Tailored enzymatic treatment of Chlorella vulgaris cell wall leads to effective disruption while preserving oxidative stability

被引:33
作者
Canelli, Greta [1 ]
Martinez, Patricia Murciano [2 ]
Hauser, Billie Maude [1 ]
Kuster, Isabelle [1 ]
Rohfritsch, Zhen [2 ]
Dionisi, Fabiola [2 ]
Bolten, Christoph J. [2 ]
Neutsch, Lukas [3 ]
Mathys, Alexander [1 ]
机构
[1] Swiss Fed Inst Technol, Sustainable Food Proc Lab, Schmelzbergstr 9, CH-8092 Zurich, Switzerland
[2] Nestle Res Vers Chez Les Blanc, Route Jorat 57, CH-1000 Lausanne, Switzerland
[3] ZHAW, Inst Chem & Biotechnol, Campus Gruental, CH-8820 Wadenswil, Switzerland
关键词
Microalgae; High-pressure homogenization; Cell wall-degrading enzymes; Bioaccessibility; Lipid oxidation;
D O I
10.1016/j.lwt.2021.111157
中图分类号
TS2 [食品工业];
学科分类号
0832 ;
摘要
The green microalgae Chlorella vulgaris is a source of valuable nutrients, whose bioaccessibility is limited by the structurally complex cell wall. Enzymatic degradation of the cell wall represents a remarkable alternative to mechanical treatments due to its mildness and specificity. This work aimed to define an optimal combination of enzymes to increase the lipid and protein bioaccessibilities of C. vulgaris cells while preserving oxidative stability. Among the tested enzymes, chitinase, rhamnohydrolase, and galactanase caused the highest release of microalgae cellular material. Treatment with this enzymatic combination produced a slight increase in protein bioaccessibility, from 49.2% +/- 3.9% to 58.7% +/- 3.5%, but no increase in lipid bioaccessibility in comparison to the control. High-pressure homogenization (HPH) led to 61.8% +/- 2.6% lipid and 59.8% +/- 1.8% protein bioaccessibilities. Cell integrity was preserved after enzymatic treatment, while the mean particle size was reduced from 5 to 2 mu m after HPH. Oxidative stability was maintained over 3 months of accelerated shelf life in untreated and enzymatically treated C. vulgaris biomass while HPH caused drastic instability and off-flavour formation. Although more work is needed to optimise the enzymatic treatment to maximise the nutrient bioaccessibility, the presented process was successful in preserving lipid quality.
引用
收藏
页数:7
相关论文
共 37 条
[1]   Integrity of the microalgal cell plays a major role in the lipolytic stability during wet storage [J].
Balduyck, Lieselot ;
Stock, Thomas ;
Bijttebier, Sebastiaan ;
Bruneel, Charlotte ;
Jacobs, Griet ;
Voorspoels, Stefan ;
Muylaert, Koenraad ;
Foubert, Imogen .
ALGAL RESEARCH-BIOMASS BIOFUELS AND BIOPRODUCTS, 2017, 25 :516-524
[2]   Comparison of microalgal biomass profiles as novel functional ingredient for food products [J].
Batista, Ana Paula ;
Gouveia, Luisa ;
Bandarra, Narcisa M. ;
Franco, Jose M. ;
Raymundo, Anabela .
ALGAL RESEARCH-BIOMASS BIOFUELS AND BIOPRODUCTS, 2013, 2 (02) :164-173
[3]   A new insight into cell walls of Chlorophyta [J].
Baudelet, Paul-Hubert ;
Ricochon, Guillaume ;
Linder, Michel ;
Muniglia, Lionel .
ALGAL RESEARCH-BIOMASS BIOFUELS AND BIOPRODUCTS, 2017, 25 :333-371
[4]   Cell disruption of Nannochloropsis sp. improves in vitro bioaccessibility of carotenoids and ω3-LC-PUFA [J].
Bernaerts, Tom M. M. ;
Verstreken, Heleen ;
Dejonghe, Celine ;
Gheysen, Lore ;
Foubert, Imogen ;
Grauwet, Tara ;
Van Loey, Ann M. .
JOURNAL OF FUNCTIONAL FOODS, 2020, 65
[5]   Effect of Arthrospira platensis microalgae protein purification on emulsification mechanism and efficiency [J].
Boecker, Lukas ;
Bertsch, Pascal ;
Wenner, David ;
Teixeira, Stephanie ;
Bergfreund, Jotam ;
Eder, Severin ;
Fischer, Peter ;
Mathys, Alexander .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2021, 584 :344-353
[6]   Pulsed electric field based cyclic protein extraction of microalgae towards closed-loop biorefinery concepts [J].
Buchmann, Leandro ;
Braendle, Ivraina ;
Haberkorn, Iris ;
Hiestand, Michele ;
Mathys, Alexander .
BIORESOURCE TECHNOLOGY, 2019, 291
[7]   Biochemical and Morphological Characterization of Heterotrophic Crypthecodinium cohnii and Chlorella vulgaris Cell Walls [J].
Canelli, Greta ;
Martinez, Patricia Murciano ;
Austin, Sean ;
Ambuhl, Mark E. ;
Dionisi, Fabiola ;
Bolten, Christoph J. ;
Carpine, Roberta ;
Neutsch, Lukas ;
Mathys, Alexander .
JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2021, 69 (07) :2226-2235
[8]   Biochemical and Nutritional Evaluation ofChlorellaandAuxenochlorellaBiomasses Relevant for Food Application [J].
Canelli, Greta ;
Tarnutzer, Carmen ;
Carpine, Roberta ;
Neutsch, Lukas ;
Bolten, Christoph J. ;
Dionisi, Fabiola ;
Mathys, Alexander .
FRONTIERS IN NUTRITION, 2020, 7
[9]   Chlorella vulgaris in a heterotrophic bioprocess: Study of the lipid bioaccessibility and oxidative stability [J].
Canelli, Greta ;
Neutsch, Lukas ;
Carpine, Roberta ;
Tevere, Sabrina ;
Giuffrida, Francesca ;
Rohfritsch, Zhen ;
Dionisi, Fabiola ;
Bolten, Christoph J. ;
Mathys, Alexander .
ALGAL RESEARCH-BIOMASS BIOFUELS AND BIOPRODUCTS, 2020, 45
[10]   Trends in Microalgae Incorporation Into Innovative Food Products With Potential Health Benefits [J].
Caporgno, Martin P. ;
Mathys, Alexander .
FRONTIERS IN NUTRITION, 2018, 5