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Biology subjects

Madhanagopal, B. R.

Publications and source records attributed to Madhanagopal, B. R..

3 recordsLinked to original sources

Peptide nucleic acid (PNA) and DNA hybrid three-way junctions and mesojunctions

Three-way junctions are simple and fundamental structural motifs that impart the typical branching property in most DNA nanostructures. While conventional three-way DNA junctions are well-known, mesojunctions are relatively unexplored. Here, we report the synthesis of peptide nucleic acid (PNA)/DNA hybrid three-way conventional and mesojunctions, containing a 14 bp duplex DNA arm and two PNA/DNA hybrid arms. We show that the PNA/DNA mesojunction can be assembled in magnesium-free buffers containing low concentrations of calcium or sodium salts. PNA/DNA hybrid junctions and mesojunctions showed higher thermal stability compared to the DNA versions. Further, PNA/DNA hybrid junctions assembled in sodium exhibited higher nuclease resistance against DNase I. Our results pave the way for PNA/DNA hybrid three-way junctions to be integrated into complex DNA nanostructure designs to improve their structural and enzymatic stability.

synthetic biology↗

Unusual Structural Properties of Switchback DNA

Synthetic DNA motifs form the basis of nucleic acid nanotechnology, and their biochemical and biophysical properties determine their applications. Here, we present a detailed characterization of switchback DNA, a globally left-handed structure composed of two parallel DNA strands. Compared to a conventional duplex, switchback DNA shows lower thermodynamic stability and requires higher magnesium concentration for assembly but exhibits enhanced biostability against some nucleases. Strand competition and strand displacement experiments show that component sequences have an absolute preference for duplex complements instead of their switchback partners. Further, we hypothesize a potential role for switchback DNA as an alternate structure in sequences containing short tandem repeats. Together with small molecule binding experiments and cell studies, our results open new avenues for switchback DNA in biology and nanotechnology.

bioengineering↗

Self-assembly of DNA nanostructures in different cations

The programmable nature of DNA allows the construction of custom-designed static and dynamic nanostructures, and assembly conditions typically require high concentrations of magnesium ions which restricts their applications. In other solution conditions tested for DNA nanostructure assembly, only a limited set of divalent and monovalent ions have been used so far (typically Mg2+ and Na+). Here, we investigate the assembly of DNA nanostructures in a wide variety of ions using nanostructures of different sizes: a double-crossover motif (76 bp), a three-point-star motif ([~]134 bp), a DNA tetrahedron (534 bp) and a DNA origami triangle (7221 bp). We show successful assembly of a majority of these structures in Ca2+, Ba2+, Na+, K+ and Li+ and provide quantified assembly yields using gel electrophoresis and visual confirmation of a DNA origami triangle using atomic force microscopy. We further show that structures assembled in monovalent ions (Na+, K+ and Li+) exhibit up to a 10-fold higher nuclease resistance compared to those assembled in divalent ions (Mg2+, Ca2+ and Ba2+). Our work presents new assembly conditions for a wide range of DNA nanostructures with enhanced biostability.

synthetic biology↗