol-rich plant extracts delay meltdown via specific mechanisms. These findings offer valuable insights for the application of plant extracts in ice cream quality modification. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Effect of protein-phenolic acid complexes on ice cream structure and meltdown behavior(2024-12-01) ;Pangastuti, Hesti Ayuningtyas ;Wattanachaisaereekul, SongsakPinsirodom, PraphanThis study focused on understanding the effects of protein-phenolic acid complexes on structural changes and meltdown behavior in ice cream. Three phenolic acids (4-hydroxybenzoic acid, vanillic acid, and gallic acid) at two concentrations (2 and 10 mg/g) were individually investigated. Compared to control ice cream, 2 and 10 mg/g phenolic acid increased the induction time for the first drip by 175–200% and 200–292%, respectively. Ice cream with gallic acid and vanillic acid at 10 mg/g exhibited the lowest meltdown rates compared to other treatments. Addition of phenolic acids caused reduction of ice cream pH (4.92–6.13), overrun (23.11–69.02%), consistency coefficient (9.47–175.56 Pa s<sup>n</sup>), and melting enthalpy (154,320–193,330 J/kg), while increasing the apparent viscosity (478.37–8770.17 mPa s), flow behavior index (0.42–0.62), and fat globule size (2.22–10.53 μm). Fluorescence spectroscopy analysis of a model ice cream mix indicated the presence of protein-phenolic acid interactions. Microscope images of ice cream samples treated with SDS and EDTA further suggested that protein-phenolic acid interactions help create fat aggregation. These findings indicate that addition of phenolic acid to an ice cream mix affects its microstructure by generating protein-phenolic acid complexes that cause protein-mediated fat aggregation, altering the ice cream's viscosity properties and resulting in a lower meltdown rate. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Co-transplantation of phyllosphere and rhizosphere microbes promotes microbial colonization and enhances sugarcane growth(2024-09-01) ;Khoiri, Ahmad Nuruddin ;Wattanachaisaereekul, Songsak ;Jirakkakul, Jiraporn ;Sutheeworapong, SawanneeKusonmano, KanthidaIncreasing evidence suggests that microbes colonizing both above- and below-ground parts of plants are critical for plant growth and agricultural productivity. However, the extent to which the interactions between above- and below-ground microbial communities affect microbial colonization and plant performance is not fully understood. To address this question, we performed a phyllosphere and rhizosphere microbiome transplantation experiment (MT-Exp) using sugarcane, followed by microbiome profiling with 16S rRNA amplicon sequencing. Plant phenotypic observation exhibited that transplanting field-grown sugarcane phyllosphere and/or rhizosphere onto sugarcane plantlets in a controlled growth condition significantly increased total biomass compared to un-transplanted plants. Notably, co-transplantation of phyllosphere (P) and rhizosphere (R) microbiomes (PR treatment) resulted in the most pronounced plant growth promotion. A comparison of alpha diversity revealed that microbiome transplantation enhanced the species richness of both phyllosphere and rhizosphere communities. Additionally, PERMANOVA results showed that microbiome transplantation strongly impacted the rhizosphere microbial community, while no significant differences were observed in the phyllosphere microbes. The PR treatment was found to be more effective in introducing a greater diversity of microbial taxa than single transplantation (P and R treatments), of which many of these transplanted taxa were recognized as plant growth-promoting bacteria (PGPB). Furthermore, the PR network displayed denser connectivity between above- and below-ground components compared to all other treatments. In conclusion, our findings highlight the interdependence of above-ground and below-ground microorganisms, demonstrating their indispensable role in colonizing and promoting sugarcane growth. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Effect of solid-state fermentation using Aspergillus oryzae and Aspergillus niger on bitter and bioactive compounds of Moringa oleifera seed flour(2024-09-01) ;Puspitasari, Candytias ;Pinsirodom, PraphanWattanachaisaereekul, SongsakMoringa seeds are a valuable source of phenolics and antioxidants when incorporated into food formulations. However, they also have a characteristic bitter taste attributed to the presence of glucosinolate compounds. This study aimed to assess the impact of solid-state fermentation (SSF) with monocultures and co-cultures of Aspergillus oryzae (AO) and Aspergillus niger (AN) on the levels of glucosinolate and phenolic compounds in moringa seed flour. After autoclave sterilization, the most significant reduction of glucosinolates was observed in samples fermented via AO:AN (1:1) co-culture, accompanied by a notable increase in myrosinase activity. Meanwhile, total phenolic and tannin content were most markedly increased with AO:AN (1:2) co-culture following autoclave sterilization. Assays measuring antioxidant activity (DPPH, ABTS, and FRAP) also showed substantial enhancement after fermentation. Pearson Correlation analysis indicated tannins to feature prominently in the antioxidant activity of moringa seed flour. All told, the results demonstrate SSF with AO:AN co-culture to be effective in reducing glucosinolates, elevating phenolic compounds, and enhancing antioxidants, the fermented flour also exhibited a noteworthy increase in protein content. These findings highlight the promising potential of fermented moringa seed flour in developing food products. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, The Relationship between Microbial Communities in Coffee Fermentation and Aroma with Metabolite Attributes of Finished Products(2024-08-01) ;Todhanakasem, Tatsaporn ;Van Tai, Ngo ;Pornpukdeewattana, Soisuda ;Charoenrat, TheppanyaYoung, Briana M.Coffee is a critical agricultural commodity and is used to produce premium beverages enjoyed by people worldwide. The microbiome of coffee beans has proven to be an essential tool that improves the flavor profile of coffee by creating aromatic flavor compounds through natural fermentation. This study investigated the natural microbial consortium during the wet process fermentation of coffee onsite in Thailand in order to identify the correlation between microbial diversity and biochemical characteristics including flavor, aroma, and metabolic attributes. Our study found 64 genera of bacteria and 59 genera of yeast/fungi present during the fermentation process. Group of microbes, mainly yeast and lactic acid bacteria, that predominated in the process were significantly correlated with preferable flavor and aroma compounds, including linalyl formate, linalool, cis-isoeugenol, trans-geraniol, and (-)-isopulegol. Some of the detected metabolites were found to be active compounds which could play a role in health.
