Bacterial Endotoxin Testing-Fast Endotoxin Masking Kinetics in the Presence of Lauryldimethylamine Oxide.
LAL
LDAO
LER
LPS
endotoxin
lauryldimethylamine oxide
limulus amoebocyte lysate
low endotoxin recovery
masking
Journal
Microorganisms
ISSN: 2076-2607
Titre abrégé: Microorganisms
Pays: Switzerland
ID NLM: 101625893
Informations de publication
Date de publication:
04 11 2020
04 11 2020
Historique:
received:
09
10
2020
revised:
30
10
2020
accepted:
30
10
2020
entrez:
7
11
2020
pubmed:
8
11
2020
medline:
8
11
2020
Statut:
epublish
Résumé
For release of parenteral drug products, bacterial endotoxin testing is one of a panel of necessary tests. In order to ensure the validity of such tests, various controls are performed, including demonstration of compendial method suitability or method qualification. In addition to compendial suitability testing, quality control (QC) sample hold-time studies are requested by authorities like the Food and Drug Administration (FDA) as described in "Guidance for Industry: Pyrogen and Endotoxins Testing." It is requested to be determine whether the ability to detect endotoxins can be affected by storage and handling of the sample to be tested. To accomplish these studies, endotoxin is introduced or spiked into the undiluted product and held for a certain period of time in process-representative containers. This time period reflects procedural maximum QC sample hold time from sampling until analysis. Inadequate detection of endotoxin can be caused by adsorption of endotoxin to container surfaces or molecular masking effects, in which the binding sites on the endotoxin molecules are prevented from triggering the enzymatic cascade necessary in the assay, are obscured. The endotoxin may form macromolecular structures, such as sheets or blebs, or the binding sites may otherwise be rendered unavailable due to the sample matrix composition. In either case, the endotoxin assay may yield falsely low results if and when masking occurs. In this work, the QC sample hold times of different in-process controls within the production process of a biopharmaceutical product were analyzed. One out of eight different samples showed a strong masking of endotoxin. Analysis of the sample composition revealed that either kifunensine, mycophenolic acid (MPA), or lauryl-N, N-dimethylamine oxide (LDAO) was responsible for masking. Further analysis clearly identified LDAO as the root cause for masking. A novel one-step mechanism for LDAO-induced endotoxin masking is proposed. The principle is similar to an already-proposed two-step mechanism for endotoxin masking, but the LDAO case combines these two steps: the disturbance of the salt bridges and hydrophobic interactions with LPS in one molecule. These molecular interactions occur quickly when both endotoxin and LDAO are present in the same matrix. Thus, depending on the masking agents, low endotoxin recovery (LER) can occur regardless of the QC sample hold duration.
Identifiants
pubmed: 33158205
pii: microorganisms8111728
doi: 10.3390/microorganisms8111728
pmc: PMC7694283
pii:
doi:
Types de publication
Journal Article
Langues
eng
Références
Microorganisms. 2020 Mar 16;8(3):
pubmed: 32188126
PDA J Pharm Sci Technol. 2020 Jul-Aug;74(4):394-407
pubmed: 32179709
Biologicals. 2018 May;53:1-9
pubmed: 29685804
Thromb Diath Haemorrh. 1968 Mar 31;19(1):186-97
pubmed: 5690028
Mol Immunol. 2004 Feb;40(12):845-59
pubmed: 14698223
Antimicrob Agents Chemother. 2000 Sep;44(9):2514-7
pubmed: 10952604
J Parenter Sci Technol. 1990 Jan-Feb;44(1):13-5
pubmed: 2313485
Lab Anim Sci. 1973 Oct;23(5):677-81
pubmed: 4356338
Nat Rev Immunol. 2003 Feb;3(2):169-76
pubmed: 12563300
Dev Biol Stand. 1999;101:131-9
pubmed: 10566786
Biologicals. 2016 Sep;44(5):417-22
pubmed: 27464990
ALTEX. 2013;30(2):169-208
pubmed: 23665806
MAbs. 2017 Aug/Sep;9(6):885-888
pubmed: 28678617
Bull Johns Hopkins Hosp. 1964 Sep;115:265-74
pubmed: 14209047
Sci Rep. 2017 Mar 20;7:44750
pubmed: 28317862
PDA J Pharm Sci Technol. 2017 Nov-Dec;71(6):478-487
pubmed: 28928294
Chem Immunol. 2000;74:5-24
pubmed: 10608079
FASEB J. 1994 Feb;8(2):217-25
pubmed: 8119492
Carbohydr Res. 2003 Nov 14;338(23):2431-47
pubmed: 14670707
J Colloid Interface Sci. 2019 Sep 15;552:540-553
pubmed: 31154247
Int J Mol Sci. 2019 Feb 15;20(4):
pubmed: 30781342
Subcell Biochem. 2010;53:187-208
pubmed: 20593268
J Clin Microbiol. 1991 Nov;29(11):2477-83
pubmed: 1774252
PDA J Pharm Sci Technol. 2017 Sep-Oct;71(5):405-412
pubmed: 28733334
Altern Lab Anim. 2016 Jul;44(3):239-53
pubmed: 27494624
Protein Expr Purif. 2009 Mar;64(1):76-81
pubmed: 18996203