The emergence of nitrosamine drug-substance-related impurities (NDSRIs) has presented a complex and evolving challenge to pharmaceutical manufacturing and regulatory oversight. Unlike traditional nitrosamines, NDSRIs may form through multiple pathways involving active pharmaceutical ingredients (APIs), synthetic intermediates, excipients, packaging components, and degradation processes. This review integrates the current understanding of NDSRI formation with implications for pharmaceutical process development, impurity control, and lifecycle risk mitigation. Key structural alerts, including secondary and tertiary amines, piperazines, and hydrazines, are discussed in relation to nitrosating agents, oxidative stressors, and solid-state properties. Special attention is given to precursor-derived and degradation-induced nitrosation, polymorphic variability, and moisture sensitivity, all of which influence NDSRI formation during both the synthesis and formulation stages. Case examples in high-risk therapeutic classes (e.g., antihypertensive drugs, antimicrobial agents, and antidiabetic agents) illustrate diverse routes of NDSRI formation and control opportunities. Mitigation strategies are outlined, including synthetic route design, excipient selection and precursor control, crystallization optimization, and storage conditions, all framed within a tiered, life-cycle-based risk management model aligned with ICH Q9(R1), ICH Q10, and the Carcinogenic Potency Categorization Approach (CPCA). The role of in silico tools, including structure–activity relationships (SAR), quantitative SAR (QSAR), and machine learning (ML), is emphasized in supporting nitrosation risk prediction and acceptable intake (AI) estimation.
Wichitnithad et al. (Wed,) studied this question.