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Therapeutic and Industrial Applications of Curdlan With Overview on Its Recent Patents

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Journal Front Nutr
Date 2021 Jul 15
PMID 34262922
Citations 14
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Abstract

Curdlan is an exopolysaccharide, which is composed of glucose linked with β-(1,3)-glycosidic bond and is produced by bacteria, such as spp., spp., spp., spp., spp., and fungal sources like , etc. Curdlan has been utilized in the food and pharmaceutical industries for its prebiotic, viscosifying, and water-holding properties for decades. Recently, the usefulness of curdlan has been further explored by the pharmaceutical industry for its potential therapeutic applications. Curdlan has exhibited immunoregulatory and antitumor activity in preclinical settings. It was observed that curdlan can prevent the proliferation of malarial merozoites ; therefore, it may be considered as a promising therapy for the treatment of end-stage malaria. In addition, curdlan has demonstrated potent antiviral effects against human immunodeficiency virus (HIV) and virus. It has been suggested that the virucidal properties of curdlans should be extended further for other deadly viruses, such as severe acute respiratory syndrome (SARS), Middle East respiratory syndrome (MERS), and the current severe acute respiratory syndrome coronavirus-2 (SARS-CoV-2/COVID-19). The prebiotic property of curdlan would confer beneficial effects on the host by promoting the growth of healthy microbiota in the gut and consequently help to reduce gastrointestinal disorders. Therefore, curdlan can be employed in the manufacture of prebiotics for the management of various gastrointestinal dysbiosis problems. Studies on the mechanism of action of curdlan-induced suppression in microbial and tumor cells at the cellular and molecular levels would not only enhance our understanding regarding the therapeutic effectiveness of curdlan but also help in the discovery of new drugs and dietary supplements. The primary focus of this review is to highlight the therapeutic interventions of curdlan as an anticancer, anti-malaria, antiviral, and antibacterial agent in humans. In addition, our review provides the latest information about the chemistry and biosynthesis of curdlan and its applications for making novel dairy products, functional foods, and nutraceuticals and also details about the recent patents of curdlan and its derivatives.

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References
1.
Saito H, Ohki T, Sasaki T . A 13C nuclear magnetic resonance study of gel-forming (1 goes to 3)-beta-d-glucans. Evidence of the presence of single-helical conformation in a resilient gel of a curdlan-type polysaccharide 13140 from Alcaligenes faecalis var. myxogenes IFO 13140. Biochemistry. 1977; 16(5):908-14. DOI: 10.1021/bi00624a015. View

2.
Kumagai Y, Okuyama M, Kimura A . Heat treatment of curdlan enhances the enzymatic production of biologically active β-(1,3)-glucan oligosaccharides. Carbohydr Polym. 2016; 146:396-401. DOI: 10.1016/j.carbpol.2016.03.066. View

3.
Vetvicka V, Vannucci L, Sima P . β-glucan as a new tool in vaccine development. Scand J Immunol. 2019; 91(2):e12833. DOI: 10.1111/sji.12833. View

4.
Ikewaki N, Iwasaki M, Abraham S . Biological response modifier glucan through balancing of blood glucose may have a prophylactic potential in COVID-19 patients. J Diabetes Metab Disord. 2020; 19(2):2041-2044. PMC: 7575334. DOI: 10.1007/s40200-020-00664-4. View

5.
Evans S, Morrison D, Kaneko Y, Havlik I . The effect of curdlan sulphate on development in vitro of Plasmodium falciparum. Trans R Soc Trop Med Hyg. 1998; 92(1):87-9. DOI: 10.1016/s0035-9203(98)90969-5. View