bioRxiv Science⌕ Search

Biology subjects

Kosara, S.

Publications and source records attributed to Kosara, S..

2 recordsLinked to original sources

Hypoxia Induced Modulation of Cellular and in vivo uptake of DNA nanocage implications in therapeutics

DNA tetrahedra (DNA Td) are promising nanocarriers for drug delivery, but how hypoxia affects their cellular internalisation remains poorly understood. We synthesised and characterised Cy5-labelled DNA Td and established chemical hypoxia; in HeLa, MDA-MB-231, and MCF-7 cells. Hypoxia was confirmed by HIF-1; nuclear translocation. Confocal microscopy revealed significantly reduced DNA Td uptake under hypoxia, whereas transferrin and cholera toxin B uptake increased, indicating cargo-selective regulation. Temperature-arrest experiments confirmed reduced energy-dependent internalisation. Pharmacological profiling showed a shift from clathrin-mediated and galectin/glycan-dependent pathways toward lipid raft/cholesterol-dependent uptake. Hypoxia increased plasma membrane electronegativity, suggesting a biophysical barrier to DNA Td uptake. Importantly, DOTMA complexation restored uptake to normoxic levels, identifying electrostatic repulsion as a key determinant. In zebrafish larvae, hypoxia significantly enhanced whole-larva DNA Td accumulation. These findings highlight surface charge engineering as a strategy for improving DNA nanostructure delivery under hypoxic conditions.

bioinformatics↗

Hamelia patens-Derived Red-Emitting Carbon Quantum Dots: Surface-State Luminescence, Antioxidant Potency, and In Vitro Bioimaging

Red-emitting carbon quantum dots (HP-CQDs) were synthesised for the first time from aqueous leaf extracts of Hamelia patens through single-step, reagent-free microwave-assisted carbonisation (750 W). The resulting nanoparticles displayed a narrow hydrodynamic size distribution centred at 3.9 nm, consistent with atomic force microscopy measurements showing a maximum height of 2.81 nm. Under 400 nm excitation, the CQDs exhibited a characteristic red emission maximum at 675 nm, representing a rare example of long-wavelength-emitting green CQDs derived from plant biomass. UV-Vis absorption bands at 224 and 256 nm were assigned to {pi}-{pi}* transitions of aromatic carbon domains and n-{pi}* transitions associated with carbonyl-containing surface groups, respectively. X-ray photoelectron spectroscopy (XPS) indicated a carbon-rich composition (C: 67.24%, O: 31.25%, N: 1.52%) with prominent C-O (42.67%) and C-C/C=C (42.64%) contributions. ATR-FTIR further confirmed the retention of hydroxyl, ether, and aliphatic functionalities following carbonisation. The excitation-wavelength-independent emission peak position implicates discrete surface molecular states rather than a heterogeneous distribution of emitters. HP-CQDs exhibit potent DPPH radical scavenging activity (ICOO = 141.8 {micro}g mLO{superscript 1}), comparable to ascorbic acid (ICOO = 114.8 {micro}g mLO{superscript 1}), and maintain >95% cell viability in both HeLa and RPE-1 cells up to 250 {micro}g mLO{superscript 1}. Confocal microscopy demonstrates concentration-dependent cytoplasmic accumulation and selective perinuclear localization at 300 {micro}g mLO{superscript 1}. In vivo biodistribution in zebrafish larvae confirms systemic uptake with statistically significant fluorescence enhancement at 500 {micro}g mLO{superscript 1} (p < 0.01), establishing HP-CQDs as biocompatible red-fluorescent probes with dual imaging-antioxidant functionality. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=148 SRC="FIGDIR/small/724069v2_ufig1.gif" ALT="Figure 1"> View larger version (61K): org.highwire.dtl.DTLVardef@17be668org.highwire.dtl.DTLVardef@153d874org.highwire.dtl.DTLVardef@1a7e6edorg.highwire.dtl.DTLVardef@29f13a_HPS_FORMAT_FIGEXP M_FIG C_FIG

bioengineering↗