Influence of Supplementation of Lactoferrin, Melittin and Cecropin A to Rat Diet on Changes in Faecal Ammonia Concentrations, Short-Chain Fatty Acid Concentrations and Activities of Bacterial Enzymes
Abstract
:Simple Summary
Abstract
1. Introduction
2. Materials and Methods
2.1. Antimicrobial Peptides and Lactoferrin
2.2. In Vivo Experiment
2.3. Measurements and Analyses
2.4. Statistical Analyses
3. Results
3.1. Faecal β-Glucosidase Activity
3.2. Faecal β-Glucuronidase Activity
3.3. Faecal α-Glucosidase Activity
3.4. Faecal SCFA Concentration
3.5. Faecal pH and Ammonia Concentration
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
References
- Wu, S.; Zhang, F.; Huang, Z.; Liu, H.; Xie, C.; Zhang, J.; Thacker, P.A.; Qiao, S. Effects of the antimicrobial peptide cecropin AD on performance and intestinal health in weaned piglets challenged with Escherichia coli. Peptides 2012, 35, 225–230. [Google Scholar] [CrossRef] [PubMed]
- Kumar, P.; Kizhakkedathu, J.N.; Straus, S.K. Antimicrobial Peptides: Diversity, Mechanism of Action and Strategies to Improve the Activity and Biocompatibility In Vivo. Biomolecules 2018, 8, 4. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Bulet, P. Insect Antimicrobial Peptides: Structures, Properties and Gene Regulation. Protein Pept. Lett. 2005, 12, 3–11. [Google Scholar] [CrossRef] [PubMed]
- Brady, D.; Grapputo, A.; Romoli, O.; Sandrelli, F. Insect Cecropins, Antimicrobial Peptides with Potential Therapeutic Applications. Int. J. Mol. Sci. 2019, 20, 5862. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Andrä, J.; Berninghausen, O.; Leippe, M. Cecropins, antibacterial peptides from insects and mammals, are potently fungicidal against Candida albicans. Med. Microbiol. Immunol. 2001, 189, 169–173. [Google Scholar] [CrossRef]
- Zhai, Z.; Zhang, F.; Cao, R.; Ni, X.; Xin, Z.; Deng, J.; Wu, G.; Ren, W.; Yin, Y.; Deng, B. Cecropin A Alleviates Inflammation Through Modulating the Gut Microbiota of C57BL/6 Mice With DSS-Induced IBD. Front. Microbiol. 2019, 10, 1595. [Google Scholar] [CrossRef]
- Socarras, K.M.; Theophilus, P.A.S.; Torres, J.P.; Gupta, K.; Sapi, E. Antimicrobial Activity of Bee Venom and Melittin against Borrelia burgdorferi. Antibiotics 2017, 6, 31. [Google Scholar] [CrossRef] [Green Version]
- Yi, H.-Y.; Chowdhury, M.; Huang, Y.-D.; Yu, X.-Q. Insect antimicrobial peptides and their applications. Appl. Microbiol. Biotechnol. 2014, 98, 5807–5822. [Google Scholar] [CrossRef] [Green Version]
- Ongey, E.L.; Pflugmacher, S.; Neubauer, P. Bioinspired Designs, Molecular Premise and Tools for Evaluating the Ecological Importance of Antimicrobial Peptides. Pharmaceuticals 2018, 11, 68. [Google Scholar] [CrossRef] [Green Version]
- Cholewińska, E.; Ognik, K.; Fotschki, B.; Zduńczyk, Z.; Juśkiewicz, J. Comparison of the effect of dietary copper nanoparticles and one copper (II) salt on the copper biodistribution and gastrointestinal and hepatic morphology and function in a rat model. PLoS ONE 2018, 13. [Google Scholar] [CrossRef] [Green Version]
- Gugołek, A.; Juśkiewicz, J.; Strychalski, J.; Konstantynowicz, M.; Zwoliński, C. Nutrient digestibility and colonic fermentation processes in species of the families Mustelidae and Canidae fed the same diet. J. Exp. Zool. Part A Ecol. Genet. Physiol. 2015, 323, 637–644. [Google Scholar] [CrossRef]
- Jenssen, H.; Hancock, R.E. Antimicrobial properties of lactoferrin. Biochimie 2009, 91, 19–29. [Google Scholar] [CrossRef]
- Krzyżek, P.; Paluch, E.; Gościniak, G. Synergistic Therapies as a Promising Option for the Treatment of Antibiotic-Resistant Helicobacter pylori. Antibiotics 2020, 9, 658. [Google Scholar] [CrossRef]
- Directive 2010/63/EU of the European Parliament and of the Council of 22 September 2010 on the Protection of Animals Used for Scientific Purposes. Official Journal of the European Union 2010, L 276, 20.10.2010, pp. 33–79. Available online: https://eur-lex.europa.eu/LexUriServ/LexUriServ.do?uri=OJ:L:2010:276:0033:0079:en:PDF (accessed on 31 March 2021).
- Reeves, P.G. Components of the AIN-93 Diets as Improvements in the AIN-76A Diet. J. Nutr. 1997, 127, 838S–841S. [Google Scholar] [CrossRef]
- Wang, J.; Hihara, E. A unified formula for calculating body surface area of humans and animals. Graefes Arch. Clin. Exp. Ophthalmol. 2004, 92, 13–17. [Google Scholar] [CrossRef]
- Hofírek, B.; Haas, D. Comparative Studies of Ruminal Fluid Collected by Stomach Tube or by Puncture of the Caudoventral Ruminal Sac. Acta Vet. Brno 2001, 70, 27–33. [Google Scholar] [CrossRef] [Green Version]
- Fotschki, B.; Juśkiewicz, J.; Jurgoński, A.; Kołodziejczyk, K.; Milala, J.; Kosmala, M.; Zduńczyk, Z. Anthocyanins in Strawberry Polyphenolic Extract Enhance the Beneficial Effects of Diets with Fructooligosaccharides in the Rat Cecal Environment. PLoS ONE 2016, 11. [Google Scholar] [CrossRef]
- Tang, J. Microbial Metabolomics. Curr. Genom. 2011, 12, 391–403. [Google Scholar] [CrossRef]
- Hillman, E.T.; Lu, H.; Yao, T.; Nakatsu, C.H. Microbial Ecology along the Gastrointestinal Tract. Microbes Environ. 2017, 32, 300–313. [Google Scholar] [CrossRef] [Green Version]
- Żary-Sikorska, E.; Kosmala, M.; Milala, J.; Fotschki, B.; Ognik, K.; Juśkiewicz, J. Concentrations of Blood Serum and Urinal Ellagitannin Metabolites Depend Largely on the Post-Intake Time and Duration of Strawberry Phenolics Ingestion in Rats. Pol. J. Food Nutr. Sci. 2019, 69, 379–386. [Google Scholar] [CrossRef]
- Gugołek, A.; Juśkiewicz, J.; Strychalski, J.; Zwoliński, C.; Żary-Sikorska, E.; Konstantynowicz, M. The effects of rapeseed meal and legume seeds as substitutes for soybean meal on productivity and gastrointestinal function in rabbits. Arch. Anim. Nutr. 2017, 71, 311–326. [Google Scholar] [CrossRef]
- Konieczka, P.; Szkopek, D.; Kinsner, M.; Fotschki, B.; Juśkiewicz, J.; Banach, J. Cannabis-derived cannabidiol and nanoselenium improve gut barrier function and affect bacterial enzyme activity in chickens subjected to C. perfringens challenge. Vet. Res. 2020, 51, 1–14. [Google Scholar] [CrossRef]
- Mylonakis, E.; Podsiadlowski, L.; Muhammed, M.; Vilcinskas, A. Diversity, evolution and medical applications of insect antimicrobial peptides. Philos. Trans. R. Soc. B Biol. Sci. 2016, 371, 20150290. [Google Scholar] [CrossRef] [Green Version]
- Yun, J.; Lee, D.G. Cecropin A-induced apoptosis is regulated by ion balance and glutathione antioxidant system in Candida albicans. IUBMB Life 2016, 68, 652–662. [Google Scholar] [CrossRef] [Green Version]
- Lee, E.; Shin, A.; Kim, Y. Anti-inflammatory activities of cecropin a and its mechanism of action. Arch. Insect Biochem. Physiol. 2014, 88, 31–44. [Google Scholar] [CrossRef]
- Kalsy, M.; Tonk, M.; Hardt, M.; Dobrindt, U.; Zdybicka-Barabas, A.; Cytrynska, M.; Vilcinskas, A.; Mukherjee, K. The insect antimicrobial peptide cecropin A disrupts uropathogenic Escherichia coli biofilms. NPJ Biofilms Microbiomes 2020, 6, 1–8. [Google Scholar] [CrossRef] [Green Version]
- Klewicka, E.; Nowak, A.; Zduńczyk, Z.; Juśkiewicz, J.; Cukrowska, B. Protective effect of lactofermented red beetroot juice against aberrant crypt foci formation, genotoxicity of fecal water and oxidative stress induced by 2-amino-1-methyl-6-phenylimidazo[4,5-b] pyridine in rats model. Environ. Toxicol. Pharmacol. 2012, 34, 895–904. [Google Scholar] [CrossRef]
- Pellock, S.J.; Creekmore, B.C.; Walton, W.G.; Mehta, N.; Biernat, K.A.; Cesmat, A.P.; Ariyarathna, Y.; Dunn, Z.D.; Li, B.; Jin, J.; et al. Gut Microbial β-Glucuronidase Inhibition via Catalytic Cycle Interception. ACS Cent. Sci. 2018, 4, 868–879. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Nagpal, R.; Wang, S.; Woods, L.C.S.; Seshie, O.; Chung, S.T.; Shively, C.A.; Register, T.C.; Craft, S.; McClain, D.A.; Yadav, H. Comparative Microbiome Signatures and Short-Chain Fatty Acids in Mouse, Rat, Non-human Primate, and Human Feces. Front. Microbiol. 2018, 9, 2897. [Google Scholar] [CrossRef] [Green Version]
- Richardson, A.J.; McKain, N.; Wallace, R.J. Ammonia production by human faecal bacteria, and the enumeration, isolation and characterization of bacteria capable of growth on peptides and amino acids. BMC Microbiol. 2013, 13, 6. [Google Scholar] [CrossRef] [Green Version]
- Cerqueira, F.M.; Photenhauer, A.L.; Pollet, R.M.; Brown, H.A.; Koropatkin, N.M. Starch Digestion by Gut Bacteria: Crowdsourcing for Carbs. Trends Microbiol. 2020, 28, 95–108. [Google Scholar] [CrossRef] [PubMed]
- Angelov, A.; Putyrski, M.; Liebl, W. Molecular and Biochemical Characterization of α-Glucosidase and α-Mannosidase and Their Clustered Genes from the Thermoacidophilic Archaeon Picrophilus torridus. J. Bacteriol. 2006, 188, 7123–7131. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Rai, A.; Pinto, S.; Evangelista, M.B.; Gil, H.; Kallip, S.; Ferreira, M.G.; Ferreira, L. High-density antimicrobial peptide coating with broad activity and low cytotoxicity against human cells. Acta Biomater. 2016, 33, 64–77. [Google Scholar] [CrossRef] [PubMed]
- Dosler, S.; Karaaslan, E.; Gerceker, A.A. Antibacterial and anti-biofilm activities of melittin and colistin, alone and in combination with antibiotics against Gram-negative bacteria. J. Chemother. 2016, 28, 95–103. [Google Scholar] [CrossRef] [PubMed]
- Ferre, R.; Melo, M.N.; Correia, A.D.; Feliu, L.; Bardají, E.; Planas, M.; Castanho, M. Synergistic Effects of the Membrane Actions of Cecropin-Melittin Antimicrobial Hybrid Peptide BP100. Biophys. J. 2009, 96, 1815–1827. [Google Scholar] [CrossRef] [Green Version]
- Leandro, L.F.; Mendes, C.A.; Casemiro, L.A.; Vinholis, A.H.; Cunha, W.R.; De Almeida, R.; Martins, C.H. Antimicrobial activity of apitoxin, melittin and phospholipase A2 of honey bee (Apis mellifera) venom against oral pathogens. An. Acad. Bras. Cienc. 2015, 87, 147–155. [Google Scholar] [CrossRef] [Green Version]
- Zduńczyk, Z.; Jankowski, J.; Mikulski, D.; Juśkiewicz, J.; Slominski, B. The effect of NSP-degrading enzymes on gut physiology and growth performance of turkeys fed soybean meal and peas-based diets. Anim. Feed. Sci. Technol. 2020, 263, 114448. [Google Scholar] [CrossRef]
- Gugołek, A.; Juśkiewicz, J.; Kowalska, D.; Zwoliński, C.; Sobiech, P.; Strychalski, J. Physiological responses of rabbits fed with diets containing rapeseed meal, white lupine and pea seeds as soybean meal substitutes. Ciênc. Agrotec. 2018, 42, 297–306. [Google Scholar] [CrossRef]
- Michlmayr, H.; Kneifel, W. β-Glucosidase activities of lactic acid bacteria: Mechanisms, impact on fermented food and human health. FEMS Microbiol. Lett. 2014, 352, 1–10. [Google Scholar] [CrossRef] [Green Version]
- Strahsburger, E.; De Lacey, A.M.L.; Marotti, I.; Digioia, D.; Biavati, B.; Dinelli, G. In vivo assay to identify bacteria with β-glucosidase activity. Electron. J. Biotechnol. 2017, 30, 83–87. [Google Scholar] [CrossRef]
- Kim, D.; Kang, H.; Park, S.; Kobashi, K. Characterization of .BETA.-Glucosidase and .BETA.-Glucuronidase of Alkalotolerant Intestinal Bacteria. Biol. Pharm. Bull. 1994, 17, 423–426. [Google Scholar] [CrossRef] [Green Version]
- De Blas, C.; García, J.; Carabaño, R. Role of fibre in rabbit diets. A review. Anim. Res. 1999, 48, 3–13. [Google Scholar] [CrossRef] [Green Version]
- Ilhan, Z.E.; Marcus, A.K.; Kang, D.-W.; Rittmann, B.E.; Krajmalnik-Brown, R. pH-Mediated Microbial and Metabolic Interactions in Fecal Enrichment Cultures. mSphere 2017, 2. [Google Scholar] [CrossRef] [Green Version]
- Ramin, K.I.; Allison, S.D. Bacterial Tradeoffs in Growth Rate and Extracellular Enzymes. Front. Microbiol. 2019, 10, 2956. [Google Scholar] [CrossRef]
Ingredient (%) | S | LF | MT | CR |
---|---|---|---|---|
Casein 1 DL-methionine Choline chloride | 20 | 20 | 20 | 20 |
0.3 | 0.3 | 0.3 | 0.3 | |
0.2 | 0.2 | 0.2 | 0.2 | |
Saccharose Cellulose | 10 | 10 | 10 | 10 |
8.0 | 8.0 | 8.0 | 8.0 | |
Rapeseed oil Rapeseed oil with lactoferrin 2 Rapeseed oil with melittin 3 Rapeseed oil with cecropin A 4 | 8.0 | 0 | 0 | 0 |
0 | 8.0 | 0 | 0 | |
0 | 0 | 8.0 | 0 | |
0 | 0 | 0 | 8.0 | |
Cholesterol Mineral mix 5 | 0.3 | 0.3 | 0.3 | 0.3 |
3.5 | 3.5 | 3.5 | 3.5 | |
Vitamin mix 6 | 1.0 | 1.0 | 1.0 | 1.0 |
Maize starch 7 | 48.7 | 48.7 | 48.7 | 48.7 |
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Juśkiewicz, J.; Rawicka, A.; Fotschki, B.; Majewski, M.; Zduńczyk, Z. Influence of Supplementation of Lactoferrin, Melittin and Cecropin A to Rat Diet on Changes in Faecal Ammonia Concentrations, Short-Chain Fatty Acid Concentrations and Activities of Bacterial Enzymes. Animals 2021, 11, 1203. https://doi.org/10.3390/ani11051203
Juśkiewicz J, Rawicka A, Fotschki B, Majewski M, Zduńczyk Z. Influence of Supplementation of Lactoferrin, Melittin and Cecropin A to Rat Diet on Changes in Faecal Ammonia Concentrations, Short-Chain Fatty Acid Concentrations and Activities of Bacterial Enzymes. Animals. 2021; 11(5):1203. https://doi.org/10.3390/ani11051203
Chicago/Turabian StyleJuśkiewicz, Jerzy, Aleksandra Rawicka, Bartosz Fotschki, Michał Majewski, and Zenon Zduńczyk. 2021. "Influence of Supplementation of Lactoferrin, Melittin and Cecropin A to Rat Diet on Changes in Faecal Ammonia Concentrations, Short-Chain Fatty Acid Concentrations and Activities of Bacterial Enzymes" Animals 11, no. 5: 1203. https://doi.org/10.3390/ani11051203