Submitted:
23 May 2025
Posted:
26 May 2025
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Materials and Methods
Sample Preparation
Ethanol Extraction
Standards
UPLC-QToF
UPLC-MS/MS
Preparation of Cherry Product Stock Solutions for Bioactivity Assays
Cherry Juice
Cherry Pulp Powder
Blackberry powder
Kirby-Bauer Analysis
Growth Measurements of E. coli OP50
Growth Measurement of Lactobacillus Strains
C. elegans Culture Methods and Strains
Preparation of Experimental NGM Plates
Developmental Assays
Proteotoxicity Assay
Statistical Analysis
3. Results
Quantification and Identification of Anthocyanins in Kent Cherry Products
Anti-Bacterial and Probiotic Properties of Cherry Juice and Cherry Pulp Powder
Cherry Products Do Not Have a Negative Impact on C. elegans Growth or Development
Cherry Pulp Powder Protects Against Amyloid-β Proteotoxicity
4. Discussion
Insights From Analysing Waste Cherry Products
Mechanisms by Which Cherry Powder May Protect Against Aβ Toxicity
An opportunity to Use Waste to Produce Inexpensive Healthy Foods
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| AD | Alzheimer’s disease |
| CGC | Caenorhabditis Genetics Center |
| DMSO | Dimethyl sulfoxide |
| DOAJ | Directory of Open Access Journals |
| LB | Luria–Bertani broth |
| MDPI | Multidisciplinary Digital Publishing Institute |
| MRS | De Man–Rogosa–Sharpe agar |
| NGM | Nematode Growth Medium |
| QToF | Quadrupole Time-of-Flight |
| SEM | Standard error of the mean |
| UPLC-MS | Ultra-Performance Liquid Chromatography–Mass Spectrometry |
| UPLC-QToF | Ultra-Performance Liquid Chromatography coupled to Quadrupole Time-of-Flight |
References
- United Nations Environment Programme Think Eat Save Tracking Progress to Halve Global Food Waste; 2024.
- Jimenez-Lopez, C.; Fraga-Corral, M.; Carpena, M.; García-Oliveira, P.; Echave, J.; Pereira, A.G.; Lourenço-Lopes, C.; Prieto, M.A.; Simal-Gandara, J. Agriculture Waste Valorisation as a Source of Antioxidant Phenolic Compounds within a Circular and Sustainable Bioeconomy. Food Funct 2020, 11, 4853–4877. [Google Scholar] [CrossRef] [PubMed]
- Gutiérrez-del-Río, I.; López-Ibáñez, S.; Magadán-Corpas, P.; Fernández-Calleja, L.; Pérez-Valero, Á.; Tuñón-Granda, M.; Miguélez, E.M.; Villar, C.J.; Lombó, F. Terpenoids and Polyphenols as Natural Antioxidant Agents in Food Preservation. Antioxidants 2021, 10, 1264. [Google Scholar] [CrossRef] [PubMed]
- Vauzour, D.; Rodriguez-Mateos, A.; Corona, G.; Oruna-Concha, M.J.; Spencer, J.P.E. Polyphenols and Human Health: Prevention of Disease and Mechanisms of Action. Nutrients 2010, 2, 1106–1131. [Google Scholar] [CrossRef] [PubMed]
- Mattioli, R.; Francioso, A.; Mosca, L.; Silva, P. Anthocyanins: A Comprehensive Review of Their Chemical Properties and Health Effects on Cardiovascular and Neurodegenerative Diseases. Molecules 2020, 25, 3809. [Google Scholar] [CrossRef]
- Mattioli, R.; Francioso, A.; Mosca, L.; Silva, P. Anthocyanins: A Comprehensive Review of Their Chemical Properties and Health Effects on Cardiovascular and Neurodegenerative Diseases. Molecules 2020, 25, 3809. [Google Scholar] [CrossRef]
- Jennings, A.; Thompson, A.S.; Tresserra-Rimbau, A.; O’Neill, J.K.; Hill, C.; Bondonno, N.P.; Kühn, T.; Cassidy, A. Flavonoid-Rich Foods, Dementia Risk, and Interactions With Genetic Risk, Hypertension, and Depression. JAMA Netw Open 2024, 7, e2434136. [Google Scholar] [CrossRef]
- Hole, K.L.; Williams, R.J. Flavonoids as an Intervention for Alzheimer’s Disease: Progress and Hurdles Towards Defining a Mechanism of Action1. Brain Plasticity 2021, 6, 167–192. [Google Scholar] [CrossRef]
- Lakshmikanthan, M.; Muthu, S.; Krishnan, K.; Altemimi, A.B.; Haider, N.N.; Govindan, L.; Selvakumari, J.; Alkanan, Zina. T.; Cacciola, F.; Francis, Y.M. A Comprehensive Review on Anthocyanin-Rich Foods: Insights into Extraction, Medicinal Potential, and Sustainable Applications. J Agric Food Res 2024, 17, 101245. [Google Scholar] [CrossRef]
- Bastos, C.; Barros, L.; Dueñas, M.; Calhelha, R.C.; Queiroz, M.J.R.P.; Santos-Buelga, C.; Ferreira, I.C.F.R. Chemical Characterisation and Bioactive Properties of Prunus Avium L.: The Widely Studied Fruits and the Unexplored Stems. Food Chem 2015, 173, 1045–1053. [Google Scholar] [CrossRef]
- Chezanoglou, E.; Mourtzinos, I.; Goula, A.M. Sweet Cherry and Its By-Products as Sources of Valuable Phenolic Compounds. Trends Food Sci Technol 2024, 145, 104367. [Google Scholar] [CrossRef]
- ECONOMIC ANALYSIS OF POSTHARVEST LOSSES.
- Aghababaei, F.; Hadidi, M. Recent Advances in Potential Health Benefits of Quercetin. Pharmaceuticals 2023, 16, 1020. [Google Scholar] [CrossRef] [PubMed]
- Enaru, B.; Drețcanu, G.; Pop, T.D.; Stǎnilǎ, A.; Diaconeasa, Z. Anthocyanins: Factors Affecting Their Stability and Degradation. Antioxidants 2021, 10, 1967. [Google Scholar] [CrossRef]
- UK Met Office Weather and Climate Summaries.
- Petreska Stanoeva, Jasmina; Balshikevska, Elena; Stefova, Marina; Tusevski, Oliver; Simic, Sonja G Comparison of the Effect of Acids in Solvent Mixtures for Extraction of Phenolic Compounds From Aronia Melanocarpa. Nat Prod Commun 2020, 15, 1934578X20934675. [CrossRef]
- Kittibunchakul, S.; Temviriyanukul, P.; Chaikham, P.; Kemsawasd, V. Effects of Freeze Drying and Convective Hot-Air Drying on Predominant Bioactive Compounds, Antioxidant Potential and Safe Consumption of Maoberry Fruits. LWT 2023, 184, 114992. [Google Scholar] [CrossRef]
- Ma, Y.; Ding, S.; Fei, Y.; Liu, G.; Jang, H.; Fang, J. Antimicrobial Activity of Anthocyanins and Catechins against Foodborne Pathogens Escherichia Coli and Salmonella. Food Control 2019, 106, 106712. [Google Scholar] [CrossRef]
- Bauer, A.W.; Kirby, W.M.M.; Sherris, J.C.; Turck, M. Antibiotic Susceptibility Testing by a Standardized Single Disk Method. Am J Clin Pathol 1966, 45, 493–496. [Google Scholar] [CrossRef]
- Corsi, A.K.; Wightman, B.; Chalfie, M. A Transparent Window into Biology: A Primer on Caenorhabditis Elegans. Genetics 2015, 200, 387–407. [Google Scholar] [CrossRef]
- Ullah, R.; Khan, M.; Shah, S.A.; Saeed, K.; Kim, M.O. Natural Antioxidant Anthocyanins—A Hidden Therapeutic Candidate in Metabolic Disorders with Major Focus in Neurodegeneration. Nutrients 2019, 11, 1195. [Google Scholar] [CrossRef]
- McColl, G.; Roberts, B.R.; Pukala, T.L.; Kenche, V.B.; Roberts, C.M.; Link, C.D.; Ryan, T.M.; Masters, C.L.; Barnham, K.J.; Bush, A.I.; et al. Utility of an Improved Model of Amyloid-Beta (Aβ1-42) Toxicity in Caenorhabditis Elegansfor Drug Screening for Alzheimer’s Disease. Mol Neurodegener 2012, 7, 57. [Google Scholar] [CrossRef]
- Whyte, A.R.; Cheng, N.; Fromentin, E.; Williams, C.M. A Randomized, Double-Blinded, Placebo-Controlled Study to Compare the Safety and Efficacy of Low Dose Enhanced Wild Blueberry Powder and Wild Blueberry Extract (ThinkBlueTM) in Maintenance of Episodic and Working Memory in Older Adults. Nutrients 2018, 10, 660. [Google Scholar] [CrossRef] [PubMed]
- Boespflug, E.L.; Eliassen, J.C.; Dudley, J.A.; Shidler, M.D.; Kalt, W.; Summer, S.S.; Stein, A.L.; Stover, A.N.; Krikorian, R. Enhanced Neural Activation with Blueberry Supplementation in Mild Cognitive Impairment. Nutr Neurosci 2018, 21, 297–305. [Google Scholar] [CrossRef] [PubMed]
- Krikorian, R.; Skelton, M.R.; Summer, S.S.; Shidler, M.D.; Sullivan, P.G. Blueberry Supplementation in Midlife for Dementia Risk Reduction. Nutrients 2022, 14, 1619. [Google Scholar] [CrossRef] [PubMed]
- Lopresti, A.L.; Smith, S.J.; Pouchieu, C.; Pourtau, L.; Gaudout, D.; Pallet, V.; Drummond, P.D. Effects of a Polyphenol-Rich Grape and Blueberry Extract (MemophenolTM) on Cognitive Function in Older Adults with Mild Cognitive Impairment: A Randomized, Double-Blind, Placebo-Controlled Study. Front Psychol 2023, 14. [Google Scholar] [CrossRef]
- Wood, E.; Hein, S.; Mesnage, R.; Fernandes, F.; Abhayaratne, N.; Xu, Y.; Zhang, Z.; Bell, L.; Williams, C.; Rodriguez-Mateos, A. Wild Blueberry (Poly)Phenols Can Improve Vascular Function and Cognitive Performance in Healthy Older Individuals: A Double-Blind Randomized Controlled Trial. Am J Clin Nutr 2023, 117, 1306–1319. [Google Scholar] [CrossRef]
- Barfoot, K.L.; May, G.; Lamport, D.J.; Ricketts, J.; Riddell, P.M.; Williams, C.M. The Effects of Acute Wild Blueberry Supplementation on the Cognition of 7–10-Year-Old Schoolchildren. Eur J Nutr 2019, 58, 2911–2920. [Google Scholar] [CrossRef]
- Kent, K.; Charlton, K.; Roodenrys, S.; Batterham, M.; Potter, J.; Traynor, V.; Gilbert, H.; Morgan, O.; Richards, R. Consumption of Anthocyanin-Rich Cherry Juice for 12 Weeks Improves Memory and Cognition in Older Adults with Mild-to-Moderate Dementia. Eur J Nutr 2017, 56, 333–341. [Google Scholar] [CrossRef]
- Ali, T.; Kim, M.J.; Rehman, S.U.; Ahmad, A.; Kim, M.O. Anthocyanin-Loaded PEG-Gold Nanoparticles Enhanced the Neuroprotection of Anthocyanins in an Aβ1–42 Mouse Model of Alzheimer’s Disease. Mol Neurobiol 2017, 54, 6490–6506. [Google Scholar] [CrossRef]
- Vepsäläinen, S.; Koivisto, H.; Pekkarinen, E.; Mäkinen, P.; Dobson, G.; McDougall, G.J.; Stewart, D.; Haapasalo, A.; Karjalainen, R.O.; Tanila, H.; et al. Anthocyanin-Enriched Bilberry and Blackcurrant Extracts Modulate Amyloid Precursor Protein Processing and Alleviate Behavioral Abnormalities in the APP/PS1 Mouse Model of Alzheimer’s Disease. J Nutr Biochem 2013, 24, 360–370. [Google Scholar] [CrossRef]
- Yamakawa, M.Y.; Uchino, K.; Watanabe, Y.; Adachi, T.; Nakanishi, M.; Ichino, H.; Hongo, K.; Mizobata, T.; Kobayashi, S.; Nakashima, K.; et al. Anthocyanin Suppresses the Toxicity of Aβ Deposits through Diversion of Molecular Forms in in Vitro and in Vivo Models of Alzheimer’s Disease. Nutr Neurosci 2016, 19, 32–42. [Google Scholar] [CrossRef]
- Tarozzi, A.; Morroni, F.; Merlicco, A.; Bolondi, C.; Teti, G.; Falconi, M.; Cantelli-Forti, G.; Hrelia, P. Neuroprotective Effects of Cyanidin 3-O-Glucopyranoside on Amyloid Beta (25–35) Oligomer-Induced Toxicity. Neurosci Lett 2010, 473, 72–76. [Google Scholar] [CrossRef]
- Aguilera, J.M. The Food Matrix: Implications in Processing, Nutrition and Health. Crit Rev Food Sci Nutr 2019, 59, 3612–3629. [Google Scholar] [CrossRef] [PubMed]
- Kumkum, R.; Aston-Mourney, K.; McNeill, B.A.; Hernández, D.; Rivera, L.R. Bioavailability of Anthocyanins: Whole Foods versus Extracts. Nutrients 2024, 16, 1403. [Google Scholar] [CrossRef] [PubMed]
- Willett, W.; Rockström, J.; Loken, B.; Springmann, M.; Lang, T.; Vermeulen, S.; Garnett, T.; Tilman, D.; DeClerck, F.; Wood, A.; et al. Food in the Anthropocene: The EAT–Lancet Commission on Healthy Diets from Sustainable Food Systems. The Lancet 2019, 393, 447–492. [Google Scholar] [CrossRef] [PubMed]




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