Natural Deep Eutectic Extracts of Propolis, Sideritis scardica, and Plantago major Reveal Potential Antiageing Activity during Yeast Chronological Lifespan
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M. Popova | V. Bankova | K. Alipieva | B. Trusheva | M. Georgieva | Bela Vasileva | D. Staneva | G. Miloshev | H. Petkov | T. Grozdanova | Milena Georgieva
[1] S. Yuk,et al. Clinical Anti‐aging Efficacy of Propolis Polymeric Nanoparticles Prepared by a Temperature‐induced Phase Transition Method , 2022, Journal of cosmetic dermatology.
[2] N. Zarghami,et al. A new insight into cell biological and biochemical changes through aging. , 2022, Acta histochemica.
[3] T. Emran,et al. Role of Phenolic Compounds in Human Disease: Current Knowledge and Future Prospects , 2021, Molecules.
[4] L. Roger,et al. Mechanisms and Regulation of Cellular Senescence , 2021, International journal of molecular sciences.
[5] Maciej Banach,et al. The Current Use and Evolving Landscape of Nutraceuticals. , 2021, Pharmacological research.
[6] A. Romano,et al. Greener Is Better: First Approach for the Use of Natural Deep Eutectic Solvents (NADES) to Extract Antioxidants from the Medicinal Halophyte Polygonum maritimum L. , 2021, Molecules.
[7] N. Krasteva,et al. Changes in Chromatin Organization Eradicate Cellular Stress Resilience to UVA/B Light and Induce Premature Aging , 2021, Cells.
[8] A. Rauf,et al. Effect of natural leaf extracts as phytomedicine in curing geriatrics , 2021, Experimental Gerontology.
[9] S. Gómez-Alonso,et al. Polyphenolic Compounds Extracted and Purified from Buddleja Globosa Hope (Buddlejaceae) Leaves Using Natural Deep Eutectic Solvents and Centrifugal Partition Chromatography , 2021, Molecules.
[10] A. Ünlü. Green and Non‐conventional Extraction of Bioactive Compounds from Olive Leaves: Screening of Novel Natural Deep Eutectic Solvents and Investigation of Process Parameters , 2021, Waste and Biomass Valorization.
[11] C. Toseland,et al. Regulation of Nuclear Mechanics and the Impact on DNA Damage , 2021, International journal of molecular sciences.
[12] Mamilla Soujanya,et al. Deterioration of nuclear morphology and architecture: A hallmark of senescence and aging , 2021, Ageing Research Reviews.
[13] M. Popova,et al. Extracts of medicinal plants with natural deep eutectic solvents: enhanced antimicrobial activity and low genotoxicity , 2020, BMC Chemistry.
[14] M. Kolar,et al. Innovative Extraction Techniques Using Deep Eutectic Solvents and Analytical Methods for the Isolation and Characterization of Natural Bioactive Compounds from Plant Material , 2020, Plants.
[15] T. Emanuelli,et al. Natural deep eutectic solvent (NADES)-based blueberry extracts protect against ethanol-induced gastric ulcer in rats. , 2020, Food research international.
[16] K. Dick,et al. The information theory of aging , 2020, Health Science Inquiry.
[17] Y. Choi,et al. Natural Deep Eutectic Solvent Extraction of Flavonoids of Scutellaria baicalensis as a Replacement for Conventional Organic Solvents , 2020, Molecules.
[18] B. Kennedy,et al. Aging: therapeutics for a healthy future , 2019, Neuroscience & Biobehavioral Reviews.
[19] J. Seidman,et al. DNA Break-Induced Epigenetic Drift as a Cause of Mammalian Aging , 2019, bioRxiv.
[20] A. Moț,et al. In Vivo Pharmacological and Anti-inflammatory Evaluation of Xerophyte Plantago sempervirens Crantz , 2019, Oxidative medicine and cellular longevity.
[21] P. Zagorchev,et al. Linker histones and chromatin remodelling complexes maintain genome stability and control cellular ageing , 2019, Mechanisms of Ageing and Development.
[22] Khalid Ali Khan,et al. Composition and functional properties of propolis (bee glue): A review , 2018, Saudi journal of biological sciences.
[23] V. Titorenko,et al. Yeast chronological aging is linked to cell cycle regulation , 2018, Cell cycle.
[24] Jen-Hung Yang,et al. Dual Effects of Alpha-Hydroxy Acids on the Skin , 2018, Molecules.
[25] Guido F Pauli,et al. Natural Deep Eutectic Solvents: Properties, Applications, and Perspectives. , 2018, Journal of natural products.
[26] Erwann Durand,et al. Application of Deep Eutectic Solvents (DES) for Phenolic Compounds Extraction: Overview, Challenges, and Opportunities. , 2017, Journal of agricultural and food chemistry.
[27] S. Liochev. Which Is the Most Significant Cause of Aging? , 2015, Antioxidants.
[28] M. Harata,et al. The linker histone in Saccharomyces cerevisiae interacts with actin-related protein 4 and both regulate chromatin structure and cellular morphology. , 2015, The international journal of biochemistry & cell biology.
[29] V. Gire,et al. Senescence from G2 arrest, revisited , 2015, Cell cycle.
[30] Min-Jung Kim,et al. Anti-aging Potential of Extracts Prepared from Fruits and Medicinal Herbs Cultivated in the Gyeongnam Area of Korea , 2014, Preventive nutrition and food science.
[31] Rui L. Reis,et al. Natural Deep Eutectic Solvents – Solvents for the 21st Century , 2014 .
[32] A. Trendafilova,et al. Sideritis scardica Griseb., an endemic species of Balkan peninsula: traditional uses, cultivation, chemical composition, biological activity. , 2014, Journal of ethnopharmacology.
[33] L. Breeden,et al. Key events during the transition from rapid growth to quiescence in budding yeast require posttranscriptional regulators , 2013, Molecular biology of the cell.
[34] Sandra Tenreiro,et al. Harnessing the power of yeast to unravel the molecular basis of neurodegeneration , 2013, Journal of neurochemistry.
[35] G. Miloshev,et al. Saccharomyces cerevisiae Linker Histone—Hho1p Maintains Chromatin Loop Organization during Ageing , 2013, Oxidative medicine and cellular longevity.
[36] Wei Li,et al. A functional variomics tool for discovering drug-resistance genes and drug targets. , 2013, Cell reports.
[37] Zhongjun Zhou,et al. Chromatin Remodeling, DNA Damage Repair and Aging , 2012, Current genomics.
[38] E. Mandelkow,et al. Inhibition of tau aggregation in a novel Caenorhabditis elegans model of tauopathy mitigates proteotoxicity. , 2012, Human molecular genetics.
[39] B. Kennedy,et al. Replicative and chronological aging in Saccharomyces cerevisiae. , 2012, Cell metabolism.
[40] J. Zlatanova,et al. Hho1p, the linker histone of Saccharomyces cerevisiae, is important for the proper chromatin organization in vivo. , 2012, Biochimica et biophysica acta.
[41] V. Trajković,et al. Anti-inflammatory, gastroprotective, and cytotoxic effects of Sideritis scardica extracts. , 2012, Planta medica.
[42] Yin-Chang Liu,et al. Induction of oxidative DNA damage by flavonoids of propolis: its mechanism and implication about antioxidant capacity. , 2012, Chemical research in toxicology.
[43] D. Staneva,et al. The Deletion of the Gene for the Linker Histone in ARP 4 Mutant Yeast Cells is not Deleterious , 2012 .
[44] Jessica M. Lindvall,et al. A chemical-genetic screen to unravel the genetic network of CDC28/CDK1 links ubiquitin and Rad6–Bre1 to cell cycle progression , 2011, Proceedings of the National Academy of Sciences.
[45] I. Arends,et al. Are Natural Deep Eutectic Solvents the Missing Link in Understanding Cellular Metabolism and Physiology?[W] , 2011, Plant Physiology.
[46] Sean Yu,et al. Transcriptional regulation in yeast during diauxic shift and stationary phase. , 2010, Omics : a journal of integrative biology.
[47] S. Elledge,et al. The DNA damage response: making it safe to play with knives. , 2010, Molecular cell.
[48] Kunlin Jin,et al. Modern Biological Theories of Aging. , 2010, Aging and disease.
[49] P. Denev,et al. Evaluation of antioxidant activity of medicinal plants containing polyphenol compounds. Comparison of two extraction systems. , 2010, Acta biochimica Polonica.
[50] L. Partridge,et al. Extending Healthy Life Span—From Yeast to Humans , 2010, Science.
[51] M. Kaeberlein. Lessons on longevity from budding yeast , 2010, Nature.
[52] T. Misteli,et al. The central role of chromatin maintenance in aging , 2009, Aging.
[53] H. Bussey,et al. Exploring genetic interactions and networks with yeast , 2007, Nature Reviews Genetics.
[54] M. Werner-Washburne,et al. Isolation of quiescent and nonquiescent cells from yeast stationary-phase cultures , 2006, The Journal of cell biology.
[55] S. Keeney,et al. Cyclin-Dependent Kinase Directly Regulates Initiation of Meiotic Recombination , 2006, Cell.
[56] H. Lieberman,et al. Rad9, an evolutionarily conserved gene with multiple functions for preserving genomic Integrity , 2006, Journal of cellular biochemistry.
[57] S. Cummings,et al. Biology of Aging , 2006, Reihe der Villa Vigoni.
[58] A. Young,et al. A potent small molecule inhibits polyglutamine aggregation in Huntington's disease neurons and suppresses neurodegeneration in vivo. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[59] M. Kupiec,et al. The CDK regulates repair of double‐strand breaks by homologous recombination during the cell cycle , 2004, The EMBO journal.
[60] Marco Foiani,et al. DNA end resection, homologous recombination and DNA damage checkpoint activation require CDK1 , 2004, Nature.
[61] S. Jackson,et al. Suppression of homologous recombination by the Saccharomyces cerevisiae linker histone. , 2003, Molecular cell.
[62] V. Longo,et al. The chronological life span of Saccharomyces cerevisiae , 2003, Methods in molecular biology.
[63] D. Stillman,et al. Correlation between chromatin association and transcriptional regulation for the Act3p/Arp4 nuclear actin-related protein of Saccharomyces cerevisiae. , 2002, Nucleic acids research.
[64] Thomas D. Schmittgen,et al. Analysis of relative gene expression data using real-time quantitative PCR and the 2(-Delta Delta C(T)) Method. , 2001, Methods.
[65] M. Zimmermann,et al. Calendar life span versus budding lifespan of Saccharomyces cerevisiae , 1980, Mechanisms of Ageing and Development.
[66] V. Longo,et al. Chronological aging in Saccharomyces cerevisiae. , 2012, Sub-cellular biochemistry.
[67] W. Siede,et al. Analysis of the budding yeast Saccharomyces cerevisiae cell cycle by morphological criteria and flow cytometry. , 2004, Methods in molecular biology.
[68] F. Sherman. Getting started with yeast. , 1991, Methods in enzymology.
[69] Thomas D. Schmittgen,et al. Analysis of Relative Gene Expression Data Using Real-Time Quantitative PCR and the 2 2 DD C T Method , 2022 .