Morales-Vicente Fidel E, Espinosa Luis A, Díaz-Pico Erbio, Martell Ernesto M, Gonzalez Melaine, Ojeda Gerardo, González Luis Javier, Rodríguez Armando, Garay Hilda E, Franco Octavio L, Rosenau Frank, Otero-González Anselmo J, Ständker Ludger
Synthetic Peptide Group, Physics and Chemistry Department, Center for Genetic Engineering and Biotechnology, P.O. Box 6162, La Habana 10600, Cuba.
Mass Spectrometry Laboratory, Systems Biology Department, Center for Genetic Engineering and Biotechnology, P.O. Box 6162, La Habana 10600, Cuba.
Antibiotics (Basel). 2025 Feb 13;14(2):194. doi: 10.3390/antibiotics14020194.
: Cm-p5 and its cyclic monomeric and dimeric analogues are known for their antifungal, antibacterial, antiviral, and antibiofilm activities. Previously, our cyclization method produced a mixture of peptides that were difficult to separate, which was then improved by a selective synthesis of the parallel dimer and its differentiation from the antiparallel by comparison of the retention times in RP-HPLC. : Here, we developed a more reliable identification method for the Cm-p5 dimer identification, which included chymotrypsin proteolytic digestion and sequencing of the different fragments by ESI-MSMS. We also improved our cyclization methods to specifically produce higher amounts of the desired cyclic variant, either cyclic monomer or dimer. : We show that liquid phase oxidation with 20% DMSO or iodine oxidation yields only the cyclic analogue. However, the on-resin oxidation with iodine showed greater efficacy and efficiency. Additionally, liquid phase cyclization yields the antiparallel dimer in high EtOH or peptide concentration, indicating a kinetic control. On the other hand, the parallel dimer was preferentially produced in 5% of TFE and low peptide concentration without the formation of the cyclic analogue indicating a thermodynamic control. : In conclusion, we report that chymotryptic digestion combined with ESI-MS and MS/MS allows an unambiguous differentiation of Cm-p5 dimers. Here, we develop more selective and efficient methods for the synthesis of cyclic and dimeric analogues of Cm-p5.
Cm-p5及其环状单体和二聚体类似物因其抗真菌、抗菌、抗病毒和抗生物膜活性而闻名。此前,我们的环化方法产生了难以分离的肽混合物,随后通过选择性合成平行二聚体并通过比较RP-HPLC中的保留时间将其与反平行二聚体区分开来进行了改进。在此,我们开发了一种更可靠的鉴定方法来鉴定Cm-p5二聚体,该方法包括胰凝乳蛋白酶蛋白水解消化和通过ESI-MSMS对不同片段进行测序。我们还改进了环化方法,以专门生产更高量的所需环状变体,即环状单体或二聚体。我们表明,用20% DMSO进行液相氧化或碘氧化仅产生环状类似物。然而,用碘进行树脂上氧化显示出更高的功效和效率。此外,液相环化在高乙醇或肽浓度下产生反平行二聚体,表明存在动力学控制。另一方面,平行二聚体优先在5%的TFE和低肽浓度下产生,且不形成环状类似物,表明存在热力学控制。总之,我们报告胰凝乳蛋白酶消化结合ESI-MS和MS/MS能够明确区分Cm-p5二聚体。在此,我们开发了更具选择性和高效性的方法来合成Cm-p5的环状和二聚体类似物。