Ishii T, Hiramatsu K, Ohba T, Tsutsumi A
Sapporo Research Laboratory, Snow Brand Milk Products Co., Ltd., Japan.
J Dairy Sci. 2001 Nov;84(11):2357-63. doi: 10.3168/jds.S0022-0302(01)74684-X.
To gain further insight into diversiform phosphorus in bovine milk, we separated skim milk into casein micelle and serum fractions by microfiltration and subjected them to liquid-state 31P-nuclear magnetic resonance (NMR) spectroscopy. As previously reported, the skim milk spectrum showed a broad and indistinct peak from phosphoserine residue (SerP) of casein. In the casein micelle spectrum, however, the SerP peak was more clearly observed with a phosphate peak that may be from micellar calcium phosphate (MCP). The serum spectrum was the same as skim milk spectrum, except for SerP peak. Furthermore, two types of casein micelle fractions, with 0.90 and 1.04 of [beta-casein + kappa-casein]/[alpha(s1)-casein + alpha(s2)-casein] ratios were generated by different temperature microfiltrations, occurring because beta-casein is released from the micelle at a low temperature. The shape of SerP peaks changed dramatically in both the casein micelle spectra, when the temperature dropped from 35 to 5 degrees C. Deconvolution analysis indicated that each SerP peak comprised the same set of four peaks. Half-width and composition discriminated between the two types of casein micelle fractions. As a consequence, there was significant interaction between casein micelle and milk serum, causing cloudiness of SerP in the liquid-state 31P-NMR spectrum of milk. Casein composition influenced the SerP-MCP interaction in micellar structure. Shape changing of the SerP peak was discussed in connection with beta-casein-release phenomenon.
为了更深入了解牛乳中多样的磷,我们通过微滤将脱脂乳分离为酪蛋白胶粒和血清组分,并对它们进行液态³¹P-核磁共振(NMR)光谱分析。如先前报道,脱脂乳光谱显示出酪蛋白磷酸丝氨酸残基(SerP)的宽且不清晰的峰。然而,在酪蛋白胶粒光谱中,SerP峰与一个可能来自胶态磷酸钙(MCP)的磷酸盐峰一起更清晰地被观察到。血清光谱与脱脂乳光谱相同,除了SerP峰。此外,通过不同温度的微滤产生了两种酪蛋白胶粒组分,其[β-酪蛋白 + κ-酪蛋白]/[α(s1)-酪蛋白 + α(s2)-酪蛋白]的比值分别为0.90和1.04,这是因为β-酪蛋白在低温下从胶粒中释放出来。当温度从35℃降至5℃时,两种酪蛋白胶粒光谱中的SerP峰形状都发生了显著变化。去卷积分析表明每个SerP峰都由相同的一组四个峰组成。半高宽和组成区分了这两种酪蛋白胶粒组分。因此,酪蛋白胶粒与乳清之间存在显著相互作用,导致牛乳液态³¹P-NMR光谱中SerP出现浑浊。酪蛋白组成影响了胶粒结构中SerP-MCP的相互作用。结合β-酪蛋白释放现象讨论了SerP峰的形状变化。