| Literature DB >> 35327297 |
Aileen Pua1,2, Vivien Chia Yen Tang2, Rui Min Vivian Goh2, Jingcan Sun2, Benjamin Lassabliere2, Shao Quan Liu1.
Abstract
Consumer interest and research in plant-based dairy analogues has been growing in recent years because of increasingly negative implications of animal-derived products on human health, animal wellbeing, and the environment. However, plant-based dairy analogues face many challenges in mimicking the organoleptic properties of dairy products due to their undesirable off-flavours and textures. This article thus reviews fermentation as a viable pathway to developing clean-label plant-based dairy analogues with satisfactory consumer acceptability. Discussions on complementary strategies such as raw material selection and extraction technologies are also included. An overview of plant raw materials with the potential to be applied in dairy analogues is first discussed, followed by a review of the processing steps and innovative techniques required to transform these plant raw materials into functional ingredients such as plant-based aqueous extracts or flours for subsequent fermentation. Finally, the various fermentation (bacterial, yeast, and fungal) methodologies applied for the improvement of texture and other sensory qualities of plant-based dairy analogues are covered. Concerted research efforts would be required in the future to tailor and optimise the presented wide diversity of options to produce plant-based fermented dairy analogues that are both delicious and nutritionally adequate.Entities:
Keywords: biotransformation; dairy analogues; flavour; functionality; organoleptics; plant-based fermented foods
Year: 2022 PMID: 35327297 PMCID: PMC8952883 DOI: 10.3390/foods11060875
Source DB: PubMed Journal: Foods ISSN: 2304-8158
Carbohydrate, fibre, total protein, and total fat content of some common plant-based raw materials (all values are expressed in g/100 g dry basis).
| Carbohydrate | Fibre | Protein | Fat | ||
|---|---|---|---|---|---|
| Legumes | Soy [ | 30.2 | 9.3 | 36.5 | 19.9 |
| Chickpea [ | 63.0 | 12.2 | 20.5 | 6.0 | |
| Lupin [ | 40.4 | 18.9 | 36.2 | 9.7 | |
| Faba bean [ | 58.3 | 25.0 | 26.1 | 1.5 | |
| Lentil [ | 63.1 | 10.8 | 23.9 | 2.2 | |
| Peanut [ | 16.1 | 8.5 | 25.8 | 49.2 | |
| Grains | Rice [ | 80.0 | 1.3 | 7.1 | 0.7 |
| Oat [ | 66.3 | 11.6 | 16.9 | 6.9 | |
| Quinoa [ | 64.2 | 14.2 | 14.5 | 5.2 | |
| Maize [ | 74.0 | 7.3 | 9.4 | 4.7 | |
| Barley [ | 77.7 | 15.6 | 9.9 | 1.2 | |
| Nuts, Drupes, and Seeds | Almond [ | 51.6 | 12.5 | 21.2 | 49.9 |
| Hazelnut [ | 16.7 | 9.7 | 15.0 | 60.8 | |
| Cashew [ | 30.2 | 3.3 | 18.2 | 43.9 | |
| Walnut [ | 13.7 | 6.7 | 15.2 | 65.2 | |
| Macadamia [ | 13.8 | 8.6 | 7.9 | 75.8 | |
| Tubers | Potato [ | 15.7 | 2.4 | 1.7 | 0.1 |
| Cassava [ | 38.1 | 1.8 | 1.4 | 0.3 | |
| Yam [ | 27.9 | 4.1 | 1.5 | 0.2 | |
| Sweet potato [ | 20.1 | 3.0 | 1.6 | 0.1 |
Values are obtained from the following literature: Cichonska and Ziarno (2022) [4]; Souza et al. (2015) [19]; Petrova and Petrov (2020) [20]; Chandrasekara and Kumar (2016) [21].
Figure 1Overview of possible processing techniques for plant-based ingredient extraction for dairy analogue production.
Applications of various processing techniques for the extraction of plant-based ingredients intended for dairy analogue production.
| Technique | Source | Material | Process | Changes in | Influence on Flavour/ | Impact on Nutrients/ |
|---|---|---|---|---|---|---|
| Mechanical Pre-Treatment and Extraction | ||||||
| Roasting | Ferawati et al. (2019) * [ | Pulses | Roasting before flour production |
Increase in water-holding capacity (WHC) | - |
Increase in total dietary fibre; Some pulses experienced increase in choline and folate |
| Zaaboul et al. (2019) * [ | Peanuts | Roasting before aqueous extraction |
Higher protein solubility and extraction; Improved emulsion stability | - | - | |
| Ahmadian-Kouchaksaraei et al. (2014) * [ | Sesame | Roasting before aqueous extraction | - |
Reduced LOX activity; Reduced bitterness, ‘beany’ and ‘chalky’ flavours; Reduced oxidative off-flavour formation | - | |
| Dehulling | Ma et al. (2021) [ | Peas | Dehulling before aqueous extraction (yoghurt fermentation) | - |
Reduced formation of the off-odorant 2-methoxy-3-isopropyl-(5/6)-methylpyrazine |
Lowered amounts of extracted albumin (no effect on texture) |
| Ghavidel andPrakash (2007) * [ | Legumes (green gram, cowpea, | Dehulling before flour production | - | - |
Decreased soluble and insoluble dietary fibre; Decreased phytate; Increased iron and calcium bioavailability | |
| Soaking and | Ma et al. (2021) [ | Peas | Blanching before aqueous extraction (yoghurt fermentation) |
Increased firmness, viscosity and WHC of yoghurts |
Reduced LOX activity and related lipid oxidation off-flavours | - |
| Peng et al. (2015) [ | Soy | Blanching before aqueous extraction (yoghurt fermentation) |
Decreased soy protein solubility; Higher temperature blanching led to formation of softer, less firm yoghurts |
Reduced ‘beany’ off-flavour and ‘chalky’ taste | - | |
| Ferawati et al. (2019) * [ | Pulses | Blanching/boiling before flour production |
Improved WHC and gelation rates | - |
Choline losses in some blanched pulse flours | |
| Milling | Kaharso et al. (2021) * [ | Soy | Anaerobic wet-milling for aqueous | - |
Reduced lipid oxidation products and off-odorants (e.g., alcohols and aldehydes) | - |
| Kizzie-Hayford et al. (2015) * [ | Tiger nut | Wet-milling with a |
Increased milling intensity produced a smaller particle size distribution and higher total solids yield (improved PBAE colloidal stability) | - | - | |
| Chemical and biological treatments | ||||||
| pH | Ma et al. (2021) [ | Peas | Alteration of soaking pH before aqueous extraction and yoghurt fermentation |
Alkaline treatment reduced gel hardness (improved sensory scores for texture) |
Alkaline and acid treatments reduced lipid oxidation products and improved sensory scores for smell and taste | - |
| Pineli et al. (2015) * [ | Quinoa | Alteration of cooking pH |
Optimised pH and salinity resulted in three times greater soluble protein extraction versus pure water | - | - | |
| Ahmadian-Kouchaksaraei et al. (2014) * [ | Sesame | Alkalinisation of |
Increased protein solubility and fat extraction versus untreated soaking water |
Lower LOX activity and theoretical reduction in off-flavour formation under alkaline conditions | - | |
| Chemical | Vatansever et al. (2021) * [ | Pea | Treatment with supercritical | - |
Reduction in total volatiles and odour-contributing compounds to below detection threshold levels | - |
| Guldiken et al. (2021) * [ | Lentil | Treatment with | - |
Reduced aldehydes (potential off-odorants) | - | |
| Wang et al. (2020) * [ | Pea | Washing of flour with organic solvents |
Reduction in emulsion stability and solubility of pea protein flour |
Removed majority of volatile compounds, resulting in deodorised product | - | |
| Inouye et al. (2002) * [ | Soy | Treatment with | - |
Reduced off-odorant (hexanal) in deodorised product | - | |
| Enzymatic | Jiang et al. (2020) [ | Faba bean | Starch hydrolysis |
Addition of enzymatic starch hydrolysate produced yoghurts with higher viscosities and gel strengths | - | - |
| Zannini et al. (2018) [ | Quinoa | Protease (Profix 100 L and Bioprotease PF50) treatment of |
Improved protein solubility in produced PBAE | - | - | |
| Park and Lee (2015) [ | Soy | Flavourzyme® and Neutrase® treatment before yoghurt |
Reduced yoghurt viscosity; Reduced WHC |
Increased organic acid production during fermentation | - | |
| Luana et al. (2014) [ | Oat | Enzymatic (Depol 740 L and Grindamyl 1000) treatment and yoghurt fermentation |
Lower viscosity and WHC |
Increased sweet and cereal taste |
Significant increase in soluble fibre content | |
| Li et al. (2013) [ | Soy | Enzymatic (papain) |
Extensive hydrolysis of soy proteins, reducing graininess; Better stability, cheese homogeneity, and sensory acceptance | - | - | |
| Germination | Ogundipe et al. (2021) [ | Tiger nut | Germination before aqueous extraction and yoghurt fermentation |
Reduced fat content |
Decreased aroma sensory score (negative impact) |
Decreased anti nutrient content (oxalate, saponin, phytate, and trypsin inhibitor) |
| Cáceres et al. (2019) [ | Rice | Germination before preparation of flour-based |
Lowered yoghurt consistency after starch hydrolysis during germination |
Improved sensory acceptance after fermentation versus non-germinated rice flour; Some increase in bitterness observed (likely lipid oxidation products generated during germination) |
Increased antioxidant activity and γ-aminobutyric acid content | |
| Hwang et al. (2018) [ | Soy | Germination before yoghurt production | - | - |
Increased | |
| Yang et al. (2010) [ | Soy | Germination (various hypocotyl lengths) for the preparation of |
Decreased yoghurt WHC with increased hypocotyl length; Decreased hardness, adhesiveness, and gumminess (more sensorially acceptable yoghurt texture) |
Reduced the ‘beany’ off-flavour, likely due to reduced LOX activity; Longer hypocotyl length associated with an unpleasant soybean sprout and astringent flavour; Enhanced free amino acid content may lead to pleasant flavour development during fermentation | - | |
| Germination | Le et al. (2021) * [ | Soy | Germination before PBAE production |
Protein denaturation led to larger droplet size and lower viscosity |
Increase in overall sensory acceptability, likely due to the reduction in off-flavours |
Increased |
| Lopes et al. (2020) * [ | Pulses (Sweet | Germination before PBAE production |
Reduced gelation in pulse beverages due to starch hydrolysis | - | - | |
| Other novel treatments | ||||||
| High pressure homogenisation/Microfluidisation | Levy et al. (2022) [ | Potato | HPH emulsions were fermented into yoghurts |
Improved gelation and lowered creaming velocities for finer, more stable emulsions | - | - |
| Demirkesen et al. (2018) [ | Hazelnut | Microfluidisation of slurry before yoghurt fermentation |
Improved WHC and higher slurry consistency (firmer yoghurts more similar to dairy yoghurt) | - |
Successful production of high-fibre hazelnut yoghurt without residue removal during PBAE production | |
| Ferragut et al. (2009) [ | Soy | UHPH PBAE was fermented into a |
Improved WHC, rigidity and firmness with increase in homogenisation pressure | - | - | |
| Xia et al. (2019) * [ | Sweet lupin | Slurry was |
Decreased particle size, sedimentation and improved emulsion stability; Reduced viscosity | - | - | |
| High pressure homogenisation/Microfluidisation | Jeske et al. (2019) * [ | Lentil | Slurry was |
Reduced particle size, which increased solubility and reduced aggregation (improved stability); End product texturally comparable with other commercial PBAEs | - | - |
| Ultrasonication | Mu et al. (2022) * [ | Soy | Ultrasonication of PBAE |
Reduced particle size, improved thermal and emulsion stability |
Decreased lipid oxidation off-odorants, including ‘grease-oxidative’ and ‘beany’ flavours | - |
| Lu et al. (2019) * [ | Coconut, maize | Ultrasonication of PBAE with maize additives |
Reduced particle size, improved emulsion stability and homogenised mixture | - | - | |
| Abdullah et al. (2018) * [ | Coconut | Ultrasonication of PBAE |
Reduced particle size and creaming index, improving stability | - | - | |
| High hydrostatic pressure (HHP) | Wang et al. (2021) [ | Soy | Optimised HHP |
Enhanced WHC and protein solubility Reduced yoghurt syneresis |
Reduced LOX activity and related off-odour compounds | - |
| High hydrostatic pressure (HHP) | Sim et al. (2021) [ | Legumes (mung bean, chickpea, pea, lentil, faba bean) | HHP processing to achieve yoghurt textures |
Formed pressure-induced, protein-based gels with viscoelastic properties similar to dairy yoghurt | - | - |
| Dhakal et al. (2014) * [ | Almond | HHP processing of PBAE | - |
Allowed for protein modification without the formation of undesirable cooked flavours |
Decreased amaldin content and hence allergenicity | |
| Pulsed electric field (PEF) | Manzoor et al. (2020) * [ | Almond | Comparison versus thermal treatment on PBAE |
Increased colloidal stability and reduced sedimentation |
Decreased LOX and peroxidase (POD) activity may result in reduced off-odour formation |
Increased free amino acid content |
| Li et al. (2013) * [ | Soy | PEF treatment of PBAE |
Reduction in viscosity |
Decreased LOX activity may result in reduced off-odour formation | - | |
* Indicates that study investigated the unfermented plant ingredient (e.g., flours, PBAEs). HPH: high pressure homogenisation; UHPH: ultra-high pressure homogenisation; HHP: high hydrostatic pressure; PEF: pulsed electric field.
Some examples of fermented plant-based dairy analogues on the market and commercial starter cultures.
| Brand | Product | Ingredients/Application | Cultures (If Specified) 1 |
|---|---|---|---|
| Fermented cream products | |||
| Forager Project | Organic Dairy-Free Sour Cream | Coconut and cashew milk (filtered water, coconut cream, | |
| Good Karma | Plant-Based Sour Cream Dairy-Free Alternative | Water, coconut oil, tapioca flour, pea protein, dextrose, corn starch (unmodified, identity preserved), tricalcium phosphate, sea salt, sunflower lecithin, lactic acid (vegan), natural flavour, vitamin A palmitate, vitamin D2, vitamin B12, live and active cultures | Unspecified |
| Kite Hill | Sour Cream Alternative | Almond milk (water, almonds), coconut oil, rice starch, | Unspecified |
| Tzatziki | Almond milk (water, almonds), cucumbers, rice starch, | Unspecified | |
| European Style Butter | High oleic sunflower oil, cultured almond milk (water, | Unspecified | |
| Lauds | Cultured Oat Butter | Organic coconut oil, oat milk yoghurt (water, organic oats, yellow split peas, potato starch, natural cultures), sunflower oil, non-GMO soy lecithin, Tasmanian sea salt, natural colour ( | Unspecified (yoghurt base) |
| Miyoko’s Creamery | European Style Cultured Vegan Butter (Unsalted) | Organic coconut oil, organic cultured cashew milk (filtered water, organic cashews, cultures), filtered water, organic | Unspecified |
| Spreadable Cultured | Organic sunflower oil, organic cultured whole grain oat milk (filtered water, cultured organic oats), organic coconut oil, contains less than 2% of organic sunflower lecithin, sea salt, organic cultured dextrose, lactic acid, natural flavours derived from oregano, flaxseed, and plums | Unspecified | |
| The Vegan Dairy | Cultured Butter | Organic cashew nuts, organic coconut oil, cold pressed rice bran oil, filtered water, natural vegan cultures, sea salt, soy lecithin, natural vegan colouring derived from sunflowers | Unspecified |
| wildbrine | wildCREAMERY Sour Cream Alternative | Water, sunflower oil, coconut oil, cashews, tapioca flour; | Lactobacillus cultures |
| wildCREAMERY Oat | Coconut oil, sunflower oil, oat milk (water, oats), | Lactobacillus cultures | |
| wildCREAMERY | Coconut oil, water, sunflower oil, cashews; contains 2% or less of: sunflower lecithin, yam, sea salt, cabbage, oats, cultured dextrose | Lactobacillus cultures | |
| Yoghurt and drinkable yoghurt | |||
| Alpro | Plain No Sugars | Soya base (water, hulled soya beans (10.7%)), calcium | |
| Greek Style Plain | Soya base (water, hulled soya beans (15.7%)), sugar, stabiliser (pectins), calcium (tricalcium citrate), acidity regulators | ||
| Greek Style Coconut | Coconut milk (45%) (coconut cream, water), water, coconut water (20%), modified starch, thickeners (pectin, agar), natural flavourings, sea salt, cultures | ||
| Greek Style Oat | Oat base (water, oat (11.1%)), sunflower oil, modified starches, soluble corn fibre, pea protein, calcium (tricalcium | ||
| Absolutely Oat | Oat base (water, oat (15.5%)), modified starch, chicory root | ||
| Cocobella | Dairy-Free | Coconut yoghurt (water, coconut milk, native starch, tapioca syrup, carob bean extract, agar, yoghurt cultures and | |
| Cocos | Organic Coconut Milk | Organic coconut milk (98%), organic tapioca starch, | Unspecified |
| COYO | Natural Organic Coconut Milk Yoghurt Alternative | Organic coconut milk (97%), organic tapioca starch, live vegan cultures | Unspecified |
| Forager Project | Cashew milk Dairy-Free | Cashew milk (filtered water, cashews), tapioca starch, | |
| Unsweetened Drinkable | Cashew milk (filtered water, cashews), tapioca starch, | ||
| Kite Hill | Almond Milk Yogurt (Plain) | Almond milk (water, almonds), cane sugar, starch, citrus fiber, locust bean gum, xanthan gum, live active cultures | |
| Blissful Coconut Milk | Coconut cream (water, coconut), modified tapioca starch, salt, live active cultures, vitamin D2, vitamin B12 | ||
| Greek Style Yogurts (Plain | Almond milk (water, almonds), soy protein isolate, tapioca starch, natural flavours, live active cultures | ||
| Nush | Dairy-Free Organic | Organic almond milk (95%) (filtered water/organic almonds), organic tapioca starch, thickener: organic carob gum, live | Unspecified |
| Oatly | Oatgurt Plain | Oat milk (water, oats), low erucic acid rapeseed oil, potato starch. Contains 2% or less of: dextrose, pea protein, potato protein, calcium carbonate, guar gum, tricalcium phosphate, locust bean gum, live active cultures) | |
| Raglan Food | Dairy-Free Coconut | Organic coconut cream, natural starch (corn), | |
| Sojade | Greek Style Soya Yogurt | Soya drink 99% (water, soya beans 12.5%), thickener: pectin, selected ferments | |
| Cheese | |||
| Forager Project | Vegan Jack | Forager Project Yogurt (cashew milk (filtered water, cashews), tapioca starch, coconut cream, cultures), water, coconut oil, maize starch, tapioca starch, sea salt, calcium phosphate, | Unspecified |
| Grounded | Cheese Free Cheese Sauce | Filtered water, cauliflower, coconut oil, sunflower oil, shio koji, gluten-free oats, rice starch, hemp seed, less than 2% of: tapioca starch, sea salt, spices, citrus fiber, sodium citrate, | Shio koji (likely) |
| Kite Hill | Garlic and Herb Soft Spreadable Cheese | Almond milk (water, almonds), dehydrated garlic, | Unspecified |
| Almond Milk Ricotta | Almond milk (water, almonds), salt, enzymes, tartaric acid, cultures | Unspecified | |
| Cream Cheese Alternative (Plain) | Almond milk (water, almonds), salt, enzyme, xanthan gum, guar gum, mushroom extract (to help preserve freshness), | Unspecified | |
| Lauds | Original Oat Melt | Oat milk yoghurt (water, organic oats, yellow split peas, | Unspecified (yoghurt base) |
| Aged Cashew Cheese | Cashews, organic coconut oil, water kefir (water, natural | Water kefir | |
| Ashed Walnut Cheese | Cashews, Tasmanian walnuts, coconut oil, water kefir (water, natural cultures, sugar), miso paste (from soy), nutritional yeast, spices, Tasmanian sea salt, activated charcoal, | Water kefir | |
| Almond Persian Feta | Almonds, organic coconut oil, water, sunflower oil, oat milk yoghurt (water, organic oats, yellow split peas, potato starch, natural cultures), Tasmanian sea salt, | Unspecified (yoghurt base) | |
| Miyoko’s Creamery | Organic Cultured Vegan Cream Cheese (Classic Plain) | Organic cashews, filtered water, organic coconut cream, sea salt, cultures | Unspecified |
| Organic Cashew Milk Mozzarella | Organic cashew milk (filtered water, organic cashews), | Unspecified | |
| Miyoko’s Creamery | Liquid Vegan Pizza | Plant milk (filtered water, organic cashews), organic | Unspecified |
| Aged Sharp English | Organic cashew milk (organic cashews, filtered water), | Chickpea miso (rice koji), | |
| Nush | Creamy Almond M·lk Spread (Plain) | Almond milk (95%) (filtered water/almond), potato starch, thickener: carob gum, salt, thickener: transglutaminase, live vegan cheese cultures | Unspecified |
| Nut Culture | Badass Pepper Jack— | Organic cashew nuts, deactivated yeast, jalapeño flakes, chili flakes, salt, vegan cultures | Probiotic cultures (unspecified) |
| plant perks | Sriracha Cheddar Plant-Based Cheeze Spread | Cashews, filtered water, sriracha (jalapeño peppers, water, sugar, distilled vinegar, salt, garlic powder, xanthan gum), MCT oil, sea salt, onion powder, garlic powder, nutritional yeast, cultures | Unspecified |
| Silk® | Plain Almond milk Dairy-Free Yogurt Alternative | Almond milk (filtered water, almonds), cane sugar, pectin, | Unspecified |
| Plain Soy milk Dairy-Free | Soymilk (filtered water, soybeans), cane sugar, corn starch, tricalcium phosphate, pectin, natural flavour, dipotassium phosphate, sea salt, citric acid, live and active cultures, mixed tocopherols and vitamin C ester (to protect freshness), | Unspecified | |
| Vanilla Greek Style | Coconut milk (filtered water, coconut cream), water, pea | Unspecified | |
| The Vegan Dairy | Dill Chèvre | Organic cashew nuts, organic coconut oil, filtered water, | Unspecified |
| wildbrine | wildCREAMERY Cream Cheese Alternative | Water, coconut oil, sunflower oil, cashews, coconut cream, tapioca flour; contains 2% or less of: chickpeas, cabbage, oats, sea salt, sunflower lecithin, cultured dextrose | Lactobacillus cultures |
| wildCREAMERY | Organic cashews, water, organic coconut oil, organic coconut cream, contains 2% or less of: organic nutritional yeast, | Lactobacillus cultures, | |
| Kefir | |||
| Biotiful | Plant-Based Oat Kefir Original | Oat base (water, gluten-free oats (11%), sunflower oil, salt), | |
| Cocobella | Kefir Probiotic Yogurt | Coconut yoghurt (water, coconut milk, coconut oil, tapioca syrup, tapioca starch, carob bean extract, yoghurt cultures and probiotics) | |
| Cocos | Organic Coconut Milk Kefir | Organic coconut milk (98%) (filtered water, organic | Kefir (unspecified), |
| COYO | Natural Organic Coconut Milk Kefir | Organic coconut milk (50%), filtered water, organic tapioca starch, live vegan kefir cultures | Unspecified |
| Raglan Food | Dairy-Free | Organic coconut milk (water, coconut), natural starch, live | |
| Sojade | Natural Soya Kefir | Soya juice (97.4%), apple juice concentrate, live vegan kefir cultures 0.03% | Kefir (unspecified) |
| Commercial starter cultures | |||
| belle and bella | Non-Dairy Yogurt Starter | Yoghurt analogue starter for various plant bases | |
| Chr | VEGA™ Culture Kit | Yoghurt analogue starter for various plant bases | Eleven cultures, unspecified, |
| Cultures for Health | Vegan Yogurt | Yoghurt analogue starter for various plant bases | |
| DuPont™ Danisco® | VEGE Cultures | Dairy analogue starter for various plant bases | Unspecified, |
| Sacco | 4Choice | Dairy analogue starter for various plant bases | Unspecified |
| Vivo | Probiotic Vegan Yoghurt | Yoghurt analogue starter for soy base | |
1 Abbreviations of the microbial genus names are as follows: Lactobacillus (L.); Penicillium (P.); Streptococcus (St.); Bifidobacterium (B.); Lactococcus (Lc.). 2 The complete scientific name of each strain is always provided where possible e.g., St. thermophilus, L. bulgaricus.
Selected studies in the past ten years (2012 to date) applying fermentation as a strategy to improve the organoleptic properties of plant-based dairy analogues.
| Authors | Benchmark/Application | Raw | Fermentation | Culture(s) 1 | Source of Culture |
|---|---|---|---|---|---|
| Milk and other milk-based products | |||||
| Tangyu et al. (2021) [ | Cow’s milk | Chickpea | Single culture | Various (for | |
| Fermented cream products | |||||
| Madsen et al. (2021) [ | Buttermilk koldskål | Tiger nut | Single or mixed | Legumes, vegetables, fruits, dairy yoghurt | |
| Yoghurt and drinkable yoghurt | |||||
| Khrundin et al. (2021) [ | Milk | Soy, oat, buckwheat | Mixed culture (LAB) | Classic yoghurt fermentation | Dairy yoghurt |
| Ogundipe et al. (2021) [ | Milk | Tiger nut | Mixed culture (LAB) | Dairy yoghurt | |
| Yang et al. (2021) [ | Milk | Pea, mung bean | Mixed culture (LAB) | VEGE 022 ( | Dairy yoghurt |
| Aydar et al. (2021) [ | Milk | Jerusalem artichoke, almond | Mixed culture (LAB) | Vivo Active ( | Dairy yoghurt |
| Łopusiewicz et al. (2020) [ | Milk | Flaxseed | Mixed culture (LAB) | VIVO-AKTIV ( | Dairy yoghurt |
| Pachekrepapol et al. (2020) [ | Milk | Coconut | Mixed culture (LAB) | YF-L812 ( | Dairy yoghurt |
| Pontonio et al. (2020) [ | Milk | Rice, | Mixed culture (LAB) | Plant matrices | |
| Raikos et al. (2020) [ | Milk | Oat | Mixed culture (LAB) | Yo-Mix® ABY yogurt culture | Dairy yoghurt |
| Brückner-Gühmann et al. (2019) [ | Milk | Oat | Mixed culture (LAB) | YC-X11 Yo-Flex | Dairy yoghurt |
| Ani et al. (2018) [ | Milk yoghurt | Soy, | Mixed culture (LAB) | Dairy yoghurt | |
| Ermiş et al. (2018) [ | Milk yoghurt | Hazelnut | Mixed culture (LAB) | Dairy yoghurt | |
| Lorusso et al. (2018) [ | Milk yoghurt drink, | Quinoa | Single culture (LAB) | Sourdough, probiotics, EPS-producer | |
| Wang et al. (2018) [ | Milk yoghurt | Soy, | Mixed culture (LAB) | belle and bella ( | Dairy yoghurt |
| Zannini et al. (2018) [ | Milk yoghurt | Quinoa | Single culture(LAB) | Sourdough | |
| Bansal et al. (2016) [ | Milk yoghurt | Peanut | Single culture (LAB) | Probiotics | |
| Falade et al. (2015) [ | Milk yoghurt | Soy, | Mixed culture (LAB) | Dairy yoghurt | |
| Pandey and Mishra (2015) [ | Milk yoghurt | Soy | Mixed culture (LAB) | Probiotics | |
| Peng and Guo (2015) [ | Milk yoghurt | Soy | Single culture (LAB) | Dairy yoghurt | |
| Li et al. (2014) [ | Milk yoghurt | Soy | Single or mixed culture (LAB) | Fermented cabbage, Chinese sour soup, dairy yoghurt | |
| Hickisch et al. (2016a) [ | Milk yoghurt | Lupin | Single culture (LAB) | Fermented dairy, soy yoghurt, | |
| Luana et al. (2014) [ | Milk yoghurt drink | Oat | Single culture (LAB) | Dairy probiotics | |
| Coda et al. (2012) [ | Milk yoghurt | Rice, soy, barley, wheat, emmer | Single, then mixed culture (LAB) | Cereals, fruits, | |
| Cheese | |||||
| Masia et al. (2022) [ | Hard cheese | Pea | Mixed culture (LAB) | VEGA™ Harmony ( | Dairy yoghurt |
| Ben-Harb et al. (2020) [ | Off-flavour | Pea | Single culture | Dairy cheese | |
| Li et al. (2020) [ | Soft cheese | Soy | Mixed culture | Dairy yoghurt, dairy cheese | |
| Łopusiewicz et al. (2020a) [ | Camembert cheese | Flaxseed | Mixed culture (LAB, fungi) | MST Cheese-Tek® ( | Dairy cheese |
| Giri et al. (2018) [ | Cream cheese spread | Soy | Single culture (LAB) | Probiotics | |
| Matias et al. (2014) [ | Petit-suisse cheese | Soy | Mixed culture (LAB) | ABT-4 (includes | Dairy yoghurt |
| Li et al. (2013) [ | Cream cheese spread | Soy | Mixed culture (LAB) | Probiotics | |
| Kefir | |||||
| Yepez et al. (2019) [ | Milk kefir | Oat, maize, barley | Mixed culture (LAB, yeast, AAB) | Milk kefir, water kefir, fermented cereals, | |
1 Abbreviations of the microbial genus names are as follows: Lactobacillus (L.); Penicillium (P.); Streptococcus (St.); Bifidobacterium (B.); Lactococcus (Lc.); Leuconostoc (Leu.); Geotrichum (G.); Corynebacterium (Co.); Yarrowia (Y.); Brevibacterium (Br.); Glutamicibacter (Glu.); Candida (C.); Staphylococcus (Sta.); Hafnia (Ha.); Kluyveromyces (K.); Debaryomyces (D.); Pediococcus (Pe.); Bacillus (Bac.); Weissella (W.). 2 The complete scientific name of each strain is always provided where possible, e.g., St. thermophilus, L. bulgaricus. 3 Where a commercial starter culture is used, the product name is listed, followed by the specific cultures in parenthesis. * A probiotic L. rhamnosus strain was inoculated for viability tests during prolonged storage but was not deemed to have affected the organoleptic quality of the product.