Characterization and metabolomic profiling of endophytic micro organism remoted from Moringa oleifera and Piper betel leaves
Nicolaou, Okay. C. et al. Whole synthesis of taxol. Nature 367, 630–634 (1994).
Google Scholar
Bacon, C. W. &White, J. F. Microbial Endophytes 3–29. Marcel Dekker.
Strobel, G. A. Endophytes as sources of bioactive merchandise. Microb. Infect. 5, 535–544 (2003).
Google Scholar
Owen, N. L. & Nicholas, H. Endophytes—The chemical synthesizers inside vegetation. Sci. Progress 87(2), 79–99 (2004).
Google Scholar
Strobel, G., Daisy, B., Castillo, U. & Harper, J. Pure merchandise from endophytic microorganisms. J. Nat. Prod. 67, 257–268 (2004).
Google Scholar
Germaine, Okay. et al. Colonisation of poplar bushes by gfp expressing bacterial endophytes. FEMS Microbiol. Ecol. 48, 109–118 (2004).
Germaine, Okay. et al. Colonisation of poplar bushes by gfp expressing bacterial endophytes. FEMS Microbiol. Ecol. 48, 109–118 (2004).
Google Scholar
Sturz, A. V., Christie, B. R., Matheson, B. G. & Nowak, J. Biodiversity of endophytic micro organism which colonize purple clover nodules, roots, stems and foliage and their affect on host development. Biol. Fertil. Soils 25(1), 13–19 (1997).
Google Scholar
Zhang, Y. et al. Broad-spectrum antimicrobial epiphytic and endophytic fungi from marine organisms: Isolation, bioassay and taxonomy. Mar. Medicine 7, 97–112 (2009).
Google Scholar
Anwar, F., Latif, S., Ashraf, M. & Gilani, A. H. Moringa oleifera: A meals plant with a number of medicinal makes use of. Phytother. Res. 25, 17–25 (2007).
Google Scholar
Gowrishankar, R. et al. Hint ingredient research on Tinospora cordifolia (Menispermaceae), Ocimum sanctum (Lamiaceae), Moringa oleifera (Moringaceae), and Phyllanthus niruri (Euphorbiaceae) utilizing PIXE. Biol. Hint Elem. Res. 133(3), 357–363 (2010).
Google Scholar
Sindhuraju, P. & Becker, Okay. Antioxidant properties of assorted solvent extracts of complete phenolic constituents from three completely different agroclimatic origins of drumstick tree (Moringa oleifera Lam.) leaves. J. Agric. Meals Chem. 51, 2144–2155 (2003).
Google Scholar
Patra, A. P., Mukherjee, A. Okay. & Acharya, L. Comparative examine of RAPD and ISSR markers to evaluate the genetic variety of betel vine (Piper betel L.) in Orissa. Am. J. Biochem. Mol. Biol. 1(2), 200–211 (2011).
Google Scholar
Punuri, J. B., Sharma, P., Sibyala, S., Tamuli, R. & Utpal, B. Piper Betle mediated inexperienced synthesis of biocompatible gold nanoparticles distinctions within the plant-bacterium signalling processes. Int. Nano Lett. 37, 395–412 (2012).
Anjun &Chandra. Endophytic micro organism: Optimizaton of isolation process from varied medicinal vegetation and their preliminary characterization. Asian J. Pharmaceut. Clin. Res. 8(4), 233–238 (2015).
Sharaf, E. M., Hassan, AL-Salmi, A., Fawziah A., Albalwe, F. M., Albalawi, H. R., Darwish, Doaa B. & Eman, F. Synergistic antibacterial exercise of compact silver/magnetite core-shell nanoparticles core shell towards Gram-negative foodborne pathogens. Entrance. Microbiol. 13 (2022).
Sharma, M. & Mallubhotla, S. Variety, antimicrobial exercise, and antibiotic susceptibility sample of endophytic micro organism sourced from Cordia dichotoma L. Entrance. Microbial. 13, e879386 (2022).
Google Scholar
Compean, Okay. L. & Ynalvez, R. A. Antimicrobial exercise of plant secondary metabolites: A overview. Res. J. Med. Crops 8(5), 204–213 (2014).
Google Scholar
Li, X., Wang, Z.-G., Chen, H.-H. & Liu, S.-G. The antiÂoxidant methyl 3-(3,5-di-tert-butyl-4-hyÂdroxyÂphenÂyl)propionate. Acta Crystallographica Sect. C 70, 1050–1053 (2014).
Google Scholar
Ortiz, A. & Sansinenea, E. Phenylpropanoid derivatives and their position in vegetation’ well being and as antimicrobials. Curr. Microbiol. 80, 380 (2023).
Google Scholar
Johnson, J. B. et al. A overview of vitamin D and its precursors in vegetation and their translation to lively metabolites in meat. Meals Rev. Int. 39(4), 1770–1798 (2021).
Google Scholar
Riaz, M. et al. Arbuscular mycorrhizal fungi-induced mitigation of heavy metallic phytotoxicity in metallic contaminated soils: A crucial overview. J. Hazard. Mater. 402, 123919 (2020).
Google Scholar
Goracci, G., Balestrieri, M.L., Nardicchi, V. Metabolism and capabilities of platelet-activating issue (PAF) within the nervous tissue. In (eds. Lajtha, A., Tettamanti, G. & Goracci, G.) Handbook of Neurochemistry and Molecular Neurobiology 311–352 (2009).
Lazazzara, V. et al. Progress media have an effect on the volatilome and antimicrobial exercise towards Phytophthora infestans in 4 Lysobacter sort strains. Microbiol. Res. 201, 52–62 (2017).
Google Scholar
Males, S. & Boutté, Y. Sterols in development and improvement of plant membranes. Plant Cell Rep. 37(7), 891–906 (2018).
Google Scholar
Kishor, P. V. Okay., Kumari, P. H., Sunita, M. S. L. &Sreenivasula, N. Position of proline in cell wall synthesis and plant improvement and its implication in plant ontogeny. Entrance. Plant Physiol. 6 (2015).
Bates, P. D. & Browse, J. The importance of various diacylgycerol synthesis pathways on plant oil composition and bioengineering. Entrance. Plant Sci. 3 (2012).
Corpas, F. J., Gonzalez-gordo, S. & Palma, J. M. Protein nitration : A connecting bridge between nitric oxide (NO) and plant stress. Sci. Direct 2, 100026 (2021).
Google Scholar
Minen, R. I. et al. Structural determinants of sugar alcohol biosynthesis in vegetation: The crystal buildings of mannose-6-phosphate and aldose-6-phosphate reductases. Plant Cell Physiol. 63(5), 658–670 (2022).
Google Scholar
Arunachalam, C. & Gayathri, P. Research on bioprospecting of endophytic micro organism from the medicinal plant of Andrographis paniculata for his or her antimicrobial exercise and antibiotic susceptibility sample. Int. J. Curr. Pharmaceut. Res. 2(4), 63–68 (2010).
Schulz, B., Römmert, A. Okay., Dammann, U., Aust, H. J. & Strack, D. The endophyte-host interplay: A balanced antagonism?. Mycological Res. 103(10), 1275–1283 (1999).
Google Scholar
Altschul, S. F., Gish, W., Miller, W., Myers, E. W. & Lipman, D. J. Fundamental native alignment search software. J. Mol. Biol. 215(3), 403–410 (1990).
Google Scholar
Edgar, R. C. MUSCLE: A number of sequence alignment with excessive accuracy and excessive throughput. BMC Bioinform. 5(1), 113 (2004).
Google Scholar
Tamura, Okay., Stecher, G. & Kumar, S. MEGA11: Molecular evolutionary genetics evaluation model 11. Mol. Biol. Evol. 38(7), 3022–3027 (2021).
Google Scholar
Adeyemi, M. A. et al. Pytochemical evaluation and GC-MS willpower of Lagenaria breviflora R. fruit. Int. J. Pharmacogn. Phytochem. Res. 9(7), 1045–1050 (2017).
Perez, F. et al. World problem of multidrug-resistant Acinetobacter baumannii. Antimicrobial. Brokers Chemother. 51(10), 3471–3484 (2007).
Google Scholar
Pieterse, C. M., Van der Does, D., Zamioudis, C., Leon-Reyes, A., & Van Wees, S. C. Hormonal modulation of plant immunity. Annu. Rev. Cell Dev. Biol. 28, 489–521 (2012).
Google Scholar
Brusa, C., Muzard, M., Rémond, C. & Plantier-Royon, R. β-Xylopyranosides: synthesis and functions. RSC Adv. 110(5), 91026–91055 (2015).
Google Scholar
Browse, J. Jasmonate passes muster: a receptor and targets for the protection hormone. Annu. Rev. Plant Biol. 60, 183–205 (2009).
Google Scholar
Vogt, T. Phenylpropanoid biosynthesis. This paper particulars the phenylpropanoid pathway and the position of associated compounds in plant secondary metabolism. Mol. Plant 3(1), 2–20 (2010).
Google Scholar
Wasternack, C. & Hause, B. Jasmonates: biosynthesis, notion, sign transduction and motion in plant stress response, development and improvement. Ann. Bot. 111(6), 1021–1058 (2013).
Google Scholar
Mudge, S., Meier-Augenstein, W., Eadsforth, C. & DeLeo, P. What contribution do detergent fatty alcohols make to sewage discharges and the marine setting? J. Environ. Monit. 12(10), 1846–1856 (2010).
Google Scholar
Lafuente, M., Rodríguez González-Herrero, M. E., Romeo Villadóniga, S. & Domingo, J. C. Antioxidant Exercise and Neuroprotective Position of Docosahexaenoic Acid (DHA) Supplementation in Eye Ailments That Can Result in Blindness: A Narrative Evaluation. Antioxidants 10(3), 386 (2021).
Google Scholar
Ali, I. et al. In vitro antifungal exercise of hydroxychavicol remoted from Piper betle L. Ann. Clin. Microbiol. Antimicrob. 9, 7 (2010).
Google Scholar
Clouse, S. D. & Sasse, J. M. Brassinosteroids: Important Regulators of Plant Progress and Growth. Annu. Rev. Plant Physiol. Plant Mol. Biol. 49(1), 427–451 (1998).
Google Scholar
Dall’Osto, M. & Harrison, R. M. Characterization of indoor airborne particles through the use of real-time aerosol mass spectro-metry, in preparation (2006).
Vanderstraeten, L. & Van Der, S. Accumulation and transport of 1-aminocyclopropane-1-carboxylic acid (ACC) in vegetation: present standing, concerns for future analysis and agronomic functions. Entrance. Plant sci. 8, 38 (2017).
Google Scholar
Dorokhov, Y. L., Sheshukova, E. V. & Komarova, T. V. Methanol in Plant Life. Entrance. Plant sci. 9, 1623 (2018).
Google Scholar
Dudareva, N., Negre, F., Nagegowda, D. A. & Orlova, I. Plant volatiles: latest advances and future views. Crit. Rev. Plant Sci. 25(5), 417–440 (2006).
Google Scholar
Kubo, I., Muroi, H. & Himejima, M. Construction – Antibacterial exercise relationships of anacardic acids. J. Agric. Meals Chem. 41(6), 1016–1019 (1993).
Google Scholar
Bays HE, Ballantyne CM, Kastelein JJ, Isaacsohn JL, Braeckman RA, Soni PN. Eicosapentaenoic acid ethyl ester (AMR101) remedy in sufferers with very excessive triglyceride ranges (from the Multi-center, plAcebo-controlled, Randomized, double-blINd, 12-week examine with an open-label Extension [MARINE] trial). Am. J. Cardiol. 108(5), 682–690. (2011).
Google Scholar
Kim, S. et al. Chemical Construction and Organic Actions of Secondary Metabolites from Salicornia europaea L. Molecules 26(8), 2252 (2021).
Google Scholar
Wu, J. et al. Advances within the examine of the perform and mechanism of the motion of flavonoids in vegetation below environmental stresses. Planta 257, 108 (2023).
Google Scholar
Scopes, R. Okay. Protein Purification (Springer New York, NY, 1994)
Google Scholar
Yancey, P. H., Clark, M. E., Hand, S. C., Bowlus, R. D. & Somero, G. N. Dwelling with water stress: evolution of osmolyte programs. Science 217(4566), 1214–1222. (1982).
Google Scholar
Bhattacharya, C. et al. Analysis of plant development promotion properties and induction of antioxidative protection mechanism by tea rhizobacteria of Darjeeling, India. Sci. Rep. 10, 15536 (2020).
Google Scholar
Li, H. et al. The Position of Plant Progesterone in Regulating Progress, Growth, and Biotic/Abiotic Stress Responses. Int. J. Mol. Sci. 23(18), 10945 (2022).
Google Scholar
Liu, H. et al. Results of marine-derived and plant-derived omega-3 polyunsaturated fatty acids on erythrocyte fatty acid composition in sort 2 diabetic sufferers. Lipids Well being Dis. 21, 20 (2022).
Bers, D. M. Cardiac excitation-contraction coupling. Nature 415(6868), 198–205 (2002).
Google Scholar
Li-Beisson, Y. et al. Acyl-lipid metabolism. Arabidopsis Ebook 11, e0161 (2013).
Ng, C. Okay. Y., Carr, Okay., McAinsh, M. R., Powell, B. & Hetherington, A. M. Drought-induced guard cell sign transduction entails sphingosine-1-phosphate. Nature 410(6828), 596-599 (2001).
Google Scholar
Males, S. & Boutté, Y. Sterols in development and improvement of plant membranes. Plant Cell Rep. 37(7), 891–906 (2018).
Al-Muhanna, M. Okay., Anwar, N., Hasnain, M. S. & Nayak, A. Okay. Chapter 1 – Synthesis of tailored polysaccharides: An summary. In Tailor-Made Polysaccharides in Drug Supply (eds Nayak, A. Okay. et al.) 1–27 (Tutorial Press, 2023).
Munnik, T. & Testerink, C. Plant phospholipid signaling: “in a nutshell”. J. Lipid Res. 50(Complement), 260–265 (2009).
Calderón-Preciado, D. et al. Uptake of microcontaminants by crops irrigated with reclaimed water and groundwater below actual area greenhouse circumstances. Environ. Sci. Pollut. Res. 18(4), 1028–1031 (2011).
Wu, J. et al. Advances within the examine of the perform and mechanism of the motion of flavonoids in vegetation below environmental stresses. Planta 257, 108 (2023).

Emily Grace Thompson is a natural health expert and author with over 10 years of experience in nutrition. Passionate about superfoods, she advocates for the benefits of Moringa Magic Supplements, which transformed her own health journey. Emily writes to educate and inspire readers to adopt a healthy lifestyle, highlighting how moringa can boost energy, strengthen immunity, and improve overall well-being. In addition to writing, she conducts holistic health workshops and shares practical tips for achieving a balanced life.
Publicar comentário