Transcriptomics

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Monocyte-Mimetic Nanoparticle Delivery of Verteporfin Promotes Plaque Stabilizing Remodeling in Atherosclerosis


ABSTRACT: Clinical studies support inflammation as a promising therapeutic target in atherosclerosis, yet systemic immunomodulation remains limited by undesired side effects, underscoring the need for targeted delivery strategies that enable precise modulation of the inflammatory plaque microenvironment. We recently developed a monocyte-mimetic nanoparticle platform, termed MoNP, that selectively targets inflamed endothelium and delivers Verteporfin (VP) to suppress YAP/TAZ-associated endothelial activation and plaque development. Here, we extend this biomimetic nanotherapy by defining the pharmacological effects of MoNP-VP within atherosclerotic vessels and evaluating its therapeutic efficacy in pre-existing plaques under distinct lipid burden. MoNP-VP were formulated by encapsulating VP in polymeric cores followed by cloaking with monocyte membranes. Partial ligation was performed in ApoE-/- mice, and single-cell RNA sequencing was used to define pharmacodynamic responses in carotid lesions. Proprotein convertase subtilisin/kexin type 9 (PCSK9) gain-of-function was induced in wild-type mice to generate pre-existing aortic lesions, followed by continued high-fat-diet or switching to chow to evaluate MoNP-VP efficacy under persistent hyperlipidemia and lipid-lowering conditions. Single-cell analysis revealed that MoNP-VP remodeled the plaque microenvironment in carotid arteries, selectively reducing foamy macrophage populations while enriching vascular stromal populations associated with fibrotic remodeling. In mice with pre-existing aortic plaques, MoNP-VP suppressed lesion progression and reduced macrophage content under persistent hyperlipidemia. Following diet-induced lipid lowering, MoNP-VP further reduced macrophage accumulation despite no significance change in plaque size. Across both settings, MoNP-VP increased fibroblast-like cell populations and collagen deposition accompanied by activation of TGFβ signaling — features consistent with a more stable plaque. Importantly, repeated MoNP-VP administration was well tolerated and elicited no overt systemic toxicity. These findings bridge mechanistic insight and therapeutic efficacy in pre-established plaques by demonstrating that MoNP-VP remodels the inflammatory plaque microenvironment and promotes lesion stabilization, supporting its translational potential as a precision nanotherapy for atherosclerosis.

ORGANISM(S): Mus musculus

PROVIDER: GSE337236 | GEO | 2026/09/16

REPOSITORIES: GEO

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