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All approved RNA therapeutics require parenteral delivery. Here, we demonstrate an orally bioavailable formulation wherein synthetic noncoding (nc) RNA, packaged into lipid nanoparticles, is loaded into casein-chitosan (C2) micelles. We used the C2 formulation to deliver TY1, a 24-nucleotide synthetic ncRNA, which targets DNA damage and attenuates inflammation in macrophages. C2-formulated TY1 (TY1) efficiently packages and protects TY1 against degradative enzymes. In healthy mice, oral TY1 was well-tolerated and nontoxic. Oral TY1 exhibited disease-modifying bioactivity in two models of tissue injury: (1) rat myocardial infarction, where a single oral dose of TY1 was cardioprotective, on par with intravenously-delivered TY1; and (2) mouse acute lung injury, where a single dose of TY1 attenuated pulmonary inflammation. Mechanistic dissection revealed that TY1 is taken up by intestinal macrophages, namely those of the lamina propria and Peyer's patches. Afterwards, TY1 could be detected in circulating monocytes for up to 72 h post-ingestion. Unlike TY1, which acts on macrophages, an antisense oligonucleotide against Factor VII, which acts on hepatocytes, is not effective when administered in the C2 formulation. Thus, not all ncRNA drugs are bioactive when delivered by mouth. Oral delivery of macrophage-active RNA opens up a wide range of potential new therapeutic opportunities.
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http://dx.doi.org/10.1002/jex2.70081 | DOI Listing |
Plant J
September 2025
Biotechnology Center of Southern Taiwan, Academia Sinica, Tainan, 711010, Taiwan.
Transposable elements (TEs) significantly influence genomic diversity and gene regulation in plants. Brassica rapa and B. oleracea, with their distinct domestication histories, offer excellent models to explore TE dynamics.
View Article and Find Full Text PDFPlant Dis
August 2025
University of Georgia - Tifton Campus, Horticulture, Tifton, Georgia, United States;
The severity of tomato yellow leaf curl disease (TYLCD) caused by tomato yellow leaf curl virus (TYLCV) in commercially grown tomato cultivars has been increasingly exacerbated in recent years in the southeastern United States. Four research trials were conducted over two consecutive fall seasons in the years 2022 and 2023 to assess the performance of tomato (Solanum lycopersicum L.) cultivars introgressed with single (Ty-1) or combinations of (Ty-3 and Ty-6) resistance gene(s) in Georgia, USA.
View Article and Find Full Text PDFbioRxiv
August 2025
CIRAD, UMR PHIM, F-34398 Montpellier, France.
Tomato yellow leaf curl disease (TYLCD) was reported in western Mediterranean basin since the late 1980s. Based on intensive plant samplings performed in Spain, Italy and Morocco at different periods between the 1990s and 2014, several begomoviruses (family ) were identified as the cause of TYLCD. They comprise the native (Tomato yellow leaf curl Sardinia virus, TYLCSAV), two strains of (Tomato yellow leaf curl virus, TYLCV) introduced from the Middle East, and several types of TYLCV/TYLCSaV recombinants including the invasive recombinant TYLCV-IS76 in which the genome fragment inherited from TYLCSaV was unusually short.
View Article and Find Full Text PDFAll approved RNA therapeutics require parenteral delivery. Here, we demonstrate an orally bioavailable formulation wherein synthetic noncoding (nc) RNA, packaged into lipid nanoparticles, is loaded into casein-chitosan (C2) micelles. We used the C2 formulation to deliver TY1, a 24-nucleotide synthetic ncRNA, which targets DNA damage and attenuates inflammation in macrophages.
View Article and Find Full Text PDFBMC Res Notes
July 2025
Agência Paulista de Tecnologia dos Agronegócios, Piracicaba, São Paulo, Brazil.
Objective: Repetitive DNA comprises the majority of nuclear genomes in eukaryotes and is critical for genome stability, gene regulation and evolutionary innovation. Yet, most genomic surveys focus on lowcopy regions, leaving repeats underexplored. Here, we assess how repetitive elements shape genomic diversity and rapid radiation in Dyckia (Bromeliaceae) by characterizing the abundance, composition and variability of major repeat families using lowcoverage whole-genome sequencing and the RepeatExplorer2 pipeline.
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