脓毒症风暴中的纳米平台:精确免疫调节和病原体中和的多模式协同作用

Xinxin Wang , Xuemei Wang , Yuxin Cao , Wenming Wang , Dandan Liu , Jingwen Zhang , Yuxiu Chen , Daquan Chen
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引用次数: 0

摘要

败血症是一种严重的全球健康挑战,其特征是对耐药病原体的免疫反应失调导致危及生命的器官功能障碍,造成了巨大的疾病负担。脓毒症的复杂性质需要细致的药物管理,并强调了先进的药物递送策略的紧迫性。本文全面概述了纳米技术驱动的脓毒症治疗干预措施的最新进展,强调了创新方法,如刺激反应和纳米药物输送系统,已应用于解决脓毒症及其相关并发症。从脓毒症发病机理的各种理论和机制见解中,我们探索新的治疗途径及其与纳米递送系统的潜在整合,考虑到微环境等因素。我们展示了这些纳米递送系统如何提高治疗的准确性和多样性。此外,纳米医学与CRISPR、CAR-T疗法、人工智能、微流体、微生物组研究和免疫疗法等新兴技术之间的协同作用有望彻底改变败血症的诊断、治疗和管理策略。然而,克服病原体耐药性,精确调节过度的免疫反应/免疫抑制,以及在复杂的病理环境中实现纳米载体的有效靶向递送仍然是核心挑战。未来的研究需要专注于开发更智能、更灵敏的纳米平台,并深入探索其与多种前沿技术的深度融合,以推进败血症精准诊断和治疗的临床转化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Nanoplatforms in sepsis storm: Multimodal synergy for precision immunomodulation and pathogen neutralizations

Nanoplatforms in sepsis storm: Multimodal synergy for precision immunomodulation and pathogen neutralizations
Sepsis, a severe global health challenge characterized by life-threatening organ dysfunction stemming from a dysregulated immune response to drug-resistant pathogens, imposes a substantial disease burden. The intricate nature of sepsis necessitates meticulous drug administration and underscores the urgency for advanced drug delivery strategies. This paper presents a comprehensive overview of recent advancements in nanotechnology-driven therapeutic interventions for sepsis, emphasizing innovative approaches such as stimulus-responsive and nano-drug delivery systems that have been applied to tackle sepsis and its associated complications. Drawing from various theories and mechanistic insights into sepsis pathogenesis, we explore novel therapeutic avenues and their potential integration with nano-delivery systems, considering factors such as the microenvironment. We demonstrate how these nano-delivery systems can enhance treatment accuracy and diversity. Furthermore, the synergy between nanomedicine and emerging technologies like CRISPR, CAR-T therapy, AI, microfluidics, microbiome research, and immunotherapy holds the promise to revolutionize sepsis diagnosis, treatment, and management strategies. However, overcoming pathogen resistance, precisely modulating excessive immune response/immunosuppression, and achieving efficient targeted delivery of nanocarriers in complex pathological environments remain core challenges. Future research needs to focus on the development of smarter and more responsive nanoplatforms and deeply explore their deep integration with multiple cutting-edge technologies in order to advance the clinical translation of precision sepsis diagnosis and treatment.
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