4.2 Article

Identification of the New Type of G-Quadruplex with Multiple Vacant Sites in Human Telomeric DNA

Journal

CCS CHEMISTRY
Volume 4, Issue 9, Pages 3023-3035

Publisher

CHINESE CHEMICAL SOC
DOI: 10.31635/ccschem.021.202101436

Keywords

telomere G-quadruplex; long telomere DNA; single-molecule force spectroscopy; vacant site; folding mechanism

Funding

  1. National Natural Science Foundation of China [21827805, 21525418]

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This study investigated the folding mechanism of tandem G-quadruplexes in human telomeric DNA. A novel G-quadruplex with multiple vacant sites was found, and a two-step process was proposed for the folding of long telomere G-strands.
To date, few studies have reported on the folding mechanism of tandem G-quadruplexes in human telomeric DNA. Hence, the control of the biofunctions of G-quadruplex, which requires a thorough understanding of its dynamic behavior, is limited. Here, we investigated the folding/unfolding behavior of human telomeric sequences with lengths over 10 kilonucleotide (knt) by circular dichroism (CD) spectroscopy, UV melting assay, and atomic force microscopy (AFM)-based single-molecule force spectroscopy. A novel G-quadruplex with multiple vacant sites was captured in the long human telo-meric DNA and denoted as pre-G-quadruplex (pre-GQ). According to the number of vacant sites, pre-GQ is divided into two types (four vacant sites in type 1 and two vacant sites in type 2), among which type 1 is the dominant one. The unfolding force of a tandem pre-GQ was 10 pN lower than that of a complete G-quadruplex, suggesting the destabilized structure of the tandem pre-GQ due to its incompletely folded state. Our results revealed that the folding of long-telomere G-strand could be achieved by a two-step process involving fast transition (in seconds) from unstructured ssDNA to tandem G-hairpin states and slow folding of free guanines into the vacant sites in tetraplex to generate type 1 pre-GQ, type 2 pre-GQ, or complete GQ. [GRAPHICS] .

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