Riboflavin 5′-monophosphate Sodium Salt
<strong>Riboflavin 5′-monophosphate Sodium Salt</strong>_x000D_ <strong>Catalog number:</strong> B2017628_x000D_ <strong>Lot number:</strong> Batch Dependent_x000D_ <strong>Expiration Date:</strong> Batch dependent_x000D_ <strong>Amount:</strong> 20 g_x000D_ <strong>Molecular Weight or Concentration:</strong> 478.33 g/mol_x000D_ <strong>Supplied as:</strong> POWDER_x000D_ <strong>Applications:</strong> a molecular tool for various biochemical applications_x000D_ <strong>Storage:</strong> 2-8°C_x000D_ <strong>Keywords:</strong> Riboflavini natrii phosphas, Riboflavin Sodium phosphate_x000D_ <strong>Grade:</strong> Biotechnology grade. All products are highly pure. All solutions are made with Type I ultrapure water (resistivity >18 MΩ-cm) and are filtered through 0.22 um._x000D_ _x000D_ <strong>References:</strong>_x000D_ 1: Hastings JW, Nealson KH. Bacterial bioluminescence Annu Rev Microbiol. 1977;31:549-95._x000D_ 2: Bairi P, Chakraborty P, Mondal S, Roy B, Nandi AK. A thixotropic supramolecular hydrogel of adenine and riboflavin-5'-phosphate sodium salt showing enhanced fluorescence properties Soft Matter. 2014 Jul 28;10(28):5114-20._x000D_ 3: Masuoka N. Stilbene compounds are specific inhibitors of the superoxide anion generation catalyzed by xanthine oxidase Food Chem X. 2021 Oct 28;12:100146._x000D_ 4: Orita A, Verde MG, Sakai M, Meng YS. A biomimetic redox flow battery based on flavin mononucleotide Nat Commun. 2016 Oct 21;7:13230._x000D_ 5: Koch K, Hromic A, Sorokina M, Strandback E, Reisinger M, Gruber K, Macheroux P. Structure, biochemical and kinetic properties of recombinant Pst2p from Saccharomyces cerevisiae, a FMN-dependent NAD(P)H:quinone oxidoreductase Biochim Biophys Acta Proteins Proteom. 2017 Aug;1865(8):1046-1056._x000D_ 6: Lemeshevskaia OI, Kamaeva EA, Lukashenko MV, Gavrilova NY, Soprun LA. [The successful use of Cytoflavin in the patient with postaveny syndrome] Zh Nevrol Psikhiatr Im S S Korsakova. 2023;123(7):108-111._x000D_ 7: Yang T, Chen H, Qiu Z, Yu R, Luo S, Li W, Jiao K. Direct Electrochemical Vibrio DNA Sensing Adopting Highly Stable Graphene-Flavin Mononucleotide Aqueous Dispersion Modified Interface ACS Appl Mater Interfaces. 2018 Feb 7;10(5):4540-4547._x000D_ 8: Theismann EM, Keppler JK, Knipp JR, Fangmann D, Appel E, Gorb SN, Waetzig GH, Schreiber S, Laudes M, Schwarz K. Adjustment of triple shellac coating for precise release of bioactive substances with different physico-chemical properties in the ileocolonic region Int J Pharm. 2019 Jun 10;564:472-484._x000D_ 9: Senyigit ZA, Vetter A, Guneri T, Bernkop-Schnürch A. Gastroretentive particles formulated with thiomers: development and in vitro evaluation J Drug Target. 2010 Jun;18(5):362-72._x000D_ <a href="https://pubmed.ncbi.nlm.nih.gov/25915172">10: Ayán-Varela M, Paredes JI, Guardia L, Villar-Rodil S, Munuera JM, Díaz-González M, Fernández-Sánchez C, Martínez-Alonso A, Tascón JM. Achieving extremely concentrated aqueous dispersions of graphene flakes and catalytically efficient graphene-metal nanoparticle hybrids with flavin mononucleotide as a high-performance stabilizer ACS Appl Mater Interfaces. 2015 May 20;7(19):10293-307. </a>_x000D_ _x000D_ <strong>Products Related to Riboflavin 5′-monophosphate Sodium Salt can be found at</strong> <a href="https://moleculardepot.com/product-category/Chemicals/"> Chemicals</a>
Product Specifications
Short Description
Catalog Number: B2017628 (20 g)
Weight
2.6
Length
3.3
Width
1.2
Height
1.2
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