肽介导的 CRISPR 递送:从培养皿到血液
Peptide-mediated CRISPR delivery: From dish to bloodstream
CRISPR 疗法发展很快,但递送是临床转化的瓶颈。病毒载体和脂质纳米颗粒在装载容量、免疫原性和组织靶向性上都有局限。肽类递送平台是可调控的非病毒方案:序列化学明确、体积小易穿透组织、合成便宜、可逐位重新设计。在细胞培养中,肽平台递送效率可媲美电转染,且细胞存活率明显更好。但进入体内后,局部注射仍要面对内体逃逸之外的更多屏障,编辑效率通常不高;系统给药时,较脆弱的核糖核蛋白复合物还会遇到肝脏清除、吞噬细胞捕获和蛋白冠干扰,促使领域转向工程化纳米组装体和 mRNA/DNA 载荷。作者呼吁该领域走出定性读数、把零散进展整合为统一载体。
为什么推荐给您:针对 CRISPR 递送这一核心瓶颈的新策略综述,有转化前景但无新实验数据。
不需要生物学背景,多打比方
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摘要Abstract
CRISPR-based therapeutics have advanced rapidly, but clinical translation remains bottlenecked by delivery. Standard carriers like viral vectors and lipid nanoparticles (LNPs) face challenges regarding cargo capacity, immunogenicity, and restricted tissue tropism. Peptide-mediated delivery platforms offer a highly tunable, non-viral alternative. These chemically defined sequences are uniquely modular: they are small enough to penetrate dense tissues, inexpensive to synthesize, and open to redesign residue by residue. In cell culture, peptide platforms compete effectively against standard electroporation, delivering high editing efficiency in primary human cells while significantly improving cell viability. Despite these in vitro successes, translating peptide-mediated delivery in vivo introduces physiological barriers. When introduced by tissue injection in vivo, peptide delivered CRISPR editors must tackle more barriers than mere cell entry and endosomal escape they had to face in the dish. They typically reach modest editing efficiencies, which, however, could still yield a therapeutic benefit. For systemic delivery, more fragile but transient ribonucleoprotein (RNP) complexes face hepatic clearance, phagocytic capture, and protein corona interference-obstacles that are driving a shift toward engineered nanoassemblies and mRNA/DNA cargo alternatives. This review outlines the evolution of peptide-based CRISPR delivery from cell culture to local and systemic in vivo applications, evaluating physiological boundaries and highlighting engineering avenues required to overcome them. Looking forward, the next decade of peptide-mediated delivery must reconcile the conservative demands of clinical translation with radical chemical innovation. To advance, the field must transition past qualitative readouts and integrate isolated advancements into a single cohesive vehicle engineered for robust in vivo efficacy. By systematically combining these chemical innovations, engineered peptides might overcome the restrictions of viruses and LNPs, providing a truly versatile platform for systemic CRISPR delivery.