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浆细胞骨髓瘤:诊断、治疗与智能纳米载体治疗开发的生化洞见

英文原题:Plasma Cell Myeloma: Biochemical Insights into Diagnosis, Treatment, and Smart Nanocarrier-Based Therapeutic Development.

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Plasma Cell Myeloma: Biochemical Insights into Diagnosis, Treatment, and Smart Nanocarrier-Based Therapeutic Development.

PubMed 2025/12/05(内容时间) Pharmaceutics Q1 · IF 6.9(JCR 2025)

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中文摘要

浆细胞骨髓瘤(PCM)是一种血液恶性肿瘤,其特征为骨髓内浆细胞异常增殖及单克隆免疫球蛋白过量生成,最终造成重要器官永久性损伤。尽管蛋白酶体抑制剂(PI)、免疫调节药物(IMiD)和单克隆抗体(mAb)的发展改善了治疗策略,PCM仍因分子异质性和耐药而无法治愈。本综述讨论PCM诊断和治疗的生化与分子基础,兼顾传统和先进方法。除血清蛋白电泳(SPEP)、免疫固定电泳(IFE)和血清游离轻链(sFLC)检测等经典方法外,也介绍其与质谱(MS)、二代测序(NGS)等高灵敏技术的整合。文章特别关注纳米技术系统,包括脂质体、聚合物纳米颗粒、树枝状大分子和杂化纳米胶囊;这些载体可实现药物控释、靶向递送并减少全身毒性。越来越多证据显示,纳米材料可显著改善抗癌药物的生物分布和药代动力学,并通过双药共包封、pH敏感释放和诊疗一体化等多功能策略增强疗效、克服耐药。

此外,纳米技术与免疫治疗平台的整合,代表PCM精准化和个体化治疗模式的转变。总体而言,本综述认为纳米技术可提高疗效、降低毒性,并为PCM下一代智能个体化治疗开辟新方向。

展开英文摘要原文

Plasma cell myeloma (PCM) is classified as a blood cancer and is characterized by the abnormal proliferation of plasma cells in the bone marrow and the excessive production of monoclonal immunoglobulins, which lead to permanent damage to vital organs. Although treatment strategies have improved with the development of proteasome inhibitors (PIs), immunomodulatory drugs (IMiDs), and monoclonal antibodies (mAbs), PCM remains an incurable disease due to its molecular heterogeneity and the development of drug resistance. In this review, we discuss the biochemical and molecular foundations underlying the diagnosis and treatment of PCM, emphasizing both traditional and advanced approaches.

Classical methods such as serum protein electrophoresis (SPEP), immunofixation electrophoresis (IFE), and serum free light chain (sFLC) determination are highlighted alongside their integration with highly sensitive techniques like mass spectrometry (MS) and next-generation sequencing (NGS). Special attention is given to nanotechnology-based systems, including liposomes, polymeric nanoparticles (NPs), dendrimers, and hybrid nanocapsules, which enable controlled drug release, targeted delivery, and the minimization of systemic toxicity.

Increasingly, nanomaterials are being shown to greatly enhance the biodistribution and pharmacokinetics of anticancer drugs, leading to improved therapeutic effects and escaping resistance mechanisms by employing multifunctional strategies that include dual drug co-encapsulation, pH-sensitive release and theranostic applications.

Furthermore, the integration of nanotechnology with immunotherapy platforms represents a paradigm shift toward precision and personalized medicine for the treatment of PCM.

Overall, this review views nanotechnology as an enabling technology to improve therapeutic effectiveness, minimize toxicity and open new avenues toward next-generation smart and personalized therapeutics for the treatment of PCM.

论文信息

作者
Muñoz LG、Luna SP、Chamorro AF
单位
Research Group of Electrochemistry and Environment (GIEMA), Faculty of Basic Sciences, Universidad Santiago de Cali, Cali 760035, Colombia.
文献类型
综述
期刊
Pharmaceutics2025 Dec 5
原文标识
PubMed 41471085 · DOI 10.3390/pharmaceutics17121570