Effect of fermentation time on the functional, thermal, pasting and microstructural properties of starch extracted from finger millet (Eleusine coracana) grains

dc.contributor.advisorRamashia, S. E.
dc.contributor.advisorMashau, M. E.
dc.contributor.authorMatodzi, Ndivhuwo Junior
dc.date2026
dc.date.accessioned2026-09-18T10:16:30Z
dc.date.issued2026-09-11
dc.descriptionMaster of Science in Food Science and Technology
dc.descriptionDepartment of Food Science and Technology
dc.description.abstractThis study investigated the effect of natural fermentation time, specifically 0, 12, 24, and 36 hours at 30°C, on the functional, thermal, pasting, and microstructural properties of starch extracted from finger millet grains. The experimental design utilised a completely randomised approach to systematically evaluate these specific variables across different time intervals. Starch was isolated using an alkaline steeping method and subsequently subjected to a series of comprehensive physicochemical, thermal, and structural analyses. Results indicated that natural fermentation significantly enhanced water and oil absorption capacities, while swelling power and solubility progressively declined. Furthermore, the lightness of the extracted starch increased significantly, while redness and yellowness decreased, thereby improving its overall colour profile for commercial food applications. Textural analysis revealed that fermentation softened the starch gel, reducing hardness but significantly improving springiness and chewiness. Biochemically, total starch content decreased due to microbial metabolism, whereas amylose content increased significantly after 24 and 36 hours of natural fermentation. Pasting profiles demonstrated substantial reductions in peak, final, breakdown, and setback viscosities, indicating a marked decrease in retrogradation tendency. Differential scanning calorimetry showed a gradual increase in gelatinisation temperatures, with gelatinisation enthalpy peaking at 12 hours before steadily declining. Microstructural evaluations via scanning electron microscopy revealed progressive surface erosion, distinct dents, and pore formation on the granules. X-ray diffraction confirmed the retention of the native A-type crystalline pattern, though relative crystallinity marginally increased at 12 hours before steadily declining. Fourier transform infrared spectroscopy confirmed structural alterations in hydrogen bonding within amorphous regions without forming any novel functional groups. In conclusion, fermentation induces profound structural modifications primarily driven by enzymatic and acid hydrolysis. Ultimately, a fermentation period of up to 24 hours is optimal for enhancing functional attributes, improving gel elasticity, and mitigating retrogradation, thereby providing a highly viable bioprocessing strategy for diverse industrial applications.
dc.identifier.apacitationMatodzi, N. J. (2026). <i>Effect of fermentation time on the functional, thermal, pasting and microstructural properties of starch extracted from finger millet (Eleusine coracana) grains</i>. (). . Retrieved from en_ZA
dc.identifier.chicagocitationMatodzi, Ndivhuwo Junior. <i>"Effect of fermentation time on the functional, thermal, pasting and microstructural properties of starch extracted from finger millet (Eleusine coracana) grains."</i> ., , 2026. en_ZA
dc.identifier.citationMatodzi, N.J. 2026. Effect of fermentation time on the functional, thermal, pasting and microstructural properties of starch extracted from finger millet (Eleusine coracana) grains. . . en_ZA
dc.identifier.ris TY - Dissertation AU - Matodzi, Ndivhuwo Junior AB - This study investigated the effect of natural fermentation time, specifically 0, 12, 24, and 36 hours at 30°C, on the functional, thermal, pasting, and microstructural properties of starch extracted from finger millet grains. The experimental design utilised a completely randomised approach to systematically evaluate these specific variables across different time intervals. Starch was isolated using an alkaline steeping method and subsequently subjected to a series of comprehensive physicochemical, thermal, and structural analyses. Results indicated that natural fermentation significantly enhanced water and oil absorption capacities, while swelling power and solubility progressively declined. Furthermore, the lightness of the extracted starch increased significantly, while redness and yellowness decreased, thereby improving its overall colour profile for commercial food applications. Textural analysis revealed that fermentation softened the starch gel, reducing hardness but significantly improving springiness and chewiness. Biochemically, total starch content decreased due to microbial metabolism, whereas amylose content increased significantly after 24 and 36 hours of natural fermentation. Pasting profiles demonstrated substantial reductions in peak, final, breakdown, and setback viscosities, indicating a marked decrease in retrogradation tendency. Differential scanning calorimetry showed a gradual increase in gelatinisation temperatures, with gelatinisation enthalpy peaking at 12 hours before steadily declining. Microstructural evaluations via scanning electron microscopy revealed progressive surface erosion, distinct dents, and pore formation on the granules. X-ray diffraction confirmed the retention of the native A-type crystalline pattern, though relative crystallinity marginally increased at 12 hours before steadily declining. Fourier transform infrared spectroscopy confirmed structural alterations in hydrogen bonding within amorphous regions without forming any novel functional groups. In conclusion, fermentation induces profound structural modifications primarily driven by enzymatic and acid hydrolysis. Ultimately, a fermentation period of up to 24 hours is optimal for enhancing functional attributes, improving gel elasticity, and mitigating retrogradation, thereby providing a highly viable bioprocessing strategy for diverse industrial applications. DA - 2026-09-11 DB - ResearchSpace DP - Univen KW - Fermentation time KW - Finger millet KW - Functional properties KW - Gelatinisation KW - Microstructure KW - Pasting properties KW - Starch KW - Thermal properties LK - https://univendspace.univen.ac.za PY - 2026 T1 - Effect of fermentation time on the functional, thermal, pasting and microstructural properties of starch extracted from finger millet (Eleusine coracana) grains TI - Effect of fermentation time on the functional, thermal, pasting and microstructural properties of starch extracted from finger millet (Eleusine coracana) grains UR - ER - en_ZA
dc.identifier.urihttps://univendspace.univen.ac.za/handle/11602/3480
dc.identifier.vancouvercitationMatodzi NJ. Effect of fermentation time on the functional, thermal, pasting and microstructural properties of starch extracted from finger millet (Eleusine coracana) grains. []. , 2026 [cited yyyy month dd]. Available from: en_ZA
dc.language.isoen
dc.relation.requiresPDF
dc.rightsUniversity of Venda
dc.subjectFermentation time
dc.subjectUCTDen_ZA
dc.subjectFunctional properties
dc.subjectGelatinisation
dc.subjectMicrostructure
dc.subjectPasting properties
dc.subjectStarch
dc.subjectThermal properties
dc.titleEffect of fermentation time on the functional, thermal, pasting and microstructural properties of starch extracted from finger millet (Eleusine coracana) grains
dc.typeDissertation

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