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Single-molecule Manipulation of G-quadruplexes by Magnetic Tweezers
Published on: September 19, 2017
Three-State Unfolding of Telomeric G-Quadruplexes through Conformational Switching in Crowded Cell-like Conditions
Trideep Majumdar1, Pradipta Kumar Das1, Asim Bisoi1
1School of Chemical Science, Indian Association for the Cultivation of Science, Jadavpur, Kolkata 700032, India.
Abstract:
The unfolding of telomeric G-quadruplexes (G4s) is a key step in telomere elongation and regulation. Within cells, the highly crowded intracellular milieu significantly influences the structural stability and dynamics of G4s; however, the molecular mechanism governing their unfolding under such conditions remains poorly understood. In this study, we have investigated the thermal unfolding of various human telomeric G4 sequences in KCl, both in the absence and presence of molecular crowders, using temperature-dependent circular dichroism (CD) spectroscopy combined with singular value decomposition, multivariate curve resolution alternating least-squares (MCR-ALS), and well-tempered metadynamics simulations. In KCl alone, telomeric G4s exhibit a two-state unfolding mechanism, where the hybrid-type topology directly converts into the unfolded random-coil state. In contrast, under crowded conditions, particularly in the presence of hydrophobic crowders, the unfolding follows a three-state pathway involving a distinct intermediate. The hybrid structure initially transitions to a parallel-type topology at elevated temperatures before fully unfolding. This stabilization of the parallel topology arises from preferential interactions between hydrophobic crowders and the exposed loop nucleobases of the parallel G4 form. On the other hand, hydrophilic crowders exert minimal influence on the unfolding pathway, which remains similar to that observed in KCl solution. Overall, these findings provide molecular-level insights into the unfolding process of telomeric G4 DNA in crowded cell-like environments and may be useful in understanding the complex telomere elongation process.
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