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Biology subjects

Mohanan, G.

Publications and source records attributed to Mohanan, G..

3 recordsLinked to original sources

Automated Purification of DNA Origami with SPRI Beads

DNA origami synthesis is a well-established technique and has been employed in various applications. The synthesised origami must be purified to eliminate the excess materials such as DNA oligos and other molecules. While several purification techniques are routinely used, they all have limitations, and none can be automated to simultaneously handle large numbers and quantities of samples. Here we introduce the use of solid-phase immobilisation (SPRI) beads as an easy-to-adopt, scalable, high-throughput and automation-compatible method to purify DNA origami. Not only can this method remove excess oligos and biomolecules with comparable yield to existing methods while maintaining high structural integrity of the origami, but it also allows an automated workflow to simultaneously purify large numbers of samples within a limited time. We envision that the SPRI beads purification approach will improve the scalability of DNA nanostructures synthesis both for research and commercial applications.

biophysics↗

RGG-motif proteins regulate mRNA translation upon genotoxic stress

Genotoxic stress response (GSR) mediated by mRNA translation and decay regulation remains poorly explored. Here, we identify a unique role of yeast RGG-motif protein Scd6 and its human ortholog LSM14A in mRNA translation control upon hydroxyurea (HU)-mediated GSR. Scd6/LSM14A, but not all tested RGG-containing proteins, localize to HU-induced cytoplasmic puncta in an RGG-dependent manner. The absence of Scd6 increases HU tolerance but sensitizes the cells to HU upon overexpression of SRS2, a known dampener of the DNA- damage response. Scd6 binds SRS2 mRNA to repress its translation in cytoplasmic granules upon HU stress. Scd6-SRS2 interaction is modulated by arginine methylation (AM) and the LSm-domain, which acts as a cis-regulator of Scd6 AM. Polysome-profiling experiments indicate that LSM14A regulates the translation of NHEJ factor mRNAs such as LIG4 (DNL4 homolog) and RTEL1 (SRS2 functional homolog), and the NHEJ activity in response to HU. Overall, this report unveils the role of AM and Scd6/LSM14A in the GSR by determining the translation status of specific mRNAs.

cell biology↗

Nanopore Fingerprinting of Supramolecular DNA Nanostructures

DNA nanotechnology has paved the way for new generations of programmable nanomaterials. Utilising the DNA origami technique, various DNA constructs can be designed, ranging from single tiles to the self-assembly of large-scale complex multi-tile arrays. These DNA nanostructures have enabled new applications in biosensing, drug delivery and other multifunctional materials. In this study, we demonstrate real-time, non-destructive and label-free fingerprinting of higher-order assemblies of DNA origami nanostructures using solid-state nanopores. Using this approach, we quantify the assembly yields for each DNA origami nanostructure with single-entity resolution using the nanostructure-induced charge introduced in the nanopore as a discriminant. We compare the assembly yield of the supramolecular DNA nanostructures obtained with the nanopore with agarose gel electrophoresis and AFM imaging and demonstrate that the nanopore system can provide enhanced information about the nanostructures. We envision that this nanopore detection platform can be applied to a range of nanomaterial designs and enable the analysis and manipulation of large DNA assemblies in real-time with single-molecule resolution. STATEMENT OF SIGNIFICANCEWe demonstrate a single molecule high-throughput approach for the analysis of higher-order DNA origami assemblies with a crowded nanopore. The technique enables the characterisation of DNA origami nanostructures at statistically relevant numbers in real-time and at single-molecule resolution while being non-destructive and label-free, and without the requirement of lengthy sample preparations or use of expensive reagents. We exemplify the technique by demonstrating the quantification of the assembly yield of DNA origami nanostructures based on their equivalent charge surplus computed from the ion current signals recorded. Compared to the standard analysis methods of AFM and agarose gel electrophoresis, the nanopore measurements provides enhanced information about the nanostructures.

biophysics↗