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The cleanliness of non-dedicated equipment should be verified before its subsequent release for use in the manufacture of intermediates and active pharmaceutical ingredient (APIs), at product change over to prevent cross-contamination. Cleaning procedures should contain sufficient details to enable operators to clean each type of equipment in a reproducible and effective manner, and these procedures should be validated according to the U.S. Food and Drug Administration (FDA) requirements1. Numerous warning letters due to inadequate cleaning2,3,4, failure to validate the cleaning verification method, and failure to follow cleaning procedures5 have been issued by the FDA. 21 CFR §211.67 outlines the requirements needed for successful cleaning verification.
It is the standard in industry that the validation of the analytical methods for cleaning verification is performed on stainless steel coupons with the same surface/finish as the manufacturing equipment. Stainless steel coupons (e.g., 50 cm2) are used to represent equipment surfaces for cleaning verification experiments in the laboratory. During the development and validation of these analytical methods, the sample of interest (i.e., the residues that should be recovered from the surface of the equipment) is spiked at the target residue onto the stainless coupon determined by the maximum allowable carry-over (MACO) limit. This level is determined based on acceptable exposure limit which is defined as the limit at which a patient can get exposed with no adverse health effects (no-observed-adverse-effect-level, NOAEL).
The analyst or manufacturing operator conducting the swabbing must follow a structured procedure to ensure that recoveries are reproducible regardless of who performs the swabbing. The procedure should explicitly detail the swab type, number of swabs used, the diluent, the amount of solvent used, the exact sweeping pattern, the number of strokes applied to the sampling surface, the amount of time spent swabbing/extracting the samples, the method of detection (ultra-violet, fluorescence, mass spectrometry, total organic carbon, etc.), the extraction technique of the material from the swab head, etc.
Besides all the above-mentioned factors that affect sample recovery, the surface of the coupon, and thus, the surface of the equipment also play a role. The surface of the coupon may be modified due to the deposition of a thin film of material on the surface or due to change in the oxidation state of one or more of the elements in stainless steel (e.g., Fe, Cr, and Ni)6,7,8. The regeneration of the surface of the stainless steel coupons back to its original state is vital for the success of the quantitative swapping process. Studies, in which the stainless steel coupons were not properly cleaned, showed variability in recovery including analyst to another, different drugs, or various spike levels9,10,11. The standard deviation in recovery of ten replicates on one coupon can be up to 14% and 26% on five coupons9. It is important to note that the relative standard deviation (Srel) values increased with increasing number of replicates or with increasing the number of coupons used (i.e., five coupons instead of spiking five times on the same coupon)11. In such cases, the variability cannot be interpreted as random fluctuation. Nonetheless, their results can be explained by our finding that the cleanliness of the surface of the coupon will affect the recovery. The results described in this paper illustrate a significant increase in recovery results and decrease in variability after properly cleaning the surface of the stainless steel coupons.
Clean-in-place (CIP) is an automated way of cleaning the surface of equipment that involves a minimal or no disassembling of the equipment. During the CIP cleaning process, a defined procedure of consecutive wash with a base followed by an acid is executed to remove organic and inorganic residues. Surfactants, chelating compounds, or complexing agents are usually added to the CIP solutions to enhance the efficiency of cleaning any product from the surface of the equipment. The efficiency of cleaning depends on several parameters including the choice and concentration of the CIP solutions (i.e., type and composition of base, acid, and surfactant), the cleaning time, temperature (typically 60 - 80 °C), contamination type, and the presence of hard to clean parts12. Based on the type of drug product, CIP solutions 100 and 200 have been chosen to use for cleaning the stainless steel coupons used for cleaning verification, since it simulates the CIP process used for cleaning the manufacturing equipment.
This study reports the influence of different factors affecting the recovery of pharmaceutical residues from the surface of stainless steel coupons and recommends the best practices for analytical cleaning method development for small molecules, therapeutic proteins, and antibodies. The lack of a well-defined procedure that consistently cleaned coupon surface was identified as the major contributor to low and variable recoveries. High and reproducible recovery was obtained when the surface of the coupon was cleaned properly13.