Department of Chemistry and Polymer Science, University of Stellenbosch, Matieland, 7600, Stellenbosch, Western Cape, South Africa.
Department of Pharmacotherapy and Pharmaceutics, Université libre de Bruxelles (ULB), Boulevard du Triomphe, Accès 2, 1050 Ixelles, Belgium.
Org Biomol Chem. 2020 Oct 21;18(40):8147-8160. doi: 10.1039/d0ob01586e.
The fungal metabolite sphaeropsidin A (SphA) has been recognised for its promising cytotoxicity, particularly towards apoptosis- and multidrug-resistant cancers. Owing to its intriguing activity, the development of SphA as a potential anticancer agent has been pursued. However, this endeavour is compromised since SphA exhibits poor physicochemical stability under physiological conditions. Herein, SphA's instability in biological media was explored utilizing LC-MS. Notably, the degradation tendency was found to be markedly enhanced in the presence of amino acids in the cell medium utilized. Furthermore, the study investigated the presence of degradation adducts, including the identification, isolation and structural elucidation of a major degradation metabolite, (4R)-4,4',4'-trimethyl-3'-oxo-4-vinyl-4',5',6',7'-tetrahydro-3'H-spiro[cyclohexane-1,1'-isobenzofuran]-2-ene-2-carboxylic acid. Considering the reduced cytotoxic potency of aged SphA solutions, as well as that of the isolated degradation metabolite, the reported antiproliferative activity has been attributed primarily to the parent compound (SphA) and not its degradation species. The fact that SphA continues to exhibit remarkable bioactivity, despite being susceptible to degradation, motivates future research efforts to address the challenges associated with this instability impediment.
真菌代谢产物球孢菌素 A(SphA)已因其有前途的细胞毒性而受到关注,特别是对细胞凋亡和多药耐药性癌症。由于其引人入胜的活性,人们一直在研究 SphA 作为潜在抗癌药物的开发。然而,由于 SphA 在生理条件下表现出较差的物理化学稳定性,因此这一努力受到了阻碍。本文利用 LC-MS 研究了 SphA 在生物介质中的不稳定性。值得注意的是,在细胞培养基中存在氨基酸的情况下,发现降解趋势明显增强。此外,该研究还研究了降解加合物的存在,包括主要降解代谢物(4R)-4,4',4'-trimethyl-3'-oxo-4-vinyl-4',5',6',7'-tetrahydro-3'H-spiro[cyclohexane-1,1'-isobenzofuran]-2-ene-2-carboxylic acid 的鉴定、分离和结构阐明。考虑到老化 SphA 溶液以及分离的降解代谢物的细胞毒性降低,报道的增殖抑制活性主要归因于母体化合物(SphA)而不是其降解产物。尽管 SphA 容易降解,但它仍继续表现出显著的生物活性,这促使未来的研究努力解决与这种不稳定性相关的挑战。