Structural Diversity in Galactans From Red Seaweeds and Its Influence on Rheological Properties

被引:59
作者
Ciancia, Marina [1 ]
Matulewicz, Maria Cristina [2 ,3 ]
Tuvikene, Rando [4 ]
机构
[1] Univ Buenos Aires, Catedra Quim Biomol CIHIDECAR, Dept Biol Aplicada & Alimentos, Fac Agron,CONICET,UBA, Buenos Aires, DF, Argentina
[2] Univ Buenos Aires, Consejo Nacl Invest Cient & Tecn CONICET, Ctr Invest Hidratos Carbono CIHIDECAR, Buenos Aires, DF, Argentina
[3] Univ Buenos Aires, Fac Ciencias Exactas & Nat, Dept Quim Organ, Buenos Aires, DF, Argentina
[4] Tallinn Univ, Sch Nat Sci & Hlth, Tallinn, Estonia
关键词
sulfated galactans; red seaweeds; carrageenans; agarose; agaran; polysaccharide structure; rheological properties; COIL-HELIX TRANSITION; FAMILY SOLIERIACEAE GIGARTINALES; WATER-SOLUBLE POLYSACCHARIDES; KAPPA/IOTA-HYBRID CARRAGEENAN; CELL-WALL POLYSACCHARIDES; HIGHLY METHYLATED AGAR; CHEMICAL-STRUCTURE; IOTA-CARRAGEENAN; FURCELLARIA-LUMBRICALIS; TETRASPORIC STAGES;
D O I
10.3389/fpls.2020.559986
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Galactans are important components of many plant cell walls. Besides, they are the major polysaccharides in extracellular matrixes from different seaweeds, and other marine organisms, which have an acidic character due to the presence of sulfate groups in their structures. In particular, most of the red seaweeds biosynthesize sulfated galactans with very special linear backbones, constituted by alternating (1 -> 3)-beta-d-galactopyranose units (A-unit) and (1 -> 4)-alpha-galactopyranose residues (B-unit). In the industrially significant seaweeds as source of hydrocolloids, B-units belong either to thed-series and they produce carrageenans (as in the order Gigartinales), or to thel-series, and they are sources of agarose and/or structurally related polymers (i.e., Gelidiales, Gracilariales). In both cases, the latter units appear as cyclized 3,6-anhydro-alpha-galactose in certain amounts, which can be increased by alkaline cyclization of alpha-galactose 6-sulfate units. Besides, it has been clearly shown that some red algae produce different amounts of both galactan structures, known asd/l-hybrids. It is not yet clear if they comprise both diasteromeric types of units in the same molecule, or if they are mixtures of carrageenans and agarans that are very difficult to separate. It has been reported that the biosynthesis of these galactans, showing that the nucleotide transport ford-galactopyranose units is UDP-d-Gal, while forl-galactose, it is GDP-l-Gal, so, there is a different pathway in the biosynthesis of agarans. However, at least in those seaweeds that produce carrageenans as major galactans, but also agarans, both synthetic pathways should coexist. Another interesting characteristic of these galactans is the important variation in the sulfation patterns, which modulate their physical behavior in aqueous solutions. Although the most common carrageenans are of the kappa/iota- and lambda-types (with A-units sulfated at the 4- and 2-positions, respectively) and usually in agarans, when sulfated, is at the 6-position, many other sulfate arrangements have been reported, greatly influencing the functional properties of the corresponding galactans. Other substituents can modify their structures, as methyl ethers, pyruvic acid ketals, acetates, and single stubs of xylose or other monosaccharides. It has been shown that structural heterogeneity at some extent is essential for the proper functional performance of red algal galactans.
引用
收藏
页数:19
相关论文
共 189 条
[1]   Interpenetrating network formation in agarose -: κ-Carrageenan gel composites [J].
Amici, E ;
Clark, AH ;
Normand, V ;
Johnson, NB .
BIOMACROMOLECULES, 2002, 3 (03) :466-474
[2]   CARRAGEENANS .7. POLYSACCHARIDES FROM EUCHEUMA-SPINOSUM AND EUCHEUMA-COTTONII - COVALENT STRUCTURE OF IOTA-CARRAGEENAN [J].
ANDERSON, NS ;
DOLAN, TCS ;
REES, DA .
JOURNAL OF THE CHEMICAL SOCIETY-PERKIN TRANSACTIONS 1, 1973, (19) :2173-2176
[3]  
Armisén R, 2009, WOODHEAD PUBL FOOD S, P82, DOI 10.1533/9781845695873.82
[4]   Tailoring kappa/iota-hybrid carrageenan from Mastocarpus stellatus with desired gel quality through pre-extraction alkali treatment [J].
Azevedo, Gabriela ;
Hilliou, Loic ;
Bernardo, Gabriel ;
Sousa-Pinto, Isabel ;
Adams, Ralph W. ;
Nilsson, Mathias ;
Villanueva, Ronald D. .
FOOD HYDROCOLLOIDS, 2013, 31 (01) :94-102
[5]   Chemical composition of polysaccharides of the red alga Tichocarpus crinitus (Tichocarpaseae) from different sites of Peter the Great Bay, Sea of Japan [J].
Barabanova, A. O. ;
Tischenko, I. P. ;
Glazunov, V. P. ;
Yakovleva, I. M. ;
Solovyeva, T. F. ;
Zarubina, N. V. ;
Blokhin, M. G. ;
Yermak, I. M. .
RUSSIAN JOURNAL OF MARINE BIOLOGY, 2010, 36 (03) :195-200
[6]   Distinct properties of the five UDP-D-glucose/UDP-D-galactose 4-epimerase isoforms of Arabidopsis thaliana [J].
Barber, Christine ;
Rosti, Johannes ;
Rawat, Arun ;
Findlay, Kim ;
Roberts, Keith ;
Seifert, Georg J. .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2006, 281 (25) :17276-17285
[7]   IDENTIFICATION AND CHARACTERIZATION OF BIOLOGICAL PRECURSORS OF CARRAGEENANS BY C-13 NMR-SPECTROSCOPY [J].
BELLION, C ;
BRIGAND, G ;
PROME, JC ;
WELTI, D ;
BOCIEK, S .
CARBOHYDRATE RESEARCH, 1983, 119 (AUG) :31-48
[8]   BIOLOGY OF FURCELLARIA-LUMBRICALIS (HUDSON) LAMOUROUX (RHODOPHYTA, GIGARTINALES), A COMMERCIAL CARRAGEENOPHYTE [J].
BIRD, CJ ;
SAUNDERS, GW ;
MCLACHLAN, J .
JOURNAL OF APPLIED PHYCOLOGY, 1991, 3 (01) :61-82
[9]   Kappa-2 carrageenan: structure and performance of commercial extracts II. Performance in two simulated dairy applications [J].
Bixler, HJ ;
Johndro, K ;
Falshaw, R .
FOOD HYDROCOLLOIDS, 2001, 15 (4-6) :619-630
[10]   Hydrogen isotope replacement changes hydration and large scale structure, but not small scale structure, of agarose hydrogel networks [J].
Brenner, Tom ;
Tuvikene, Rando ;
Cao, Yiping ;
Fang, Yapeng ;
Rikukawa, Masahiro ;
Price, William S. ;
Matsukawa, Shingo .
EUROPEAN PHYSICAL JOURNAL E, 2019, 42 (05)