Manimaran V, Nivetha R P, Tamilanban T, Narayanan J, Vetriselvan Subramaniyan, Fuloria Neeraj Kumar, Chinni Suresh V, Sekar Mahendran, Fuloria Shivkanya, Wong Ling Shing, Biswas Anupam, Ramachawolran Gobinath, Selvaraj Siddharthan
Department of Pharmaceutics, SRM College of Pharmacy, Faculty of Medicine and Health Sciences, SRM Institute of Science and Technology, Kattankulathur, Tamilnadu, India.
Jeffrey Cheah School of Medicine and Health Sciences, Monash University, Bandar Sunway, Selangor Darul Ehsan, Malaysia.
Front Mol Biosci. 2023 Aug 8;10:1232109. doi: 10.3389/fmolb.2023.1232109. eCollection 2023.
Nanogels are highly recognized as adaptable drug delivery systems that significantly contribute to improving various therapies and diagnostic examinations for different human diseases. These three-dimensional, hydrophilic cross-linked polymers have the ability to absorb large amounts of water or biological fluids. Due to the growing demand for enhancing current therapies, nanogels have emerged as the next-generation drug delivery system. They effectively address the limitations of conventional drug therapy, such as poor stability, large particle size, and low drug loading efficiency. Nanogels find extensive use in the controlled delivery of therapeutic agents, reducing adverse drug effects and enabling lower therapeutic doses while maintaining enhanced efficacy and patient compliance. They are considered an innovative drug delivery system that highlights the shortcomings of traditional methods. This article covers several topics, including the involvement of nanogels in the nanomedicine sector, their advantages and limitations, ideal properties like biocompatibility, biodegradability, drug loading capacity, particle size, permeability, non-immunological response, and colloidal stability. Additionally, it provides information on nanogel classification, synthesis, drug release mechanisms, and various biological applications. The article also discusses barriers associated with brain targeting and the progress of nanogels as nanocarriers for delivering therapeutic agents to the central nervous system.
纳米凝胶作为适应性强的药物递送系统而备受认可,对改善针对不同人类疾病的各种治疗和诊断检查有显著贡献。这些三维亲水性交联聚合物能够吸收大量的水或生物流体。由于增强现有治疗方法的需求不断增长,纳米凝胶已成为下一代药物递送系统。它们有效地解决了传统药物治疗的局限性,如稳定性差、粒径大以及药物负载效率低等问题。纳米凝胶在治疗剂的控释方面有广泛应用,可减少药物不良反应,实现较低的治疗剂量,同时保持增强的疗效和患者依从性。它们被认为是一种创新的药物递送系统,凸显了传统方法的缺点。本文涵盖了几个主题,包括纳米凝胶在纳米医学领域的应用、它们的优点和局限性、诸如生物相容性、生物可降解性、药物负载能力、粒径、渗透性、非免疫反应和胶体稳定性等理想特性。此外,还提供了有关纳米凝胶分类、合成、药物释放机制以及各种生物学应用的信息。文章还讨论了与脑靶向相关的障碍以及纳米凝胶作为将治疗剂递送至中枢神经系统的纳米载体的进展。