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Biology subjects

Adamala, K.

Publications and source records attributed to Adamala, K..

2 recordsLinked to original sources

Nonenzymatic, prebiotic aminoacylation couples chirality of RNA and protein

Life as we know it depends on the homochirality of nucleic acids and proteins. However, there is no widely accepted explanation for why life uses only D-sugars for nucleic acids and L-amino acids for proteins. Here we demonstrate a prebiotically plausible method of nonenzymatic aminoacylation in a water ice-eutectic phase. These reactions produce high yields of aminoacyl-tRNAs, which are active in translation. Surprisingly, we discovered these nonenzymatic aminoacylation conditions were stereoselective, favoring coupling of amino acids and RNA of "opposite" L- and D- configurations. D-RNA shows greater aminoacylation yields for L-amino acids. The opposite was true for L-RNA, which had greater yields with D-amino acids. Nucleic acid backbone chirality influencing stereoselectivity of aminoacylation presents the missing link in the origin of modern biochemistry. This phenomenon provides insight into the chirality of the RNA world, and helps to explain the "opposite" stereochemistry of modern biomolecules.

biochemistry↗

Quencher-free fluorescence monitoring of G-Quadruplex folding

Guanine-rich sequences exhibit a high degree of polymorphism and can form single-stranded, Watson-Crick duplex, and four-stranded G-quadruplex structures. These sequences have found a wide range of uses in synthetic biology applications, arising in part from their structural plasticity. High-throughput, low-cost tools for monitoring the folding and unfolding transitions of G-rich sequences would provide an enabling technology for accelerating prototyping of synthetic biological systems and for accelerating design-build-test cycles. Here, we show that unfolding transitions of a range of G-quadruplex-forming DNA sequences can be monitored in a FRET-like format using DNA sequences that possess only a single dye label, with no quencher. These quencher-free assays can be performed at low cost, with both cost and lead times ca. 1 order of magnitude lower than FRET-labeled strands. Thus, quencher-free secondary structure monitoring promises to be a valuable tool for testing and development of synthetic biology systems employing G-quadruplexes.

biophysics↗