1,867
Views
0
CrossRef citations to date
0
Altmetric
Research Article

The development and application of a novel reagent for fixing red blood cells with glutaraldehyde and paraformaldehyde

, , , , , , , , , , , & ORCID Icon show all
Article: 2204612 | Received 01 Nov 2022, Accepted 15 Apr 2023, Published online: 28 Apr 2023

References

  • Ebrahimi Fana S, Paknejad M, Aminian M. Paper based analytical devices for blood grouping: a comprehensive review. Biomed Microdevices. 2021;23(3):34. doi:10.1007/s10544-021-00569-w
  • Zhang H, Liu R, Li Q, et al. Flipped quick-response code enables reliable blood grouping. ACS Nano. 2021;15(4):7649–7658. doi:10.1021/acsnano.1c01215
  • Akinyemi TO, Fasola FA, Olateru-Olagbegi OA. The evolving application of DNA-based genotyping of red blood cells in blood grouping: a narrative review. West Afr J Med. 2021;38(3):269–273.
  • Ekman S, Flower R, Barnard RT, et al. Computational modeling - an approach to the development of blood grouping reagents. Expert Rev Hematol. 2021;14(4):329–334. doi:10.1080/17474086.2021.1908119
  • Miller FP, Vandome AF, Mcbrewster J, et al. British Pharmacopoeia Commission. Third Addendum to the British Pharmacopoeia, 1932. Majesty’S Stationery Office, 1977.
  • Andıç N. Practical solutions for problems in blood grouping and crossmatching. Turk J Haematol. 2022;39(1):55–60. doi:10.4274/tjh.galenos.2021.2021.0544
  • Chenna D, Shastry S, Kanukula VR, et al. Validation of lateral flow assay for blood grouping on hemolyzed sample. Asian J Transfus Sci. 2020;14(1):98. doi:10.4103/ajts.AJTS_28_17
  • Stoll C, Stadnick H, Kollas O, et al. Liposomes alter thermal phase behavior and composition of red blood cell membranes. Biochim Biophys Acta. 2011;1808(1):474–481. doi:10.1016/j.bbamem.2010.09.012
  • Eades B. Freezing and recovering rare red blood cells using glycerol. Immunohematology. 2020;36(3):85–88.
  • Emrich T, Stracke JO, Guo X, et al. Increasing robustness, reliability and storage stability of critical reagents by freeze-drying. Bioanalysis. 2021;13(10):829–840. doi:10.4155/bio-2020-0299
  • Alves D, Sparrow R, Garnier G. Rapidly freeze-dried human red blood cells for pre-transfusion alloantibody testing reagents. J Biomed Mater Res B Appl Biomater. 2021;109(11):1689–1697. doi:10.1002/jbm.b.34825
  • Yoshida T, Prudent M, D’alessandro A. Red blood cell storage lesion: causes and potential clinical consequences. Blood Transfus. 2019;17(1):27–52. doi:10.2450/2019.0217-18
  • Turner TR, Lautner L, Hill A, et al. Evaluating the quality of red blood cell concentrates irradiated before or after cryopreservation. Transfusion. 2020;60(1):26–29. doi:10.1111/trf.15589
  • Downing RG, Strong PL, Hovanec BM, et al. Considerations in the determination of boron at low concentrations. Biol Trace Elem Res. 1998;66(1-3):3–21. doi:10.1007/BF02783122
  • Wolkers WF, Oldenhof H. Principles underlying cryopreservation and freeze-drying of cells and tissues. Methods Mol Biol. 2021;2180:3–25. doi:10.1007/978-1-0716-0783-1_1
  • Sengupta P, Mahalakshmi V, Stebin JJ, et al. Nitric oxide donors offer protection to RBC from storage lesion. Transfus Clin Biol. 2020;27(4):229–236. doi:10.1016/j.tracli.2020.07.002
  • Feng Y, Ping Tan C, Zhou C, et al. Effect of freeze-thaw cycles pretreatment on the vacuum freeze-drying process and physicochemical properties of the dried garlic slices. Food Chem. 2020;324:126883. doi:10.1016/j.foodchem.2020.126883
  • Schmid P, Huvard MJ, Lee-Stroka AH, et al. Red blood cell preservation by droplet freezing with polyvinylpyrrolidone or sucrose-dextrose and by bulk freezing with glycerol. Transfusion. 2011;51(12):2703–2708. doi:10.1111/j.1537-2995.2011.03258.x
  • García-Roa M, Del Carmen Vicente-Ayuso M, Bobes AM, et al. Red blood cell storage time and transfusion: current practice, concerns and future perspectives. Blood Transfus. 2017;15(3):222–231. doi:10.2450/2017.0345-16
  • Adamiak K, Sionkowska A. Current methods of collagen cross-linking: review. Int J Biol Macromol. 2020;161:550–560. doi:10.1016/j.ijbiomac.2020.06.075
  • Neufang A, Duenschede F, Espinola-Klein C, et al. Contemporary results with the biosynthetic glutaraldehyde denatured ovine collagen graft (Omniflow II) in femoropopliteal position. J Vasc Surg. 2020;71(5):1630–1643. doi:10.1016/j.jvs.2019.08.234
  • Khapre MA, Pandey S, Jugade RM. Glutaraldehyde-cross-linked chitosan–alginate composite for organic dyes removal from aqueous solutions. Int J Biol Macromol. 2021;190:862–875. doi:10.1016/j.ijbiomac.2021.09.026
  • Anastassacos FM, Zhao Z, Zeng Y, et al. Glutaraldehyde cross-linking of oligolysines coating DNA origami greatly reduces susceptibility to nuclease degradation. J Am Chem Soc. 2020;142(7):3311–3315. doi:10.1021/jacs.9b11698
  • Rodig SJ. Fixing attached cells for staining. Cold Spring Harb Protoc. 2020;2020(8):099689. doi:10.1101/pdb.prot099689
  • Qin Y, Jiang W, Li A, et al. The combination of paraformaldehyde and glutaraldehyde Is a potential fixative for mitochondria. Biomolecules. 2021;11(5):711. doi:10.3390/biom11050711
  • Tanaka KAK, Suzuki KGN, Shirai YM, et al. Membrane molecules mobile even after chemical fixation. Nat Methods. 2010;7:865–866.
  • Thavarajah R, Mudimbaimannar V, Elizabeth J, et al. Chemical and physical basics of routine formaldehyde fixation. J Oral Maxillofac Pathol. 2012;16:400–405.
  • Kiernan JA. Formaldehyde, formalin, paraformaldehyde and glutaraldehyde: what they are and what they do. Microsc Today. 2000;8:8–13.
  • Mena SE, de Beer MP, McCormick J, et al. Variable-height channels for microparticle characterization and display. Lab Chip. 2020;20(14):2510–2519. doi:10.1039/d0lc00320d
  • Immerman KL, Melaragno AJ, Ouellet RP, et al. Morphology of glutaraldehyde-fixed preserved red blood cells and 24-hr post-transfusion survival. Cryobiology. 1983;20(1):30–35. doi:10.1016/0011-2240(83)90056-1
  • Yu Y, Sun X, Guan X, et al. Effects of hydroformylation treatment on the storage time and blood group antigen expressions of reagent red blood cells. Transfus Apher Sci. 2014;50(3):462–466. doi:10.1016/j.transci.2014.02.019