» Articles » PMID: 22369587

Identification of Nucleotide Patterns Enriched in Secreted RNAs As Putative Cis-acting Elements Targeting Them to Exosome Nano-vesicles

Overview
Journal BMC Genomics
Publisher Biomed Central
Specialty Genetics
Date 2012 Feb 29
PMID 22369587
Citations 104
Authors
Affiliations
Soon will be listed here.
Abstract

Background: Exosomes are nanoscale membrane vesicles released by most cells. They are postulated to be involved in cell-cell communication and genetic reprogramming of their target cells. In addition to proteins and lipids, they release RNA molecules many of which are not present in the donor cells implying a highly selective mode of their packaging into these vesicles. Sequence motifs targeting RNA to the vesicles are currently unknown.

Results: Ab initio approach was applied for computational identification of potential RNA secretory motifs in the primary sequences of exosome-enriched RNAs (eRNAs). Exhaustive motif analysis for the first time revealed unique sequence features of eRNAs. We discovered multiple linear motifs specifically enriched in secreted RNAs. Their potential function as cis-acting elements targeting RNAs to exosomes is proposed. The motifs co-localized in the same transcripts suggesting combinatorial organization of these secretory signals. We investigated associations of the discovered motifs with other RNA parameters. Secreted RNAs were found to have almost twice shorter half-life times on average, in comparison with cytoplasmic RNAs, and the occurrence of some eRNA-specific motifs significantly correlated with this eRNA feature. Also, we found that eRNAs are highly enriched in long noncoding RNAs.

Conclusions: Secreted RNAs share specific sequence motifs that may potentially function as cis-acting elements targeting RNAs to exosomes. Discovery of these motifs will be useful for our understanding the roles of eRNAs in cell-cell communication and genetic reprogramming of the target cells. It will also facilitate nano-scale vesicle engineering and selective targeting of RNAs of interest to these vesicles for gene therapy purposes.

Citing Articles

Effects of lipid membranes on RNA catalytic activity and stability.

Czerniak T, Saenz J Biol Cell. 2025; 117(2):e202400115.

PMID: 40012228 PMC: 11865690. DOI: 10.1111/boc.202400115.


The role of RNA structural motifs in RNA-lipid raft interaction.

Manka R, Sapon K, Zaziablo J, Janas T, Czogalla A, Janas T Sci Rep. 2025; 15(1):6777.

PMID: 40000734 PMC: 11861254. DOI: 10.1038/s41598-025-91093-x.


Extracellular RNA in oncogenesis, metastasis and drug resistance.

Nelson H, Qu S, Franklin J, Liu Q, Pua H, Vickers K RNA Biol. 2024; 21(1):17-31.

PMID: 39107918 PMC: 11639457. DOI: 10.1080/15476286.2024.2385607.


Exosomal miR-7-25207 Increases Subgroup J Avian Leukosis Virus Titers by Targeting the Akt-CyclinQ1 and PRC1-YAF2 Dual Pathways.

Zeng X, Liu T, Tang S, Dong X, Li Y, Liao L Microorganisms. 2024; 12(7).

PMID: 39065263 PMC: 11279298. DOI: 10.3390/microorganisms12071495.


Exosome for mRNA delivery: strategies and therapeutic applications.

Iqbal Z, Rehman K, Mahmood A, Shabbir M, Liang Y, Duan L J Nanobiotechnology. 2024; 22(1):395.

PMID: 38965553 PMC: 11225225. DOI: 10.1186/s12951-024-02634-x.


References
1.
Skog J, Wurdinger T, van Rijn S, Meijer D, Gainche L, Sena-Esteves M . Glioblastoma microvesicles transport RNA and proteins that promote tumour growth and provide diagnostic biomarkers. Nat Cell Biol. 2008; 10(12):1470-6. PMC: 3423894. DOI: 10.1038/ncb1800. View

2.
Kosaka N, Iguchi H, Ochiya T . Circulating microRNA in body fluid: a new potential biomarker for cancer diagnosis and prognosis. Cancer Sci. 2010; 101(10):2087-92. PMC: 11159200. DOI: 10.1111/j.1349-7006.2010.01650.x. View

3.
Liu X, Brutlag D, Liu J . BioProspector: discovering conserved DNA motifs in upstream regulatory regions of co-expressed genes. Pac Symp Biocomput. 2001; :127-38. View

4.
Thio G, Ray R, BARCELO G, Schupbach T . Localization of gurken RNA in Drosophila oogenesis requires elements in the 5' and 3' regions of the transcript. Dev Biol. 2000; 221(2):435-46. DOI: 10.1006/dbio.2000.9690. View

5.
Muslimov I, Nimmrich V, Hernandez A, Tcherepanov A, Sacktor T, Tiedge H . Dendritic transport and localization of protein kinase Mzeta mRNA: implications for molecular memory consolidation. J Biol Chem. 2004; 279(50):52613-22. PMC: 1828843. DOI: 10.1074/jbc.M409240200. View