Department of Biomedical Engineering, Boston University, Boston, MA, 02215-2407, USA.
Department of Biomedical Engineering, Boston University, Boston, MA, 02215-2407, USA.
Biomaterials. 2024 Sep;309:122594. doi: 10.1016/j.biomaterials.2024.122594. Epub 2024 Apr 27.
Therapeutic outcomes of local biomolecule delivery to the central nervous system (CNS) using bulk biomaterials are limited by inadequate drug loading, neuropil disruption, and severe foreign body responses. Effective CNS delivery requires addressing these issues and developing well-tolerated, highly-loaded carriers that are dispersible within local neural parenchyma. Here, we synthesized biodegradable trehalose-based polyelectrolyte oligomers using facile A2:B3:AR thiol-ene Michael addition reactions that form complex coacervates upon mixing of oppositely charged oligomers. Coacervates permit high concentration loading and controlled release of bioactive growth factors, enzymes, and antibodies, with modular formulation parameters that confer tunable release kinetics. Coacervates are cytocompatible with cultured neural cells in vitro and can be formulated to either direct intracellular protein delivery or sequester media containing proteins and remain extracellular. Coacervates serve as effective vehicles for precisely delivering biomolecules, including bioactive neurotrophins, to the mouse striatum following intraparenchymal injection. These results support the use of trehalose-based coacervates as part of therapeutic protein delivery strategies for CNS disorders.
利用块状生物材料将局部生物分子递送到中枢神经系统(CNS)的治疗效果受到药物装载不足、神经突破坏和严重异物反应的限制。有效的 CNS 传递需要解决这些问题,并开发出可耐受、高装载的载体,这些载体可在局部神经实质内分散。在这里,我们使用简单的 A2:B3:AR 巯基-烯迈克尔加成反应合成了基于海藻糖的可生物降解聚电解质低聚物,这些低聚物在混合带相反电荷的低聚物时形成复杂的凝聚物。凝聚物允许高浓度负载和生物活性生长因子、酶和抗体的控制释放,其模块化配方参数赋予可调释放动力学。凝聚物与体外培养的神经细胞具有细胞相容性,并且可以配制为直接进行细胞内蛋白质递送,或者将含有蛋白质的培养基隔离并保持在细胞外。凝聚物是精确递送生物分子的有效载体,包括生物活性神经营养因子,在脑实质内注射后可递送到小鼠纹状体。这些结果支持使用基于海藻糖的凝聚物作为 CNS 疾病治疗性蛋白质递送策略的一部分。