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Physicochemical and Spectroscopic Properties of Biofield Energy Treated Protose

机译:生物场能量处理的蛋白质的理化性质和光谱性质

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Protose is the enzyme digest of mixed proteins that is recommended for culture media, bulk production of enzymes, antibiotics, toxins, veterinary preparations, etc. This study was proposed to evaluate the effect of biofield energy treatment on the physicochemical and spectroscopic properties of protose. The study was achieved in two groups i.e. control and treated. The control group was remained as untreated, while the treated group was received Mr. Trivedi's biofield energy treatment. Finally, both the control and treated samples were evaluated using various analytical techniques. The X-ray diffractograms (XRD) of control and treated samples showed the halo patterns peak that suggested the amorphous nature of both the samples of protose. The particle size analysis showed about 12.68% and 90.94 increase in the average particle size (d50) and d99 (particle size below which 99% particles are present) of treated protose with respect to the control. The surface area analysis revealed the 4.96% decrease in the surface area of treated sample as compared to the control sample. The differential scanning calorimetry (DSC) analysis revealed the 22.49% increase in the latent heat of fusion of treated sample as compared to the control. Thermogravimetric analysis (TGA) analysis showed increase in maximum thermal degradation temperature (Tmax) by 5.02% in treated sample as compared to the control. The increase in Tmax might be correlated with increased thermal stability of treated sample as compared to the control. Fourier transform infrared (FT-IR) study showed the alteration in the vibrational frequency of functional groups like N-H, C-H, and S=O of treated protose as compared to the control sample. Based on the overall analytical results, it is concluded that Mr. Trivedi's biofield energy treatment has a significant impact on the physicochemical and spectral properties of protose. As a result, the treated protose might be more effective as a culture medium than the corresponding control.
机译:蛋白质是混合蛋白的酶消化物,推荐用于培养基,酶,抗生素,毒素,兽药等的大量生产。本研究旨在评估生物场能量处理对蛋白质的理化和光谱性质的影响。该研究在两组中完成,即对照组和治疗组。对照组保持未经治疗,而治疗组接受了特里维迪先生的生物场能量治疗。最后,使用各种分析技术评估对照样品和处理样品。对照和处理样品的X射线衍射图(XRD)显示出晕轮峰,这表明这两个蛋白质样品均为无定形性质。粒度分析表明,相对于对照,处理过的蛋白的平均粒度(d50)和d99(存在低于99%的颗粒的粒度)的平均粒度(d50)和d99增加了约12.68%和90.94。表面积分析表明,与对照样品相比,处理样品的表面积减少了4.96%。差示扫描量热法(DSC)分析显示,与对照相比,处理样品的融合潜热增加了22.49%。热重分析(TGA)分析显示,与对照相比,处理后的样品的最大热降解温度(Tmax)提高了5.02%。与对照相比,Tmax的增加可能与处理样品的热稳定性增加有关。傅立叶红外光谱(FT-IR)研究表明,与对照样品相比,处理后的蛋白质组中N-H,C-H和S = O等官能团的振动频率发生了变化。根据总体分析结果,可以得出结论,特里维迪先生的生物场能量治疗对蛋白质的理化和光谱特性有重大影响。结果,与相应的对照相比,处理过的蛋白作为培养基可能更有效。

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