Evidence mapPaperPMID 41519805Full record

ArticleJournal of translational medicine2026

Precision RNA interference of Smad3 and Runx2 via dual targeting nanocarriers mitigates aortic valve disease.

Geanina Voicu, Cristina Ana Mocanu, Florentina Safciuc, Maria Anghelache, Mihaela Turtoi, Mariana Deleanu, Maya Simionescu, Ileana Manduteanu, Manuela Calin

Abstract read
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Article in Journal of translational medicine, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.

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1 · What the graph read from it

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2 · The registry

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3 · Its place in the literature

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4 · The record

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5 · Who and what money

Authors and funding

9 authors.

Geanina Voicu"Medical and Pharmaceutical Bionanotechnologies" Department, Institute of Cellular Biology and Pathology "Nicolae, Simionescu" of the Romanian Academy, Bucharest, 050568, Romania.
Cristina Ana Mocanu"Medical and Pharmaceutical Bionanotechnologies" Department, Institute of Cellular Biology and Pathology "Nicolae, Simionescu" of the Romanian Academy, Bucharest, 050568, Romania.
Florentina Safciuc"Medical and Pharmaceutical Bionanotechnologies" Department, Institute of Cellular Biology and Pathology "Nicolae, Simionescu" of the Romanian Academy, Bucharest, 050568, Romania.
Maria Anghelache"Medical and Pharmaceutical Bionanotechnologies" Department, Institute of Cellular Biology and Pathology "Nicolae, Simionescu" of the Romanian Academy, Bucharest, 050568, Romania.
Mihaela Turtoi"Medical and Pharmaceutical Bionanotechnologies" Department, Institute of Cellular Biology and Pathology "Nicolae, Simionescu" of the Romanian Academy, Bucharest, 050568, Romania.
Mariana Deleanu"Liquid and Gas Chromatography" Laboratory, Institute of Cellular Biology and Pathology "Nicolae, Simionescu" of the Romanian Academy, Bucharest, 050568, Romania.
Maya Simionescu"Medical and Pharmaceutical Bionanotechnologies" Department, Institute of Cellular Biology and Pathology "Nicolae, Simionescu" of the Romanian Academy, Bucharest, 050568, Romania.
Ileana Manduteanu"Medical and Pharmaceutical Bionanotechnologies" Department, Institute of Cellular Biology and Pathology "Nicolae, Simionescu" of the Romanian Academy, Bucharest, 050568, Romania.
Manuela Calin"Medical and Pharmaceutical Bionanotechnologies" Department, Institute of Cellular Biology and Pathology "Nicolae, Simionescu" of the Romanian Academy, Bucharest, 050568, Romania. manuela.calin@icbp.ro.ORCID http://orcid.org/0000-0002-5245-160X

Funding

Academia Româna Academia RomânaCompetitiveness Operational Programme 2014-2020, Priority Axis1/Action 1.1.4/ Financing Contract no.115/ 2016/ MySMIS:104362European Union - NextGenerationEU and the Romanian Government through the National Recovery and Resilience Plan, Component 9 - Investment 8 PNRR-III-C9-2022-I8-93, Financing Contract no. 760063/23.05.2023
6 · The paper itself

Abstract

backgroundCalcific aortic valve disease (CAVD) is a common malady with few treatment options other than valve replacement by surgery or transcatheter aortic valve implantation (TAVI). Endothelial-to-mesenchymal transition (EndMT) of valvular endothelial cells and osteogenic differentiation of valvular interstitial cells are crucial processes of CAVD. Smad3 and Runx2 are key transcription factors (TFs) that drive these processes by regulating gene expression and cellular functions. We hypothesize that downregulation of these TFs with nanoparticle-mediated RNA interference could mitigate aortic valve stenosis and calcification.

methodsWe engineered dual-targeted lipid-polymer hybrid nanocarriers (lipopolyplexes, LPP) to deliver short-hairpin RNA (shRNA) for gene silencing in pathologically remodeled aortic valve. The nanocarriers simultaneously target vascular cell adhesion molecule-1 (VCAM-1) and collagen IV, enhancing specificity toward inflamed and fibrotic valvular tissue. Encapsulated shRNA constructs were designed to silence either Smad3 or Runx2 (yielding formulations V/Cp-LPP/shSmad3 and V/Cp-LPP/shRunx2). Therapeutic efficacy was evaluated in a mouse model of atherosclerosis aggravated by diabetes, mimicking the pathological environment of CAVD.

resultsThe dual-targeted lipopolyplexes effectively facilitated gene delivery to the aortic valve, ensuring efficient transfection. Treatment with V/Cp-LPP/shSmad3 and V/Cp-LPP/shRunx2 resulted in marked silencing of Smad3 and Runx2, accompanied by significant suppression of osteogenic markers, including osteopontin, alkaline phosphatase, and osteocalcin, as well as reduced α-smooth muscle actin (αSMA) expression in valve tissue. Our data further identify Runx2 as a novel upstream modulator of Smad3 expression, unveiling a previously unrecognized Runx2-Smad3 regulatory axis with important implications for valvular pathology and targeted therapy. Beyond localized effects, systemic administration of these lipopolyplexes resulted in reduced plasma concentrations of alkaline phosphatase, cholesterol, and triglycerides, while maintaining hepatic and renal function, suggesting additional benefits for systemic metabolic homeostasis.

conclusionsThese findings highlight the pivotal role of Smad3 and Runx2 downregulation in mitigating aortic valve calcification, unveiling both molecules as compelling therapeutic targets in CAVD.

Indexed as

Aortic ValveAortic Valve DiseaseAortic Valve StenosisCore Binding Factor Alpha 1 SubunitDrug CarriersNanoparticlesRNA InterferenceSmad3 ProteinAnimalsCalcinosisMice, Inbred C57BLRNA, Small InterferingCore Binding Factor Alpha 1 SubunitDrug CarriersRNA, Small InterferingRunx2 protein, mouseSmad3 ProteinCalcific aortic valve diseaseDual-targeted nanocarriersRunx2ShRNA deliverySmad3

Identifiers

PMID41519805
PMCPMC12882428

What Socratic holds

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LicenceCC BY-NC-ND
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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the Socratic graph.