A Review on Nanocarrier-Based Strategies for Sunitinib Delivery: Advances in Pharmacokinetic Enhancement and Targeted Theranostics

IF 5.1 4区 医学 Q2 PHARMACOLOGY & PHARMACY
Mahesha Keerikkadu, Akshay Shetty, Raagul Seenivasan, Praveen Halagali, Vamshi Krishna Tippavajhala, Mahalaxmi Rathnanand
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引用次数: 0

Abstract

Sunitinib malate (SNB) is a multitargeted tyrosine kinase inhibitor that inhibits tumor angiogenesis and proliferation by blocking signaling through VEGFR, PDGFR, c-KIT, FLT3, and RET. SNB is currently used in the treatment of renal cell carcinoma, gastrointestinal stromal tumors, and pancreatic neuroendocrine tumors. The pharmacological efficacy of SNB is limited by its poor aqueous solubility, pH-dependent dissolution, poor oral bioavailability, extensive first pass metabolism, high interpatient pharmacokinetic variability, and dose-limiting toxicities such as cardiotoxicity, hypertension, and myelosuppression. Nanotechnology-based drug delivery systems have been explored as a promising strategy to overcome the limitations and improve the pharmacological efficacy of SNB. A wide variety of SNB-loaded nanocarriers, including polymeric nanoparticles, lipid-based nanocarriers, nanocapsules, polymeric micelles, dendrimers, and inorganic nanostructures, have been developed to improve solubilization, protect the drug from degradation, and provide controlled or stimulus-responsive release. These nanocarriers provide improved pharmacokinetic properties by prolonging systemic circulation, increasing tumor accumulation through enhanced permeability and retention effects, and reducing off-target exposure. Active targeting and intracellular delivery mechanisms further enhance cellular uptake and pharmacological efficacy while reducing systemic toxicity. In addition, multifunctional nanocarriers that incorporate imaging agents or microenvironment-responsive components also offer opportunities for theranostic and precision oncology applications. However, clinical adoption is currently hindered by challenges associated with large-scale nanomanufacturing, batch-to-batch reproducibility, long-term nanostability, regulatory acceptance, and limited human data. This review critically evaluates current nanocarrier platforms for SNB delivery, provides pharmacological advancements achieved through nanoformulation, and identifies key translational hurdles and future directions for clinical adoption.

Graphical Abstract

基于纳米载体的舒尼替尼给药策略综述:药代动力学增强和靶向治疗的进展。
苹果酸舒尼替尼(SNB)是一种多靶点酪氨酸激酶抑制剂,通过阻断VEGFR、PDGFR、c-KIT、FLT3和RET等信号通路抑制肿瘤血管生成和增殖,目前用于肾细胞癌、胃肠道间质瘤和胰腺神经内分泌肿瘤的治疗。SNB的药理功效受到其水溶性差、ph依赖性溶出度、口服生物利用度差、广泛的第一次代谢、高患者间药代动力学变异性和剂量限制性毒性(如心脏毒性、高血压和骨髓抑制)的限制。基于纳米技术的给药系统被认为是一种很有前途的策略,可以克服SNB的局限性并提高其药理功效。各种负载snb的纳米载体,包括聚合物纳米颗粒、脂基纳米载体、纳米胶囊、聚合物胶束、树状大分子和无机纳米结构,已经被开发出来,以改善增溶性,保护药物免受降解,并提供受控或刺激响应释放。这些纳米载体通过延长体循环、通过增强渗透性和滞留效应增加肿瘤积聚以及减少脱靶暴露来改善药代动力学特性。主动靶向和细胞内递送机制进一步增强细胞摄取和药理功效,同时降低全身毒性。此外,包含显像剂或微环境响应成分的多功能纳米载体也为治疗和精确肿瘤学应用提供了机会。然而,临床应用目前受到大规模纳米制造、批量可重复性、长期纳米稳定性、监管接受度和有限的人体数据等挑战的阻碍。这篇综述批判性地评估了目前用于SNB递送的纳米载体平台,提供了通过纳米制剂取得的药理学进展,并确定了关键的转化障碍和临床应用的未来方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
AAPS PharmSciTech
AAPS PharmSciTech 医学-药学
CiteScore
6.80
自引率
3.00%
发文量
264
审稿时长
2.4 months
期刊介绍: AAPS PharmSciTech is a peer-reviewed, online-only journal committed to serving those pharmaceutical scientists and engineers interested in the research, development, and evaluation of pharmaceutical dosage forms and delivery systems, including drugs derived from biotechnology and the manufacturing science pertaining to the commercialization of such dosage forms. Because of its electronic nature, AAPS PharmSciTech aspires to utilize evolving electronic technology to enable faster and diverse mechanisms of information delivery to its readership. Submission of uninvited expert reviews and research articles are welcomed.
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