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Evaluating DNA impurities in recombinant adeno-associated virus

A new study found that recombinant adeno-associated virus (rAAV) capsids contain single-stranded DNA impurities derived from plasmid and host cell DNA. The researchers suggest that the adverse effects of these impurities may differ from those of double-stranded DNA, highlighting the need for further evaluation.

SourceMary Ann Liebert, Inc./Genetic Engineering News·JournalHuman Gene Therapy·TypeExperimental study·DateMar 22, 2025

A protein from tiny tardigrades may help cancer patients tolerate radiation therapy

Researchers have developed a new strategy to protect cancer patients from radiation-induced DNA damage using a protein from tardigrades. The approach makes use of messenger RNA encoding the protein, which is delivered to patient tissues before radiation treatment. This reduces double-stranded DNA breaks by 50% in mouse models.

SourceMassachusetts Institute of Technology·JournalNature Biomedical Engineering·DateFeb 26, 2025

New technique reveals earliest signs of genetic mutations

Researchers developed a new technique called HiDEF-seq to detect early molecular changes in DNA code that precede mutations. The study found higher numbers of single-strand DNA changes in healthy cells from people with genetic syndromes linked to cancer, suggesting a link between these changes and the development of cancer.

SourceNYU Langone Health / NYU Grossman School of Medicine·JournalNature·TypeExperimental study·DateJun 12, 2024

Sting operation out of gas

Researchers question whether micronuclei activate the cGAS-STING pathway, a key innate immune response to foreign nucleic acids. The study found that MN more commonly recognizes DNA during cell division without triggering STING activation.

SourceKyoto University·JournalLife Science Alliance·TypeExperimental study·DateMar 11, 2024

DNA origami folded into tiny motor

Researchers have developed a working nanoscale electromotor powered by hydrodynamic flow through a nanopore. This innovation uses DNA origami to create a turbine with precise control over rotational speed and direction. The tiny motor has potential applications in molecular factories, medical probes, and soft propulsion systems.

SourceUniversity of Texas at Austin·JournalNature Nanotechnology·TypeComputational simulation/modeling·DateJan 19, 2024

Scientists piece together DNA repair pathway implicated in breast, ovarian, and prostate cancers

Researchers at UNC School of Medicine have pieced together the lesser-known DNA repair pathway, polymerase theta-mediated end joining (TMEJ), which is upregulated in patients with hereditary breast cancer, ovarian cancer, and prostate cancer. The discovery could lead to new therapies for cancer by targeting this pathway.

Deadly communication

Researchers developed a new strategy for T-cell-based immunotherapy using aptamers, which directly activates immune cells against cancer cells without genetic modifications. The innovative regulatory circuit establishes an artificial interaction between T cells and cancer cells.

SourceWiley·JournalAngewandte Chemie International Edition·TypeExperimental study·DateAug 23, 2023

Rice models moving ‘washers’ that help DNA replicate

Researchers have modelled a key mechanism by which DNA replicates, revealing details about how helicases wrangle DNA during replication. The simulations showed each step of translocation can travel more than 12 nucleotides along the backbone, pinpointing interactions involved in long-distance movement.

SourceRice University·JournalProceedings of the National Academy of Sciences·TypeComputational simulation/modeling·DateAug 9, 2022

Physical mechanisms explaining DNA and RNA twist changes

Researchers developed a simple physical model to explain DNA deformations caused by ions and temperature changes. The model reveals that salt-induced twist changes are driven by electrostatic interactions, while temperature-induced changes are related to DNA diameter variation. These findings provide new insights into the molecular mec...

SourceCity University of Hong Kong·JournalScience Advances·TypeObservational study·DateJun 6, 2022

Artificial cell membrane channels composed of DNA can be opened and locked with a key

Researchers at Arizona State University have designed and constructed artificial membrane channels using DNA, allowing selective transport of ions, proteins, and cargo. The channels can be opened and closed with a lock and key mechanism, enabling diverse scientific domains such as biosensing and drug delivery applications.

SourceArizona State University·JournalNature Communications·TypeExperimental study·DateMay 10, 2022

A new era of mitochondrial genome editing has begun

Scientists have successfully developed a gene-editing platform called TALED that can perform A-to-G base conversion in mitochondria, the final missing piece of the puzzle in gene-editing technology. This breakthrough has significant implications for treating previously incurable genetic diseases caused by mutations in mitochondrial DNA.

SourceInstitute for Basic Science·JournalCell·TypeExperimental study·DateApr 25, 2022

DNA design brings predictability to polymer gels

Researchers at Hokkaido University have developed a tuneable, elastic and temperature-sensitive gel by using complementary DNA strands to connect star-shaped polymer molecules together. The gel exhibits predictable behavior, self-healing properties and durability suitable for medical and engineering applications.

SourceHokkaido University·JournalAdvanced Materials·TypeExperimental study·DateFeb 16, 2022

Synthetic molecule invades double-stranded DNA

Researchers at Carnegie Mellon University developed a synthetic molecule that can recognize and bind to double-stranded DNA or RNA under normal physiological conditions. The Janus gamma PNAs have an extraordinarily high binding energy and can be designed to target genomic DNA for gene editing and transcriptional regulation.

SourceCarnegie Mellon University·JournalCommunications Chemistry·DateNov 12, 2018

Anti-DNA antibody prefers damaged dsDNA over native

Researchers found that anti-DNA antibodies preferentially bind to damaged double-stranded DNA (dsDNA) over native DNA, contributing to the pathogenesis of autoimmune diseases. This study provides mechanistic insight into the formation and properties of pathogenic anti-DNA antibodies.

SourceKazan Federal University·JournalJournal of Biomolecular Structure and Dynamics·DateJun 3, 2016

DNA helicity and elasticity explained on the nanoscale

Researchers developed a simple mechanical model to effectively explain DNA's double-stranded structure and elasticity at the nanoscale. The model shows how extreme conditions can cause DNA conformational changes, and its extension is used to study various phenomena such as sequence heterogeneity and protein-DNA interaction.

SourceSpringer·JournalJournal of Biological Physics·DateDec 5, 2013

DNA's double stranded stretch

Researchers used a coupled discrete wormlike chain-Ising model to simulate DNA stretching and confirm two structural transitions at forces of around 65 pN and 135 pN. Beyond 135 pN, DNA strands peel apart into single-stranded DNAs similar to those obtained through thermal denaturation.

SourceSpringer·JournalThe European Physical Journal E·DateOct 25, 2012

DNA caught rock 'n rollin'

Researchers at University of Michigan and University of California, Irvine discover DNA's building blocks 'rock and roll,' forming alternative structures with Hoogsteen base pairs. These fleeting states contain new layers of information stored in the genetic code, shedding light on critical interactions between DNA and proteins.

SourceUniversity of Michigan·JournalNature·DateJan 28, 2011

UC nanotech researchers develop artificial pore

Researchers at the University of Cincinnati have successfully developed an artificial pore that can transmit double-stranded DNA through a membrane. The engineered channel was created by inserting the modified core of a nanomotor into a lipid membrane, allowing for the movement of single- and double-stranded DNA.

SourceUniversity of Cincinnati·JournalNature Nanotechnology·DateSep 28, 2009

Small molecule inhibits pathology associated with myotonic dystrophy type 1

Researchers at the University of Illinois have designed a small molecule that blocks an aberrant pathway associated with myotonic dystrophy type 1. The new compound, Ligand 1, binds tightly to its target, preventing the MBNL protein from binding to RNA and easing symptoms of the disease.

SourceUniversity of Illinois at Urbana-Champaign, News Bureau·JournalProceedings of the National Academy of Sciences·DateSep 7, 2009