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Featured researches published by Qiao Shi.


Carbohydrate Polymers | 2014

Weissella confusa Cab3 dextransucrase: Properties and in vitro synthesis of dextran and glucooligosaccharides

Shraddha Shukla; Qiao Shi; Ndegwa Henry Maina; Minna Juvonen; MaijaTenkanen; Arun Goyal

Food-derived Weissella spp. have gained attention during recent years as efficient dextran producers. Weissella confusa Cab3 dextransucrase (WcCab3-DSR) was isolated applying PEG fractionation and used for in vitro synthesis of dextran and glucooligosaccharides. WcCab3-DSR had a molar mass of 178 kDa and was activated by Co(2+) and Ca(2+) ions. Glycerol and Tween 80 enhanced enzyme stability, and its half-life at 30°C increased from 10h to 74 h and 59 h, respectively. The (1)H and (13)C NMR spectral analysis of the produced dextran confirmed the presence of main chain α-(1→6) linkages with only 3.0% of α-(1→3) branching, of which some were elongated. An HPSEC analysis in DMSO revealed a high molecular weight of 1.8 × 10(7)g/mol. Glucooligosaccarides produced through the acceptor reaction with maltose, were analyzed with HPAEC-PAD and ESI-MS/MS. They were a homologous series of isomaltooligosaccharides with reducing end maltose units. To the best of our knowledge, this is a first report on native W. confusa dextransucrase.


International Journal of Food Microbiology | 2015

The impact of fermentation with exopolysaccharide producing lactic acid bacteria on rheological, chemical and sensory properties of pureed carrots (Daucus carota L.)

Kaisu Honkapää; Ndegwa Henry Maina; Qiao Shi; Kaarina Viljanen; Hannu Maaheimo; Liisa Virkki; Maija Tenkanen; Raija Lantto

Fermentation with lactic acid bacteria (LAB) offers a natural means to modify technological and nutritional properties of foods and food ingredients. This study explored the impact of fermentation with different exopolysaccharide (EPS) producing LAB on rheological, chemical and sensory properties of puréed carrots in water, as a vegetable model, with the focus on texture formation. The screening of 37 LAB strains for starter selection revealed 16 Lactobacillus, Leuconostoc and Weissella strains capable of EPS (dextran, levan, and/or β-glucan) production in the carrot raw material. Fermentations with five out of six selected EPS producers modified perceived texture of the liquid carrot model (p<0.05). The formation of low-branched dextran correlated with perceived thickness, whereas the production of β-glucan correlated with perceived elasticity. Low-branched dextran producing Weissella confusa and Leuconostoc lactis strains produced thick texture accompanied by pleasant odour and flavour. The fermentation with the selected EPS-producing LAB strains is a promising clean label approach to replace hydrocolloid additives as texturizers in vegetable containing products, not only carrot.


PLOS ONE | 2015

Cloning and Characterization of a Weissella confusa Dextransucrase and Its Application in High Fibre Baking

Ilkka Kajala; Qiao Shi; Antti Nyyssölä; Ndegwa Henry Maina; Yaxi Hou; Kati Katina; Maija Tenkanen

Wheat bran offers health benefits as a baking ingredient, but is detrimental to bread textural quality. Dextran production by microbial fermentation improves sourdough bread volume and freshness, but extensive acid production during fermentation may negate this effect. Enzymatic production of dextran in wheat bran was tested to determine if dextran-containing bran could be used in baking without disrupting bread texture. The Weissella confusa VTT E-90392 dextransucrase gene was sequenced and His-tagged dextransucrase Wc392-rDSR was produced in Lactococcus lactis. Purified enzyme was characterized using 14C-sucrose radioisotope and reducing value-based assays, the former yielding K m and V max values of 14.7 mM and 8.2 μmol/(mg∙min), respectively, at the pH optimum of 5.4. The structure and size of in vitro dextran product was similar to dextran produced in vivo. Dextran (8.1% dry weight) was produced in wheat bran in 6 h using Wc392-rDSR. Bran with and without dextran was used in wheat baking at 20% supplementation level. Dextran presence improved bread softness and neutralized bran-induced volume loss, clearly demonstrating the potential of using dextransucrases in bran bioprocessing for use in baking.


Journal of Agricultural and Food Chemistry | 2017

Exopolysaccharides Production during the Fermentation of Soybean and Fava Bean Flours by Leuconostoc mesenteroides DSM 20343

Yan Xu; Rossana Coda; Qiao Shi; Päivi Tuomainen; Kati Katina; Maija Tenkanen

Consumption of legumes is highly recommended due to their beneficial properties. Thus, there is a great interest in developing new legume-based products with good texture. In situ produced microbial exopolysaccharides (EPS) are regarded as efficient texture modifiers in the food industry. In this study, soybean and fava bean flours with different levels of added sucrose were fermented by Leuconostoc mesenteroides DSM 20343. After fermentation, a significant increase in viscosity was observed. Sugars, glucans, fructans, mannitol, lactic acid, and acetic acid were quantified to follow the EPS and metabolite production. By treating the fermented doughs selectively with dextranase or levanase, the major role of glucans in viscosity improvement was confirmed. The roles of microbial fructansucrase and endogenous α-galactosidase in degradation of raffinose family oligosaccharides (RFO) were also investigated. This study shows the potential of Ln. mesenteroides DSM 20343 in tailoring viscosity and RFO profiles in soybean and fava bean flours.


Food Chemistry | 2016

Lactose- and cellobiose-derived branched trisaccharides and a sucrose-containing trisaccharide produced by acceptor reactions of Weissella confusa dextransucrase

Qiao Shi; Minna Juvonen; Yaxi Hou; Ilkka Kajala; Antti Nyyssölä; Ndegwa Henry Maina; Hannu Maaheimo; Liisa Virkki; Maija Tenkanen

Dextran-producing Weissella have received significant attention. However, except for maltose, the acceptor reactions of Weissella dextransucrases with different sugars have not been investigated. The action of recombinant Weissella confusa VTT E-90392 dextransucrase was tested with several potential acceptors, particularly, analogs lactose and cellobiose. The major acceptor products of both disaccharides were identified as branched trisaccharides, with a glucosyl residue α-(1 → 2)-linked to the acceptors reducing end. An additional product, isomelezitose (6(Fru)-α-Glcp-sucrose), was also produced when using lactose as an acceptor. This is the first report of the synthesis of isomelezitose by a dextransucrase. The NMR spectra of the three trisaccharides were fully assigned, and their structures were confirmed by selective enzymatic hydrolysis. The trisaccharides prepared from (13)C6(glc) sucrose and lactose were analyzed by ESI-MS(n), and the fragmentation patterns of these compounds were characterized.


Journal of Agricultural and Food Chemistry | 2016

Optimization of Isomaltooligosaccharide Size Distribution by Acceptor Reaction of Weissella confusa Dextransucrase and Characterization of Novel α-(1→2)-Branched Isomaltooligosaccharides.

Qiao Shi; Yaxi Hou; Minna Juvonen; Päivi Tuomainen; Ilkka Kajala; Shraddha Shukla; Arun Goyal; Hannu Maaheimo; Kati Katina; Maija Tenkanen

Long-chain isomaltooligosaccharides (IMOs) are promising prebiotics. IMOs were produced by a Weissella confusa dextransucrase via maltose acceptor reaction. The inputs of substrates (i.e., sucrose and maltose, 0.15-1 M) and dextransucrase (1-10 U/g sucrose) were used to control IMO yield and profile. According to response surface modeling, 1 M sucrose and 0.5 M maltose were optimal for the synthesis of longer IMOs, whereas the dextransucrase dosage showed no significant effect. In addition to the principal linear IMOs, a homologous series of minor IMOs were also produced from maltose. As identified by MS(n) and NMR spectroscopy, the minor trisaccharide contained an α-(1→2)-linked glucosyl residue on the reducing residue of maltose and thus was α-d-glucopyranosyl-(1→2)-[α-d-glucopyranosyl-(1→4)]-d-glucopyranose (centose). The higher members of the series were probably formed by the attachment of a single unit branch to linear IMOs. This is the first report of such α-(1→2)-branched IMOs produced from maltose by a dextransucrase.


Applied Microbiology and Biotechnology | 2016

Rye bran as fermentation matrix boosts in situ dextran production by Weissella confusa compared to wheat bran.

Ilkka Kajala; Jari Mäkelä; Rossana Coda; Shraddha Shukla; Qiao Shi; Ndegwa Henry Maina; Päivi Ekholm; Arun Goyal; Maija Tenkanen; Kati Katina


PLOS ONE | 2015

Compositions of the doughs used for studying the effects of bran with dextran on bread properties.

Ilkka Kajala; Qiao Shi; Antti Nyyssölä; Ndegwa Henry Maina; Yaxi Hou; Kati Katina; Maija Tenkanen


PLOS ONE | 2015

Effects of pH and temperature on WcE392-rDSR activity.

Ilkka Kajala; Qiao Shi; Antti Nyyssölä; Ndegwa Henry Maina; Yaxi Hou; Kati Katina; Maija Tenkanen


PLOS ONE | 2015

Predicted protein structure of WcE392-rDSR.

Ilkka Kajala; Qiao Shi; Antti Nyyssölä; Ndegwa Henry Maina; Yaxi Hou; Kati Katina; Maija Tenkanen

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Ilkka Kajala

VTT Technical Research Centre of Finland

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Kati Katina

University of Helsinki

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Yaxi Hou

University of Helsinki

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Antti Nyyssölä

VTT Technical Research Centre of Finland

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Hannu Maaheimo

VTT Technical Research Centre of Finland

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Arun Goyal

Indian Institute of Technology Guwahati

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Shraddha Shukla

Indian Institute of Technology Guwahati

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