应用热辅助高静水压改性高粱淀粉:多尺度结构、技术功能特性和消化率

Ludmilla de Carvalho Oliveira, Ourania Gouseti, Bill Macnaughtan, Maria Teresa Pedrosa Silva Clerici, Ulliana Sampaio, Serafim Bakalis, Syahrizal Muttakin, Marcelo Cristianini
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摘要

本研究评估了热辅助高压淀粉加工过程中的高静水压(400-650 兆帕)和保温温度(25-50 °C)对高粱淀粉(SS)的多尺度结构(颗粒、结晶和分子)、技术功能特性和消化率的影响。响应面方法证实,加工过程对高粱淀粉改性的影响主要取决于压力水平。随着氢氧化钾的增加,加工后的高粱淀粉会逐渐失去颗粒结构和马耳他十字纹,这表明颗粒内部结构逐渐紊乱。这些发现与颗粒变大有关,因为颗粒的膨胀增加了。随着压力和温度的增加,结晶熔化焓从 22.7(SS)降至 0.1-26.9 J/g。SS 的长程和短程阶次测量结果表明,颗粒在加工过程中尚未完全糊化。吸水指数(1.7-5.4 g/g)和低温粘度(52.7-94.3 cP)随着压力的增加而增加,但凝胶强度(0.80-1.44 N)、峰值粘度(1394-2735 cP)、最终粘度(1499-3103 cP)和后退粘度(233-1288 cP)却有所降低。加工过的 SS 中 RS(27.3-35.8%)的增加归因于直链淀粉-脂质复合物。与原生 SS 相比,加工过程不会影响 RDS,但会降低 SDS。HHP 和温度的组合显示了生产不同物理改性 SS 的潜力,适合广泛的应用。
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Application of thermally assisted high hydrostatic pressure to modify sorghum starch: multi-scale structure, techno-functional properties and digestibility

The effects of high hydrostatic pressure (HHP) (400–650 MPa) and holding temperature (25–50 °C) in thermally assisted HHP processing on multi-scale structure of starch (granule, crystalline and molecular), techno-functional properties, and digestibility of sorghum starch (SS) were evaluated. Response surface methodology has verified that the process impact on the modification of SS was dependent primarily on the pressure level. As HHP increased, processed SS progressively lost their granular structure and Maltese cross, indicating gradual structural disorder within the granules. These findings were associated with larger particles, resulting from increased swelling of the granules. The enthalpy changes of crystallite melting decreased from 22.7 (SS) to 0.1–26.9 J/g as a result of increases in pressure and temperature. Measurements of long- and short-range order of SS showed granules have not been completely gelatinized during processing. Water absorption index (1.7–5.4 g/g) and cold viscosity (52.7–94.3 cP) increased as pressure increased, against lowered gel strength (0.80–1.44 N), peak (1394–2735 cP), final (1499–3103 cP) and setback viscosities (233–1288 cP). Increased RS (27.3–35.8%) in processed SS was attributed to the amylose–lipid complex. The process did not affect RDS compared to native SS, but it decreased SDS. Combinations of HHP and temperature demonstrated the potential to produce different versions of physically modified SS suitable for a wide range of applications.

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