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Protein Kinase C-delta Inhibitor Peptide Formulation using Gold Nanoparticles
Published on: March 9, 2019
Self-Assembling Peptide Nanotherapeutics: Precision Targeting for Acute Lung Injury and Multimodal Intervention in
Mohan Liu1, Yibing Zhang1, Jing Ma2
1Department of Biotherapy, Cancer Center and State Key Laboratory of Biotherapy West China Hospital, Sichuan University, Chengdu 610041, China.
None:
Self-assembling peptides have emerged as promising nonviral vectors for small interfering RNA (siRNA) delivery. Herein, we report DP7-C, a cholesterol-conjugated peptide capable of forming stable nanocomplexes with siRNA through self-assembly, and systematically elucidate its efficacy in pulmonary delivery through two distinct administration routes. Comparative studies demonstrated that intravenous administration of DP7-C/siRNA complexes resulted in significantly greater pulmonary accumulation than nebulization. This enhanced accumulation was attributed to the ability of DP7-C to facilitate siRNA internalization specifically through peptide-LDL receptor interactions, thereby overcoming key physiological barriers. Further biodistribution analysis revealed that intravenously administered DP7-C/siRNA primarily accumulated in pulmonary epithelial and endothelial cells in mice with inflammation. Leveraging this targeted delivery capability, we first validated DP7-C-mediated IV delivery of single-target ICAM-1 siRNA for acute lung injury treatment, which markedly attenuated pulmonary inflammation by reducing neutrophil infiltration and proinflammatory cytokine levels. Furthermore, a combinatorial siRNA strategy targeting MMP7, CXCL12, and TGFβ delivered by DP7-C effectively mitigated bleomycin-induced pulmonary fibrosis in vivo, as evidenced by decreased inflammatory response and collagen deposition, and also downregulated fibrotic markers. Our findings highlight DP7-C as a versatile platform for lung-targeted siRNA delivery, offering dual therapeutic potential for both acute inflammatory and chronic fibrotic pulmonary disorders through route-optimized administration and multitarget gene silencing strategies.

