Polysaccharides. Группа авторов

Polysaccharides - Группа авторов


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well as for quantitative analyses of acemannan at the wavelength of 540 nm [24, 37, 68, 73]. Eberendu et al. [68, 81] developed a quantitative colorimetric method for measuring glucomannan from A. vera without previous separation or chemical degradation of the polymer. These colorimetric assays are based on the colored complex formed by binding the β (1–4)-linked polysaccharides and dye Congo red (sodium 4,4’-diphenyl-2,2’-diazo-bis-1-naphtlamino-4-sulfonate).

      The maximum wavelength of light absorption of Congo red in aqueous solution at 1% (w/v) is approximately 488 nm and maximum absorption of Congo red when conjugated with acemannan shifts the wavelength to 540 nm. The linearity obtained by the plot of absorption readings versus concentration (mg/L) of polysaccharides had a correlation coefficient of 0.999 at concentrations of between 0.9 and 72.7 mg/L. This result confirmed that the colorimetric assay method developed has many advantages over any currently used method for measuring A. vera polysaccharides, and that the assay is accurate for measuring the true amount of glucomannan and is not subject to interference from other components [68].

      To date, only a few researchers have documented the quantitative analysis of acemannan by chromogenic formation of Congo red–acemannan [82]. Acemannan was described as the only polysaccharide able to form a characteristic conjugate by reacting with Congo red stain in a basic medium, and the increase in absorption to a wavelength of 540 nm is stoichiometric in relation to acemannan concentration [83].

      Ray & Aswatha [24], also using the spectrophotometric technique, detected that the absorbance of the Congo red–acemannan conjugate varied with age of the plant and season of the year. The authors showed that 3-year-old plants harvested in the summer produced mucilaginous gel containing a greater amount of acemannan, given it had higher absorbance of the chromophore compared to 2-year-old plants and was higher than for plants harvested in winter and the rainy season.

      The International Aloe Science Council (IASC) has been approved the Congo red assay for quantifying the content of glucomannans from A. vera and its derivates. However, the A. vera gel content other polysaccharides with β(1–4)-linked and could generate confusion or false positive [33]. Metcalfe [84] developed and validated a simple and inexpensive method, where the acetyl groups of the acemannan polysaccharide are converted into a quantified ferric-acetohydroxamic complex using a UV–Vis spectrophotometer at 540 nm.

       1.4.2.6 Comprehensive Microarray Polymer Profiling

      Ahl et al. [85] presented a new methodology using a microarray-based technique (CoMPP) for the determination of Aloe polysaccharides in different Aloe species. For them, the CoMPP technique is a useful tool for the characterization of Aloe polysaccharides.

      A large variety of different methods of obtaining A. vera gel involving more than one step was found. Products derived from A. vera gel are commercially available in the form of gels, liquids, and particularly in spray dried or freeze dried products extracted from the inner part of the leaf, followed by stages of separation of insoluble fibers, alcohol precipitation of polysaccharides and purification of acemannan. Several authors have analyzed the composition of free sugars and used techniques for separation and purification of polysaccharides from A. vera gel and have determined the constitution of the monomers present. However, the types and molecular sizes of the polysaccharides isolated from A. vera gel vary due to factors such as the plant subspecies or seasonal differences in cultivation, different techniques used to isolate the polysaccharide, polysaccharide degradation during processing and also the analytical methodology applied.

      These differences hamper standardization of the process of obtaining A. vera gel and of an analytic methodology for quantifying its principal polysaccharide, acemannan, yielding non-reproducible data. However, based on the studies reviewed, natural polysaccharides are not stable under conditions of stress, such as the application of heat or enzymatic processes, leading to degradation of acemannan and loss of physical and biological properties of A. vera. Thus, the method by which the plant is processed can lead to final preparations with different chemical compositions. Therefore, selecting the right process to ensure the desired chemical composition of the end product is vital, thereby retaining the high molecular weight polysaccharides present in the fresh gel.

      Given that the inner gel obtained from A. vera is considered a source of biological activity attributed to the plant, it is essential to apply the body of knowledge on the chemical composition of A. vera to inform future studies for product standardization and development, and also to establish the most suitable method (or combination of methods) for quality control and subsequent confirmation of pharmacologic activity.

      1. Ray, A., Dutta Gupta, S., Ghosh, S., Isolation and characterization of potent bioactive fraction with antioxidant and UV absorbing activity from Aloe barbadensis Miller gel. J. Plant Biochem. Biotechnol., 22, 4, 483–7, 2013.

      2. Reynolds, T. and Dweck, A.C., Aloe vera leaf gel: A review update. J. Ethnopharmacol., 68, 1–3, 3–37, 1999.

      3. Choi, S. and Chung, M.H., A review on the relationship between components and their biologic effects. Semin. Integr. Med., 1, 1, 53–62, 2003.

      4. Ni, Y., Turner, D., Yates, K.M., Tizard, I., Isolation and characterization of structural components of Aloe vera L. leaf pulp. Int. Immunopharmacol., 4, 14 Spec.Iss., 1745–55, 2004.

      5. Chun-hui, L., Chang-hai, W., Zhi-liang, X., Yi, W., Isolation, chemical characterization and antioxidant activities of two polysaccharides from the gel and the skin of Aloe barbadensis Miller irrigated with sea water. Process Biochem., 42, 6, 961–70, 2007.

      6. Hamman, J.H., Composition and applications of Aloe vera leaf gel. Molecules, 13, 8, 1599–616, 2008.

      8. Manna, S. and McAnalley, B., Determination of the position of the O-acetyl group in a B-(1-4)mannan (acemannan) from Aloe barbadensis Miller. Carbohydr. Res., 241, 317–9, 1993.

      9. Femenia, A., Sánchez, E.S., Simal, S., Rosselló, C., Compositional features of polysaccharides from (Aloe barbadensis Miller) plant tissues. Carbohydr. Polym., 39, 2, 109–17, 1999.

      10. Talmadge, J., Chavez, J., Jacobs, L., Munger, C., Chinnah, T., Chow, J.T. et al., Fractionation of Aloe vera L. inner gel, purification and molecular profiling of activity. Int. Immunopharmacol., 4, 14 spec. Iss., 1757–73, 2004.

      11. Chow, T.-N.J., Williamson, D.A., Yates, K.M., Goux, W.J., Chemical characterization of the immunomodulating polysaccharide of Aloe vera L. Carbohydr. Res., 340, 6, 1131–42, 2005.

      12. Ni, Y., Yates, K.M., Tizard, I., Aloe polysaccharides, in: Aloes: The genus Aloe, T. Reynolds, (Ed.), pp. 76–82, CRC Press Taylor and Francis group, USA, 2004.

      13. Campestrini, L.H., Silveira, J.L.M., Duarte, M.E.R., Koop, H.S., Noseda, M.D., NMR and rheological study of Aloe barbadensis partially acetylated glucomannan. Carbohydr. Polym., 94, 1, 511–9, 2013.

      14. Chokboribal, J., Tachaboonyakiat, W., Sangvanich, P., Ruangpornvisuti, V., Jettanacheawchankit, S., Thunyakitpisal, P., Deacetylation affects the physical properties and bioactivity of acemannan, an extracted polysaccharide from Aloe vera. Carbohydr. Polym., 133, 556–66, 2015.

      15. Kim, Y.S., Chemical components of Aloe and its analysis, in: New Perspectves on Aloe, Y.I. Park, and S.K. Lee, (Eds.), pp. 57–62, Springer U., Boston, MA, 2006.

      16. Ali, J., Khan, A., Kotta, S., Ansari, S., Sharma, R., Kumar,


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