Modeling Electrostatic Charge Shielding Induced by Cationic Drug Carriers in Articular Cartilage Using Donnan Osmotic Theory.

IF 1.6 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Bioelectricity Pub Date : 2022-12-01 Epub Date: 2022-12-15 DOI:10.1089/bioe.2021.0026
Matthew R Warren, Ambika G Bajpayee
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引用次数: 6

Abstract

Background: Positively charged drug carriers are rapidly emerging as a viable solution for long-standing challenges in delivery to dense, avascular, negatively charged tissues. These cationic carriers have demonstrated especially strong promise in targeting drugs to articular cartilage for osteoarthritis (OA) treatment. It is critical to evaluate the dose-dependent effects of their high intratissue uptake levels on charge-shielding of anionic matrix constituents, and the resulting changes in tissue osmotic swelling and mechanical integrity.

Materials and methods: We use the ideal Donnan osmotic theory to derive a model for predicting intracartilage swelling pressures as a function of net charge (z) and equilibrium uptake of short-length, arginine-rich, multivalent, cationic peptide carriers (cationic peptide carriers [CPCs], z varied from +8 to +20) in cartilage samples with varying arthritic severities and fixed charge density (FCD). We use this model to determine the dose-dependent influence of CPCs on both physiological osmotic swelling pressures and compressive electrostatic moduli of cartilage in healthy and arthritic states.

Results: Under physiological conditions, the Donnan model predicted carrier-induced reductions in free swelling pressure between 8 and 29 kPa, and diminished compressive modulus by 20-68 kPa, both dependent on the net charge and uptake of CPCs. The magnitudes of deswelling and stiffness reduction increased monotonically with carrier uptake and net charge. Furthermore, predicted levels of deswelling by CPC charge shielding were amplified in tissues with reduced FCD (which model OA). Finally, the Donnan model predicted markedly higher reductions in tissue compressive modulus in hypotonic bathing salinity compared with physiological and hypertonic conditions.

Conclusion: This analysis demonstrates the importance of considering charge shielding as a likely adverse effect associated with uptake of cationic drug carriers into negatively charged tissues, especially in the case of damaged tissue. The simple modeling approach and principles described herein can inform the design of cationic drug delivery carriers and their clinical treatment regimens.

用Donnan渗透理论模拟关节软骨中阳离子药物载体诱导的静电电荷屏蔽。
背景:带正电荷的药物载体正迅速成为解决长期存在的致密、无血管、带负电荷组织递送挑战的可行解决方案。这些阳离子载体在骨关节炎(OA)治疗的关节软骨靶向药物方面表现出特别强的前景。评估它们的高组织内摄取水平对阴离子基质成分电荷屏蔽的剂量依赖效应,以及由此导致的组织渗透肿胀和机械完整性的变化是至关重要的。材料和方法:我们使用理想的Donnan渗透理论推导了一个模型,用于预测软骨内膨胀压力作为净电荷(z)和短长度、富含精氨酸、多价、阳离子肽载体(阳离子肽载体[cpc], z从+8到+20不等)平衡摄取的函数,这些软骨样品具有不同的关节炎严重程度和固定电荷密度(FCD)。我们使用该模型来确定CPCs对健康和关节炎状态下软骨的生理渗透膨胀压力和压缩静电模量的剂量依赖性影响。结果:在生理条件下,Donnan模型预测,载体诱导的自由膨胀压力降低了8 - 29 kPa,压缩模量降低了20-68 kPa,这两者都取决于CPCs的净电荷和摄取。随着载流子的吸收和净电荷的增加,溶胀和刚度减小的幅度单调增加。此外,在FCD降低的组织中(模型为OA), CPC电荷屏蔽所预测的肿胀水平被放大。最后,与生理和高渗条件相比,Donnan模型预测低渗沐浴盐度下组织压缩模量的降低明显更高。结论:该分析表明,考虑电荷屏蔽的重要性,因为电荷屏蔽可能与阳离子药物载体进入带负电的组织有关,特别是在受损组织的情况下。本文描述的简单建模方法和原理可以为阳离子给药载体的设计及其临床治疗方案提供信息。
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
Bioelectricity
Bioelectricity Multiple-
CiteScore
3.40
自引率
4.30%
发文量
33
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