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Organic molecule-mediated noncanonical DNA self-assembly expands the standard DNA base-pairing alphabets. However, only a very limited number of small molecules have been recognized as mediators because of the tedious and complicated experiments like crystallization and microscopy imaging. Here we present an integrative screening protocol incorporating molecular dynamics (MD) for fast theoretical simulation and native polyacrylamide gel electrophoresis for convenient experimental validation. Melamine, the molecule that was confirmed mediating noncanonical DNA base-pairing, and 38 other candidate molecules were applied to demonstrate the feasibility of this protocol. We successfully identified seven stable noncanonical DNA duplex structures, and another eight novel structures with sub-stability. In addition, we discovered that hairpins at both ends can significantly stabilize the noncanonical DNA structures, providing a guideline to design small organic molecule-incorporated DNA structures. Such an efficient screening protocol will accelerate the design of alternative DNA-molecule architectures beyond Watson-Crick pairs. Considering the wide range of potential mediators, it will also facilitate applications such as noncovalent, highly dense loading of drug molecules in DNA-based delivery system and probe design for sensitive detection of certain molecules.
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http://dx.doi.org/10.1002/anie.202408003 | DOI Listing |
J Am Chem Soc
September 2025
Department of Chemical Engineering and Biotechnology, University of Cambridge, Philippa Fawcett Drive, Cambridge CB3 0AS, U.K.
Biological cells use cations as signaling messengers to regulate a variety of responses. Linking cations to the functionality of synthetic membranes is thus crucial to engineering advanced biomimetic agents such as synthetic cells. Here, we introduce bioinspired DNA-based receptors that exploit noncanonical G-quadruplexes for cation-actuated structural and functional responses in synthetic lipid membranes.
View Article and Find Full Text PDFGenome Biol
September 2025
Department of Orthopaedics and Traumatology, The Chinese University of Hong Kong, Hong Kong SAR, China.
Background: DNA G-quadruplexes (G4s) are non-canonical secondary structures formed in guanine-rich DNA sequences and play important roles in modulating biological processes through a variety of gene regulatory mechanisms. Emerging G4 profiling allows global mapping of endogenous G4 formation.
Results: Here in this study, we map the G4 landscapes in adult skeletal muscle stem cells (MuSCs), which are essential for injury-induced muscle regeneration.
Unlabelled: Kaposi's sarcoma-associated herpesvirus (KSHV) orchestrates late gene transcription through viral transcriptional activators that hijack host RNA polymerase II machinery, maintaining selectivity for viral promoters. Among these, the KSHV protein ORF24 serves as a TATA-binding protein (TBP) mimic essential for recognizing viral late promoters, although the molecular mechanisms underlying its function remain poorly characterized. Here, we used AlphaFold3 to predict the structure of ORF24 in complex with DNA and validated key features in both transfected cells and during KSHV lytic replication.
View Article and Find Full Text PDFBioessays
September 2025
Baker Heart and Diabetes Institute, Melbourne, Victoria, Australia.
Neutrophil extracellular traps (NETs)-web-like DNA structures extruded by neutrophils in response to various stimuli, including pathogens, sterile inflammation, and mechanical stress-play a dual role in immunity and disease. While NETs serve to trap and neutralize pathogens during host defense, excessive or dysregulated NET formation, known as NETosis, can amplify inflammation and contribute to thrombotic complications such as atherosclerosis and valve disease. Increasing evidence supports that NETosis is a regulated, signaling-driven process, and that mechanical forces-including shear stress, tensile force, and matrix stiffness-can act as noncanonical danger signals capable of inducing NETosis.
View Article and Find Full Text PDFBiochemistry
September 2025
Department of Chemistry, Oakland University, Rochester, Michigan 48309, United States.
BRCA1 is a crucial component of homologous recombination (HR), a high-fidelity pathway for repairing double-stranded DNA breaks (DSBs) in human cells. The central region of the BRCA1 protein contains two putative DNA binding domains (DBDs), yet their relative substrate specificities and functional contributions to HR remain unclear. Here, we characterized the DNA binding properties of DBD1 (amino acids 330-554), DBD2 (amino acids 894-1057), and BRCA1 C-terminal (BRCT) repeats using biolayer interferometry.
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