Olatunji N Salako, Ioannis Sarris, Frank Anayo Orji, Vincent Chukuemaka Eze, Kaliyapillai Vijayakumar, Levent Kenar
Current cyanide antidotes have limitations including delayed onset, methemoglobinemia, or the need for multiple agents. We developed Sodasulphanecobalamin (SSC), a cobalt‑sulfur complex integrating rapid cyanide chelation with sulfur-donor detoxification. SSC was synthesized from hydroxocobalamin and sulfur-based precursors, characterized by HPLC, HR-MS, NMR, IR, and elemental analysis, with the coordination geometry pending X-ray crystallography. In rats, SSC given 1 or 5 min after intravenous KCN (2.5 mg/kg) restored mean arterial pressure (MAP) within 5 ± 1 and 9 ± 2 min, respectively, with 100% survival in both groups (n = 9). At a higher cyanide dose (3.5 mg/kg, ~1.7× LD₅₀), SSC given after 5 min maintained 100% survival (n = 6), whereas hydroxocobalamin resulted in 83% survival. SSC (78% yield, >98% purity) restored MAP significantly faster than hydroxocobalamin (11 ± 2 min, p = 0.032) and standard nitrite-thiosulfate therapy (28 ± 3 min, p = 0.0004). At 3.5 mg/kg, SSC achieved 100% survival vs. 83% for hydroxocobalamin and 67% for standard therapy. Blood cyanide declined 85% within 5 min with corresponding thiocyanate rise, and methemoglobin remained below 3% (p > 0.05 vs. controls). Naive rats showed no toxicity over 28 days. Pharmacokinetics revealed a half-life of 4.2 ± 0.6 h. SSC is a fast-acting, well-tolerated cyanide antidote outperforming current therapies. Further studies are needed for dosing optimization and intramuscular administration.