Next Article in Journal
Fermentation Characteristics of Rye and Sorghum Depending on Water:Feed Ratio
Previous Article in Journal
Production of Citric Acid by Aspergillus niger Cultivated in Olive Mill Wastewater Using a Two-Stage Packed Column Bioreactor
Previous Article in Special Issue
Health Benefits of Postbiotics Produced by E. coli Nissle 1917 in Functional Yogurt Enriched with Cape Gooseberry (Physalis peruviana L.)
 
 
Font Type:
Arial Georgia Verdana
Font Size:
Aa Aa Aa
Line Spacing:
Column Width:
Background:
Editorial

Probiotics, Prebiotics, and Their Application in the Production of Functional Foods

Department of Agronomy Food Natural Resources Animal and Environment (DAFNAE), University of Padova, Viale dell’Università 16, Legnaro, 35020 Padova, Italy
Fermentation 2022, 8(4), 154; https://doi.org/10.3390/fermentation8040154
Submission received: 25 March 2022 / Revised: 28 March 2022 / Accepted: 29 March 2022 / Published: 31 March 2022
Food biotechnology innovation and development reached an estimated growth tendency rate of 28% per year. Consumers and industries have become more interested in novel foods with possible health-related functions. In addition, probiotics and prebiotics have gained attention due to the continuously increasing scientific evidence of their beneficial effects on human health, and are considered the most critical categories of functional foods that are studied and available worldwide [1,2]. Functional foods can benefit human health in different ways, such as affecting the gut microbial composition, modulating the immune response, reducing pathogenic bacteria due to antimicrobial substances production, etc. Bifidobacterium, Lactobacillus, Pediococcus, Enterococcus, Streptococcus, Bacillus, and Escherichia are the most frequently used bacterial genera in many available functional products. To assess a novel probiotic potential strain, experts from FAO, WHO, and European Food Safety Authority (EFSA) have established specific guidelines. All new proposed potential microbial strains must be evaluated regarding their safety and functionality according to the international guidelines before their use in different industries [3].
Given the importance of the matter, the Special Issue “Probiotics, Prebiotics, and Their Application in the Production of Functional Foods” has collected nine scientific contributions: seven original research articles and two review articles. An overview of these scientific contributions, which look at the diverse aspects of functional foods, is briefly reported in this editorial letter.
One of the original research studies focused on the collagen-peptide microencapsulation of five probiotic strains (Lactiplantibacillus plantarum MG989, Lactococcus lactis MG5125, Enterococcus faecium MG5232, Bifidobacterium animalis ssp. lactis MG741, and Streptococcus thermophilus MG5140) to investigate the efficacy of a novel additive in bacterial protection nunder different conditions. Kim et al. [4] determined that low-molecular-weight collagen-peptide is a stability enhancer for various probiotics and can improve viability after freeze-drying, simulated gastrointestinal conditions, and heat treatment.
Four original research studies focused on probiotic and postbiotic-related functional foods. Khoja et al. [5] investigated the effect of postbiotics manufactured by E. coli Nissle 1917 in functional labneh enriched with galactooligosaccharides on the adhesion abilities of probiotics. They found a positive impact of postbiotics on the cell surface and adhesive properties of selected probiotic strains, which could inhibit foodborne pathogen adhesion to Caco-2 cells. Another study by Darvish et al. reported that the functional postbiotics produced from yogurt cape gooseberry could significantly increase antimicrobial, antitumor, antioxidant activities, related to an improvement in total phenolic content [6]. In addition, Mo et al. [7] also recorded different, immune-enhancing effects of red ginseng extract-supplemented medium fermented by Lacticaseibacillus paracasei HY7017. The product enhanced TNF-α and IL-6 production from macrophages, IL-12, IFN-γ, and NK cell activity in splenocytes, the recovery of WBC levels, IL-2 and IFN-γ upregulation, and increased NK-cell activity from immunosuppressed mice. Finally, in a study by de Lima et al. [8], a potentially postbiotic-containing preservative (PPCP) was found to be efficient as a commercial preservative FCC85, which indicated that PPCP could be a promising alternative to preserve and develop functional cooked sausages.
The other original research study published in this Special Issue deals with fermented feed for hens using the fungus Mortierella alpina and its possible impact on the composition of the intestinal microbiota of hens, and egg fatty acids’ profile. At the end of the study, the authors detected that the addition of omega-3 acids enriched fermented feed, positively affected the immune response of laying hens and improved the fatty acid composition of eggs [9].
Lastly, the study by Bósquez et al. [10] showed the possibility of near-infrared spectroscopy (NIRS) as a reliable, fast, and promising alternative to the conventional classical microbiology technique to determine probiotic viability.
Regarding the review articles, one of the contributions focused on recent technological advancements in probiotic encapsulation and the possibilities of delivering these functional cells at a specific site within the human gastrointestinal tract with high viability and stability [11]. In contrast, the other review article focused on traditional Mexican foods made of maize, agave varieties, nopal, and beans as a source of synbiotics to develop novel functional foods. They discussed the possible properties of these fermented foods, such as the presence of beneficial microorganisms and antioxidants, as well as the short-chain fatty acids (SFCAs) [12].
The current Special Issue contributes to improving our knowledge on diverse topics, such as the encapsulation and protection of functional cells in harsh conditions, prediction of cell viability in commercial probiotic products using novel approaches, and how to apply these beneficial microorganisms in the preparation of novel functional foods.

Funding

This research received no external funding.

Institutional Review Board Statement

Not applicable.

Data Availability Statement

Not applicable.

Conflicts of Interest

The author declares no conflict of interest.

References

  1. Lemos Junior, W.J.F.; Guerra, A.F.; Tarrah, A.; da Silva Duarte, V.; Giacomini, A.; Luchese, R.H.; Corich, V. Safety and Stability of Two Potentially Probiotic Lactobacillus Strains After In Vitro Gastrointestinal Transit. Probiotics Antimicrob. Proteins 2019, 12, 657–666. [Google Scholar] [CrossRef] [PubMed]
  2. Tarrah, A.; Pakroo, S.; Lemos Junior, W.J.F.; Guerra, A.F.; Corich, V.; Giacomini, A. Complete Genome Sequence and Carbohydrates-Active En-Zymes (CAZymes) Analysis of Lactobacillus paracasei DTA72, a Potential Probiotic Strain with Strong Capability to Use Inulin. Curr. Microbiol. 2020, 77, 2867–2875. [Google Scholar] [CrossRef] [PubMed]
  3. FAO/WHO. Guidelines for the Evaluation of Probiotics in Food—Report of a Joint FAO/WHO Working Group on Drafting Guidelines for the Evaluation of Probiotics in Food. London Ontario Canada. Available online: https://www.google.com.sg/url?sa=t&rct=j&q=&esrc=s&source=web&cd=&ved=2ahUKEwj0mN2k_Oz2AhWE7GEKHc3FAdoQFnoECAQQAQ&url=https%3A%2F%2Fwww.who.int%2Ffoodsafety%2Ffs_management%2Fen%2Fprobiotic_guidelines.pdf&usg=AOvVaw2Zxae6J_QUNc68d5REQKq_ (accessed on 29 March 2022).
  4. Kim, S.-I.; Kim, J.-W.; Kim, K.-T.; Kang, C.-H. Survivability of Collagen-Peptide Microencapsulated Lactic Acid Bacteria during Storage and Simulated Gastrointestinal Conditions. Fermentation 2021, 7, 177. [Google Scholar] [CrossRef]
  5. Khojah, E.; Gomaa, M.S.; Elsherbiny, E.G.; Elawady, A.; Darwish, M.S. The In Vitro Analysis of Postbiotics in Functional Lab-neh to Be Used as Powerful Tool to Improve Cell Surfaces Properties and Adherence Potential of Probiotic Strains. Fermentation 2022, 8, 122. [Google Scholar] [CrossRef]
  6. Darwish, M.S.; Qiu, L.; Taher, M.A.; Zaki, A.A.; Abou-Zeid, N.A.; Dawood, D.H.; Elawady, A.A. Health Benefits of Postbiotics Produced by E. coli Nissle 1917 in Functional Yogurt Enriched with Cape Gooseberry (Physalis peruviana L.). Fermentation 2022, 8, 128. [Google Scholar] [CrossRef]
  7. Mo, S.J.; Nam, B.; Bae, C.H.; Park, S.D.; Shim, J.J.; Lee, J.L. Characterization of Novel Lactobacillus paracasei HY7017 Capable of Improving Physiological Properties and Immune Enhancing Effects Using Red Ginseng Extract. Fermentation 2021, 7, 238. [Google Scholar] [CrossRef]
  8. de Lima, A.L.; Guerra, C.A.; Costa, L.M.; de Oliveira, V.S.; Lemos Junior, W.J.F.; Luchese, R.H.; Guerra, A.F. A Natural Technology for Vacuum-Packaged Cooked Sausage Preservation with Potentially Postbiotic-Containing Preservative. Fermentation 2022, 8, 106. [Google Scholar] [CrossRef]
  9. Karaffová, V.; Mudroňová, D.; Semjon, B.; Klempová, T.; Slaný, O.; Čertík, M.; Marcinčák, S. Immune Response and Fatty Acid Profile of Eggs from Laying Hens Fed Fermented Feed Rich in Polyunsaturated Fatty Acids. Fermentation 2022, 8, 98. [Google Scholar] [CrossRef]
  10. Aguinaga Bósquez, J.P.; Oǧuz, E.; Cebeci, A.; Majadi, M.; Kiskó, G.; Gillay, Z.; Kovacs, Z. Characterization and Viability Prediction of Com-mercial Probiotic Supplements under Temperature and Concentration Conditioning Factors by NIR Spectrosco-py. Fermentation 2022, 8, 66. [Google Scholar] [CrossRef]
  11. Garcia-Brand, A.J.; Quezada, V.; Gonzalez-Melo, C.; Bolaños-Barbosa, A.D.; Cruz, J.C.; Reyes, L.H. Novel Developments on Stimuli-Responsive Probiotic Encapsulates: From Smart Hydrogels to Nanostructured Platforms. Fermentation 2022, 8, 117. [Google Scholar] [CrossRef]
  12. Torres-Maravilla, E.; Méndez-Trujillo, V.; Hernández-Delgado, N.C.; Bermúdez-Humarán, L.G.; Reyes-Pavón, D. Looking inside Mexican Tra-ditional Food as Sources of Synbiotics for Developing Novel Functional Products. Fermentation 2022, 8, 123. [Google Scholar] [CrossRef]
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations.

Share and Cite

MDPI and ACS Style

Tarrah, A. Probiotics, Prebiotics, and Their Application in the Production of Functional Foods. Fermentation 2022, 8, 154. https://doi.org/10.3390/fermentation8040154

AMA Style

Tarrah A. Probiotics, Prebiotics, and Their Application in the Production of Functional Foods. Fermentation. 2022; 8(4):154. https://doi.org/10.3390/fermentation8040154

Chicago/Turabian Style

Tarrah, Armin. 2022. "Probiotics, Prebiotics, and Their Application in the Production of Functional Foods" Fermentation 8, no. 4: 154. https://doi.org/10.3390/fermentation8040154

APA Style

Tarrah, A. (2022). Probiotics, Prebiotics, and Their Application in the Production of Functional Foods. Fermentation, 8(4), 154. https://doi.org/10.3390/fermentation8040154

Note that from the first issue of 2016, this journal uses article numbers instead of page numbers. See further details here.

Article Metrics

Back to TopTop