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Updated: Jan 23, 2026

Preparation of Binary and Ternary Deep Eutectic Systems
Published on: October 31, 2019
Towards safer deep eutectic solvents: Insights from an in vivo study of reline toxicity under different preparation
Yua Kang1, Seong Min Lee1, Seulgi Kang1
1School of Pharmacy, Sungkyunkwan University, Suwon, Gyeonggi 16419, Republic of Korea.
Abstract:
Deep eutectic solvents (DESs), regarded as green alternatives to volatile organic solvents, are commonly prepared by heating; however, despite the possible formation of byproducts during heating, the toxicological relevance of their preparation conditions remains unresolved. The aim of this study was to disentangle preparation-dependent in vivo toxicity from the intrinsic effects of DESs through mechanistic insights using reline-a widely used DES comprising choline chloride and urea (1:2)-as a model solvent. Two forms of reline, prepared by either heating (reline_H) or freeze-drying (reline_FD), were identical in composition and eutectic structure, except for thermally generated byproducts such as ammonia. At 1.8 g/kg (p.o.), reline_H induced corrosive symptoms and gastric injury to ICR mice, irrespective of sex, whereas reline_FD was well-tolerated. Mechanistic investigations suggested that reline_FD induces a metabolic burden inherent to the reline components. Contrastingly, reline_H caused additional perturbations, including a pronounced redox imbalance, accelerated uptake of reline, and delayed ammonia clearance, consistent with alkaline injury; moreover, it caused mitochondrial destabilization as a downstream consequence of alkaline injury. Collectively, our findings suggest that reline toxicity arises from alkaline stress caused by thermally generated byproducts, whereas freeze-drying mitigates such liabilities. With the increasing adoption of DESs in bio-relevant settings, these findings indicate that the safety of a DES not only depend on its composition, but possibly also on its preparation history. This study highlights that the preparation method of a DES as a critical yet often-overlooked determinant of DES safety, which is especially relevant when evaluating DESs for future applications.
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