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Biology subjects

Shandilya, R.

Publications and source records attributed to Shandilya, R..

2 recordsLinked to original sources

Fluorosphere-Assisted Nano-Biosensor for Detection of Circulating microRNAs in Non-Small Cell Lung Cancer

Non-small-cell lung cancer (NSCLC) diagnosis is challenged owing to the need for reliable, non-invasive biomarkers. Circulating cell-free microRNAs (ccf-miRNAs) are promising candidates, but their low levels and short sequences in blood complicate detection. In this study, a novel nano-hybrid fluorescent array was developed to enable rapid and sensitive identification of NSCLC-related ccf-miRNAs. The array consists of poly(T)-modified fluorescent nano-polystyrene beads for capturing target miRNAs, and fluorophore-labeled, sequence-specific locked nucleic acid (LNA) probes for their detection. This design forms a sandwich structure with the target miRNA. Nano cytometry and fluorescence microscopy assessed both the capture and specificity of detection. The assay was tested on plasma samples for miR-16-5p and U6, evaluating selectivity, sensitivity, and reproducibility. The results showed that the poly(T)-modified beads efficiently captured the target miRNAs, and the LNA probes accurately distinguished the sequences. The assay enabled direct detection of miR-16-5p and U6 from plasma without amplification, demonstrating high selectivity, sensitivity, and reproducibility. Combining enrichment with nano-polystyrene beads and sequence-specific LNA probes addressed the main challenges of ccf-miRNA detection, namely their low abundance and short sequence length. As ccf-miRNAs are linked to NSCLC progression, this method could assist in early diagnosis, disease monitoring, and assessment of treatment response. The target-independent nature of the poly(T) capture layer allows for easy calibration to new miRNAs by changing the LNA probes, rendering it suitable for multiplex detection in clinical settings. However, further preclinical and clinical studies are needed before adoption in routine practice. This nano-hybrid fluorescent array presents a rapid and reliable approach for detecting low-abundance ccf-miRNAs in plasma. Its encouraging performance and flexible design show potential for future application in NSCLC diagnosis and monitoring, subject to additional confirmation.

molecular biology↗

Bradycardia inhibits brain vessel mural cell differentiation via reducing mechanosensory and Jag2-Notch signaling

Bradycardia occurs when the heart rate is lower than normal resulting in reduced cerebral blood flow and contributing to neurodegeneration in adults but how it affects embryonic cerebrovascular development is not well studied. We induce bradycardia by targeting the heart pacemaker channel Hcn4 via chemical (ivabradine) and genetic (hcn4 mutant) methods. Bradycardia results in reduced brain vessel diameter and mural cell (pericyte and vascular smooth muscle cell) number. Endothelial cells are the first responders in sensing changes in blood flow, and we show that signalling through the canonical endothelial-autonomous mechanosensitive pathway (Piezo1, Mek5, Erk5, Klf2) is reduced in bradycardia. To identify the ligand-receptor combination that transmits signals to developing mural cells, we show that expression of the Notch ligand jagged2b is decreased in the brain of both hcn4 and klf2 mutants. jag2b knockdown reduces mural cell numbers in brain vessels. Restoring jag2b levels increases mural cell numbers in both wildtype and hcn4 mutants. Our work connects bradycardia, mechanosensitive signaling and mural cell recruitment demonstrating that mural cell numbers can be increased in bradycardia by restoring Notch signalling via upregulating endothelial Jag2b. SummaryBradycardia models show reduced blood flow, Piezo1-klf2-jag2b-notch3 mechanosensing and mural cell recruitment to developing brain vasculature. Restoration of jag2, an endogenous endothelial cell ligand, rescues mural cell numbers in bradycardia mutants.

Developmental Biology↗