Pharmaceutical Analysis and Medicinal Chemistry Department, Faculty of Pharmacy, Universitas Padjadjaran, Bandung 45363, Indonesia.
Drug Development Study Center, Faculty of Pharmacy, Universitas Padjadjaran, Bandung 45363, Indonesia.
Molecules. 2024 Aug 26;29(17):4043. doi: 10.3390/molecules29174043.
Molecularly Imprinted Microspheres (MIMs) or Microsphere Molecularly Imprinted Polymers represent an innovative design for the selective extraction of active compounds from natural products, showcasing effectiveness and cost-efficiency. MIMs, crosslinked polymers with specific binding sites for template molecules, overcome irregularities observed in traditional Molecularly Imprinted Polymers (MIPs). Their adaptability to the shape and size of target molecules allows for the capture of compounds from complex mixtures. This review article delves into exploring the potential practical applications of MIMs, particularly in the extraction of active compounds from natural products. Additionally, it provides insights into the broader development of MIM technology for the purification of active compounds. The synthesis of MIMs encompasses various methods, including precipitation polymerization, suspension polymerization, Pickering emulsion polymerization, and Controlled/Living Radical Precipitation Polymerization. These methods enable the formation of MIPs with controlled particle sizes suitable for diverse analytical applications. Control over the template-to-monomer ratio, solvent type, reaction temperature, and polymerization time is crucial to ensure the successful synthesis of MIPs effective in isolating active compounds from natural products. MIMs have been utilized to isolate various active compounds from natural products, such as aristolochic acids from and flavonoids from species, among others. Based on the review, suspension polymerization deposition, which is one of the techniques used in creating MIPs, can be classified under the MIM method. This is due to its ability to produce polymers that are more homogeneous and exhibit better selectivity compared to traditional MIP techniques. Additionally, this method can achieve recovery rates ranging from 94.91% to 113.53% and purities between 86.3% and 122%. The suspension polymerization process is relatively straightforward, allowing for the effective control of viscosity and temperature. Moreover, it is cost-effective as it utilizes water as the solvent.
分子印迹微球(MIMs)或微球分子印迹聚合物代表了一种从天然产物中选择性提取活性化合物的创新设计,具有高效性和成本效益。MIMs 是具有特定模板分子结合位点的交联聚合物,克服了传统分子印迹聚合物(MIPs)中观察到的不规则性。它们能够适应目标分子的形状和大小,从而能够从复杂混合物中捕获化合物。本文深入探讨了 MIMs 的潜在实际应用,特别是从天然产物中提取活性化合物。此外,还介绍了 MIM 技术在活性化合物纯化方面的更广泛发展。MIMs 的合成包括各种方法,如沉淀聚合、悬浮聚合、Pickering 乳液聚合和可控/活性自由基沉淀聚合。这些方法能够形成具有适合各种分析应用的受控粒径的 MIPs。控制模板-单体比、溶剂类型、反应温度和聚合时间对于确保成功合成从天然产物中分离活性化合物的有效 MIPs 至关重要。MIMs 已被用于从天然产物中分离各种活性化合物,例如从 中分离马兜铃酸和从 中分离类黄酮等。基于综述,悬浮聚合沉积,是用于创建 MIPs 的技术之一,可以归类为 MIM 方法。这是因为它能够产生比传统 MIP 技术更均匀且具有更好选择性的聚合物。此外,该方法的回收率范围为 94.91%至 113.53%,纯度在 86.3%至 122%之间。悬浮聚合过程相对简单,可以有效地控制粘度和温度。此外,它还具有成本效益,因为它使用水作为溶剂。