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Biology subjects

Kiliszek, A.

Publications and source records attributed to Kiliszek, A..

3 recordsLinked to original sources

Antisense RNA C9orf72 Hexanucleotide Repeat Associated With Amyotrophic Lateral Sclerosis and Frontotemporal Dementia Forms A Triplex-Like Structure and Binds Small Synthetic Ligand

The abnormal expansion of GGGGCC/CCCCGG hexanucleotide repeats (HR) in C9orf72 is associated with familial amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD). Structural polymorphisms of HR result in the multifactorial pathomechanism of ALS/FTD. Consequently, many ongoing studies are focused at developing therapies targeting pathogenic HR RNA. One of them involves small molecules blocking the sequestration of important proteins, preventing the formation of toxic nuclear foci. However, rational design of potential therapeutics is hindered by limited number of structural studies of RNA-ligand complexes. We determined the crystal structure of antisense HR RNA in complex with ANP77 ligand and in the free form. HR RNA folds into a triplex structure composed of four RNA chains. ANP77 interacted with two neighboring single-stranded cytosines to form pseudo-canonical base pairs by adopting sandwich-like conformation and adjusting the position of its naphthyridine units to the helical twist of the RNA. In the unliganded structure, the cytosines formed a peculiar triplex i-motif, assembled by trans C*C+ pair and a third cytosine located at the Hoogsteen edge of the C*C+ pair. These results extend our knowledge of the structural polymorphisms of HR and can be used for the rational design of small molecules targeting disease-related RNAs.

molecular biology↗

Structure and thermodynamics of a UGG motif interacting with Ba2+ and other metal ions: accommodating changes in the RNA structure and the presence of a G(syn)-G(syn) pair

The self-complementary triplet 5UGG3/5UGG3 is a particular structural motif containing noncanonical G-G pair and two U{middle dot}G wobble pairs. It constitutes a specific structural and electrostatic environment attracting metal ions, particularly Ba2+ ions. Crystallographic research has shown that two Ba2+ cations are located in the major groove of the helix and interact directly with the UGG triplet. A comparison with the unliganded structure has revealed global changes in the RNA structure in the presence of metal ions, whereas thermodynamic measurements have shown increased stability. Moreover, in the structure with Ba2+, an unusual noncanonical G(syn)-G(syn) pair is observed instead of the common G(anti)-G(syn). We further elucidate the metal binding properties of the UGG/UGG triplet by performing crystallographic and thermodynamic studies using DSC and UV melting with other metal ions. The results explain the preferences of the UGG sequence for Ba2+ cations and point to possible applications of this metal-binding propensity.

molecular biology↗

Exploring structural determinants and the role of nucleolin in formation of the long-range interaction between untranslated regions of p53 mRNA

p53 protein is a key regulator of cellular homeostasis by coordinating framework of anti-proliferative pathways as a response to various stress factors. Although the main mechanism of stress-dependent induction of p53 protein relies on posttranslational modifications influencing its stability and activity, a growing number of evidences suggest that complex regulation of p53 expression occurs also at the mRNA level. This study explore structural determinants of long-range RNA-RNA interaction in p53 mRNA, crucial for stress-dependent regulation of p53 protein translation. We demonstrate that the eight nucleotide bulge motif plays a key structural role in base pairing of complementary sequences from the 5 and 3 untranslated regions of p53 mRNA. We also show that one of the p53 translation regulators, nucleolin, displays an RNA chaperone activity and facilitates the association of sequences involved in the formation of long-range interaction in p53 mRNA. Mutational analysis reveal that all four RNA recognition motifs are indispensable for optimal RNA chaperone activity of nucleolin. These observations help to decipher the unique mechanism of p53 protein translation regulation pointing bulge motif and nucleolin as the critical factors during intramolecular RNA-RNA recognition in p53 mRNA.

molecular biology↗