药物特性优化:新型药用盐和鲁米泛林共晶盐的设计、合成和表征。

IF 4.5 2区 医学 Q2 MEDICINE, RESEARCH & EXPERIMENTAL Molecular Pharmaceutics Pub Date : 2025-02-03 Epub Date: 2025-01-13 DOI:10.1021/acs.molpharmaceut.4c01244
Bolaji C Dayo Owoyemi, Matthias Zeller, Brenda Pereira da Silva, Amos O Akinyemi, Romulo A Ando, Gabriel L Barros de Araujo, Stephen R Byrn
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引用次数: 0

摘要

氨苯曲明(LMF)是一种低溶解度抗疟疾药物,可治疗急性、无并发症的疟疾。它对疟原虫的红细胞阶段发挥药理作用,阻止疟疾病原体产生核酸和蛋白质,从而消灭疟原虫。通过形成药物共晶或盐来修饰药物的结构提供了优化其物理化学性质的途径。在这项工作中,我们报告了四种新型LMF盐和共晶盐形式的设计/合成和固态表征;1 llf - adp盐,单斜空间群P21/n;LMF-FUM共晶盐,单斜空间群P21/c;llf - tar溶剂盐,单斜空间群P21/n;和一种LMF-SUC盐,三斜,空间基P1′(ADP,己二酸的离子);富马酸单阴离子;TAR,酒石酸离子;SUC,琥珀酸离子)。这些盐可以通过溶液或机械化学共结晶法获得。多组分体系的稳定性来自氢和部分离子键相互作用(N- h··O, O- h··O, N+- h··O-和O- h +··O-),这些相互作用来自LMF的二丁基铵(N+- h)位点和醇羟基(- oh)位点,指向共聚阴离子的羧酸(- c (O-) = O)官能团。SCXRD表明,llf - adp、llf - tar和llf - suc将所有羧酸质子(H+)完全转移到LMF氮上,而llf - fum只转移了一个质子(留下富马酸氢单阴离子)。以水杨酸和乙酰水杨酸为共形体,制得共晶固体。采用粉末x射线衍射(XRD)和热分析技术(DSC和TGA)进行固态表征,支持并证实了单晶XRD得到的结构。与无定形样品和其他两种盐相比,llf - adp和llf - fum在标准条件下(40±2°C, 75±5% RH, 3个月)具有优越的稳定性。通过DSC/TGA测试,LMF-SUC表现出较差的热稳定性,经过3个月的稳定性测试,LMF-TAR的粉末XRD谱图发生了较大变化。最后,计算出的共晶盐的平衡溶解度表明,与LMF的溶解度相比,共晶盐的溶解度增加了两倍以上。
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Drug Property Optimization: Design, Synthesis, and Characterization of Novel Pharmaceutical Salts and Cocrystal-Salt of Lumefantrine.

Lumefantrine (LMF) is a low-solubility antimalarial drug that cures acute, uncomplicated malaria. It exerts its pharmacological effects against erythrocytic stages of Plasmodium spp. and prevents malaria pathogens from producing nucleic acid and protein, thereby eliminating the parasites. Modifying the structure of a drug through the formation of a pharmaceutical cocrystal or salt presents an avenue through which its physicochemical properties can be optimized. In this work, we report the design/synthesis and solid-state characterization of four new salts and cocrystal-salt forms of LMF; an LMF-ADP salt, monoclinic space group P21/n; an LMF-FUM cocrystal-salt, monoclinic space group P21/c; an LMF-TAR solvate salt, monoclinic space group P21/n; and an LMF-SUC salt, triclinic, space group P1̅ (ADP, dianion of adipic acid; FUM, monoanion of fumaric acid; TAR, dianion of tartaric acid; SUC, dianion of succinic acid). These salts can be obtained by solution as well as by mechanochemical cocrystallization methods. The multicomponent systems gain their stability from hydrogen and partial ionic bonding interactions (N-H···O, O-H···O, N+-H···O-, and O-H+···O-) originating from both the dibutyl ammonium (N+-H) site and the alcohol hydroxyl (-OH) site of LMF toward the carboxylate (-C(O-)═O) functional groups of the coformer anions. SCXRD indicates for LMF-ADP, LMF-TAR, and LMF-SUC complete transfer of all carboxylic acid protons (H+) toward the LMF nitrogen, while for LMF-FUM, one of the protons is transferred (leaving a hydrofumarate monoanion). Using salicylic and acetylsalicylic acids as coformers yielded coamorphous solids. Solid-state characterization using powder X-ray diffraction (XRD) and thermal techniques (DSC and TGA) support and confirm the structures obtained from single-crystal XRD. LMF-ADP and LMF-FUM present superior stability under standard conditions (40 ± 2 °C, 75 ± 5% RH, and 3 months) compared to the amorphous samples and the other two salts. LMF-SUC showed poor thermal stability by DSC/TGA, and powder XRD patterns for LMF-TAR showed substantial change after the 3-month stability test. Finally, the calculated equilibrium solubilities for the cocrystal salts indicate an increase of more than twofold compared to LMF's solubility.

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来源期刊
Molecular Pharmaceutics
Molecular Pharmaceutics 医学-药学
CiteScore
8.00
自引率
6.10%
发文量
391
审稿时长
2 months
期刊介绍: Molecular Pharmaceutics publishes the results of original research that contributes significantly to the molecular mechanistic understanding of drug delivery and drug delivery systems. The journal encourages contributions describing research at the interface of drug discovery and drug development. Scientific areas within the scope of the journal include physical and pharmaceutical chemistry, biochemistry and biophysics, molecular and cellular biology, and polymer and materials science as they relate to drug and drug delivery system efficacy. Mechanistic Drug Delivery and Drug Targeting research on modulating activity and efficacy of a drug or drug product is within the scope of Molecular Pharmaceutics. Theoretical and experimental peer-reviewed research articles, communications, reviews, and perspectives are welcomed.
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