bioRxiv Science⌕ Search

bioRxiv · 10.1101/2025.04.11.648480

DICAR-JP Regulates Ribosome Migration, a New Theory of Mitochondrial Protein Production

Abstract

BackgroundDICAR plays a cardioprotection of diabetic models. DICAR-JP, a short sequence of DICAR, may represent DICARs active functional domain. NAC is necessary for the heart tissue development. Addtionally, OGDHL is a metabolism regulator. In this study, we examine a new mechanism of DICAR via NAC/OGDHL on regulating cardiomyocyte metabolism in DCM. We also sought to elucidate the function of DICAR/DICAR-JP in modulating NAC-dependent production of OGDHL nascent peptides and their mitochondrial translocation, and we also aimed to optimize the DICAR-JP sequence to be better therapy on DCM. MethodsSPR was to investigate the binding interaction between DICAR-JP and NAC. The function of DICAR-JP and DICAR-JP45 on OGDHL nascent peptide transfection was detected by in vitro translation approach. Biotin-DICAR-JP was transfected to study the function of DICAR-JP, NAC and OGDHL. Untargeted metabolomics was utilized to characterize the metabolic reprogramming of cardiomyocytes. AAV9-DICAR-JP and DICAR-JP45 were constructed and administered to db/db mice for 1-2 months to assess their cardioprotective effects detected by Echocardiography confirmed mouse cardiac function. ResultsOur findings demonstrated that DICAR-JP be the functional domain that interacts with NAC to regulate OGDHL nascent peptide expression. Disruption of OGDHL expression reversed the metabolic reprogramming observed in diabetic cardiomyocytes, highlighting its crucial role in maintaining cardiac metabolic homeostasis. DICAR-JP facilitated the translocation of OGDHL nascent peptides from the cytoplasm to the mitochondria, leading us to hypothesize that DICAR-JP plays a key role in regulating ribosomal migration from the endoplasmic reticulum to the mitochondria. We refer to this process as the Ribosome Migration. In our studies using AAV9-mediated DICAR-JP and DICAR-JP45 overexpression in heart tissue. DICAR-JP and DICAR-JP45 both exhibited significant cardioprotective effects against diabetic cardiomyopathy (DCM), comparable to those observed with Empagliflozin. ConclusionsIn a conclusion, we propose a new endogenous nucleic acid candidate drug library, and a new molecular framework, the Ribosome Migration, which implicates the DICAR-JP/NAC/OGDHL nascent peptide axis in metabolic reprogramming related to DCM. This theory constructs a new mitochondrion protein from nuclear original protein. Moreover, DICAR-JP45 shows strong potential as a nucleic acid-based therapeutic candidate for treating DCM. Novelty and SignificanceO_ST_ABSWhat Is Known?C_ST_ABSDICAR is a new protective circular noncoding RNA for diabetic cardiomyopathy. NAC is located in ribosome and regulates new peptide production, which is also a key factor in heart tissue development. OGDHL can regulate different energy metabolism in mitochondria. What New Information Does This Article Contribute?DICAR-JP is the functional domain that interacts with NAC to regulate OGDHL nascent peptide expression. There is an interaction between DICAR-JP and NAC. DICAR-JP sequence is protected by NAC and NAC function is mediated by DICAR-JP. We called this RNA functional domain. OGDHL expression reversed the metabolic reprogramming observed in diabetic cardiomyocytes, highlighting its crucial role in maintaining cardiac metabolic homeostasis. DICAR-JP takes part in tanscription and translocation of OGDHL nascent peptides from the cytoplasm to the mitochondria via plasma ribosome. We call this process the Ribosome Migration Theory. DICAR-JP and DICAR-JP45 both exhibited significant cardioprotective effects against diabetic cardiomyopathy (DCM), comparable to those observed with Dapagliflozin (DAPA). Our study revealed a novel molecular framework, the Ribosome Migration Theory, which implicates the DICAR-JP/NAC/OGDHL nascent peptide axis in metabolic reprogramming related to DCM. Moreover, DICAR-JP45 shows strong potential as a nucleic acid-based therapeutic candidate for treating DCM.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Zhang, J., Yu, X., Zheng, S., Qiao, G., Zhang, C., Tang, S., Gao, X., Wang, Y., Yu, Y., Cheng, J., Lei, M., Li, P., Yang, Y., Yuan, Q.. 2025-04-18. DICAR-JP Regulates Ribosome Migration, a New Theory of Mitochondrial Protein Production. https://doi.org/10.1101/2025.04.11.648480

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

Lipid-ASO therapeutics exhibit differential tissue targeted delivery upon systemic or local CNS administration

Antisense oligonucleotides (ASOs) are a powerful therapeutic modality, but their full potential is hindered by pharmacokinetic properties that affect tissue and cellular delivery. Lipid conjugation is increasingly used to modulate ASO's biodistribution and promote extrahepatic activity, yet lipid dependent effects on in vivo functional delivery, particularly in the central nervous system (CNS), remain less explored. Here, we performed a side by side in vivo comparison of cholesterol, palmitic acid (C16:0), docosanoic acid (C22:0), and eicosapentaenoic acid (C20:5) conjugated to a fully phosphorothioated 3 10 3 LNA gapmer ASO targeting the Malat1 long non coding RNA. Lipid-ASO conjugates were administered systemically or locally in the brain of mice and evaluated for tissue level and cellular level distribution by imaging, qPCR and single-cell RNA sequencing, simultaneously annotating cell origin and global transcriptional changes within the cell. Following systemic administration in mice, lipid conjugation improved overall multi organ efficacy compared to unconjugated ASO, but with pronounced tissue specific differences. Single cell sequencing of liver and heart transcriptomes revealed lipid dependent cellular uptake patterns and transcriptional responses distinct from administration of unconjugated ASO. After intracerebroventricular administration, selected fatty acid conjugates enhanced silencing in deep brain regions such as the striatum, whereas cholesterol conjugation impaired functional delivery despite increased CNS retention. Light-sheet microscopy showed restricted parenchymal penetration of cholesterol ASOs compared with broader but heterogeneous distribution of palmitic acid conjugate. Together, these findings demonstrate that lipid identity critically determines ASO efficacy, productive cellular uptake, and regional CNS engagement, emphasizing the need for context specific lipid design in ASO therapeutic development.

pharmacology and toxicology↗

Novel Dissymmetric Ionizable Lipid-Assembled Lipid Nanoparticles for Delivery of Ferroptosis-Related siRNA in Diabetic Treatment

Small interfering RNA (siRNA) enables precise post-transcriptional gene silencing for refractory diseases, yet its clinical translation remains limited by the lack of safe and efficient delivery vectors. Inspired by the dissymmetric alkyl chain architecture of natural membrane phospholipids, we designed and synthesized 34 novel ionizable lipids with dissymmetric hydrophobic tails and formulated them into lipid nanoparticles (LNPs). Through systematic physicochemical and biological assessments, we established clear structure-activity relationships and identified two lead LNPs (O14-LNP, H18a-LNP) with superior endosomal escape capacity, enhanced in vivo gene silencing potency, and favorable biosafety relative to the clinical benchmark MC3-LNP. In both streptozotocin-induced and spontaneous db/db type 2 diabetes (T2D) mouse models, lead LNPs delivering ferroptosis-related siRNAs effectively ameliorated glucose and lipid metabolic disorders, restored islet function, and alleviated hepatic steatosis. This study not only lays a theoretical foundation for the rational design of novel ionizable lipids, but also validates the therapeutic potential of siRNA therapy targeting ferroptosis, providing a versatile delivery platform and targeted therapeutic strategy for the treatment of T2D.

pharmacology and toxicology↗

Inhibition of Mitochondrial Complex III Causes Dopaminergic Neurodegeneration by Redox Stress in Caenorhabditis elegans

Environmental factors including chemical exposures are important contributors to Parkinsons disease (PD). Nearly all well-validated chemicals involved in PD affect mitochondria, and the great majority of those identified inhibit mitochondrial complex I, causing ATP depletion and oxidative stress. We hypothesized that inhibition of mitochondrial complex III would also cause dopaminergic neurotoxicity. Using Caenorhabditis elegans to evaluate the in vivo effects of complex III-inhibiting pesticides antimycin A and pyraclostrobin, we found that both caused selective dopaminergic neurotoxicity. We evaluated exacerbation of dopaminergic neurotoxicity by the presence of -synuclein, and pdr-1/PRKN and pink-1/PINK1 mutant backgrounds and found increased neurotoxicity for pdr-1. Complex III inhibition caused a more-oxidized cellular environment in those neurons and pharmacological and genetic antioxidant interventions rescued neurotoxicity, but energetic rescue attempts did not. Finally, optogenetic production of superoxide anion specifically at complex III caused dopaminergic neuronal damage. Thus, redox stress at complex III following chemical exposure causes dopaminergic neurotoxicity in vivo in C. elegans.

pharmacology and toxicology↗