Assessment of freeze damage in tuber starch with electrical impedance spectroscopy and thermodynamic, rheological, spectrographic techniques

Int J Biol Macromol. 2023 Dec 31;253(Pt 5):127197. doi: 10.1016/j.ijbiomac.2023.127197. Epub 2023 Oct 4.

Abstract

In this study, we aimed to use electrical impedance spectroscopy (EIS) to assess the freeze-damage level of starches from potato tubers treated with multiple freezing-thawing (FT) cycles. The results showed that the relationship between the physicochemical properties of starches and the impedance characteristics of starch paste is temperature-dependent. As the temperature rises to 70-90 °C, the impedance modules show a significant correlation with the amylose and mineral contents, gelatinization and pasting properties, short-range ordered structure, relative crystallinity, and damage level within the range of 10-1 MHz (p < 0.01). This could be because FT leads to a reduction in amylose and ion content. Compared to a high level of freeze-damaged starch (FDS), a low level of FDS has less amylopectin and more amylose. Additionally, the ions could be typically evenly distributed throughout the unbranched linear amylose structure in starch paste. At the peak gelatinization temperature, the starch paste made from a low level of FDS exhibits a weakened network structure, allowing more unbound water for ion movement and enhancing electric conduction. In conclusion, EIS can predict the damage level and properties of FDS, which can benefit the frozen starchy food industry.

Keywords: Electrical impedance spectroscopy; Freeze damaged starch; Functional properties.

MeSH terms

  • Amylopectin / chemistry
  • Amylose* / chemistry
  • Dielectric Spectroscopy
  • Freezing
  • Starch* / chemistry

Substances

  • Starch
  • Amylose
  • Amylopectin