Toxicokinetic and Genotoxicity Study of NNK in Male Sprague Dawley Rats Following Nose-Only Inhalation Exposure, Intraperitoneal Injection, and Oral Gavage

Author:

Hu Shu-Chieh1,Bryant Matthew S1,Sepehr Estatira1,Kang Hyun-Ki1,Trbojevich Raul1,Lagaud Guy2,Mehta Darshan1,Ding Wei1,Mittelstaedt Roberta A1,Pearce Mason G1,Bishop Michelle E1,Davis Kelly J3,Lewis Sherry M1,Chemerynski Susan2,Yee Steven B2,Coraggio Melis2,Rosenfeldt Hans2,Yeager R Philip2,Howard Paul C1,Tang Yunan1ORCID

Affiliation:

1. National Center for Toxicological Research (NCTR), U.S. Food and Drug Administration (FDA), Jefferson, AR 72079

2. The Center for Tobacco Products (CTP), U.S. Food and Drug Administration, Silver Spring, MD 20993, USA

3. Toxicologic Pathology Associates, National Center for Toxicological Research, Jefferson, AR 72079, USA

Abstract

Abstract The tobacco-specific nitrosamine NNK [4-(methylnitrosamino)-1-(3-pyridyl)-1-butanone] is found in tobacco products and tobacco smoke. NNK is a potent genotoxin and human lung carcinogen; however, there are limited inhalation data for the toxicokinetics (TK) and genotoxicity of NNK in vivo. In the present study, a single dose of 5 × 10−5, 5 × 10−3, 0.1, or 50 mg/kg body weight (BW) of NNK, 75% propylene glycol (vehicle control), or air (sham control) was administered to male Sprague-Dawley (SD) rats (9–10 weeks age) via nose-only inhalation (INH) exposure for 1 h. For comparison, the same doses of NNK were administered to male SD rats via intraperitoneal injection (IP) and oral gavage (PO). Plasma, urine, and tissue specimens were collected at designated time points and analyzed for levels of NNK and its major metabolite 4-(methylnitrosamino)-1-(3-pyridyl)-1-butanol (NNAL) and tissue levels of DNA adduct O6-methylguanine by LC/MS/MS. TK data analysis was performed using a non-linear regression program. For the genotoxicity subgroup, tissues were collected at 3 h post-dosing for comet assay analysis. Overall, the TK data indicated that NNK was rapidly absorbed and metabolized extensively to NNAL after NNK administration via the three routes. The IP route had the greatest systemic exposure to NNK. NNK metabolism to NNAL appeared to be more efficient via INH than IP or PO. NNK induced significant increases in DNA damage in multiple tissues via the three routes. The results of this study provide new information and understanding of the TK and genotoxicity of NNK.

Funder

Food and Drug Administration

FDA

Center for Tobacco Products

Publisher

Oxford University Press (OUP)

Subject

Toxicology

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