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Flexible DNA transforms protein crystallization

Northwestern University chemists have developed a new approach that replaces traditional trial-and-error methods with intentional design using flexible DNA strands. The strategy enables precise control over protein connections, creating soft, flexible crystals with high structural order. This breakthrough simplifies one of structural b...

SourceNorthwestern University·JournalScience Advances·DateJul 29, 2026

Development of a new technology for controlled interstrand linking of DNA

Researchers at Tohoku University have developed a new technology that uses thioguanosine to achieve highly efficient and controllable interstrand crosslinking of DNA. This breakthrough enables reversible DNA modification with high stability and reversibility, opening opportunities for next-generation bionanomaterials.

SourceTohoku University·JournalCommunications Chemistry·DateFeb 16, 2026
Anker Laptop Power Bank 25,000mAh (Triple 100W USB-C)

Anker Laptop Power Bank 25,000mAh (Triple 100W USB-C) keeps Macs, tablets, and meters powered during extended observing runs and remote surveys.

Twisted strand of life: Nanopores reveal DNA entanglements

Researchers discovered plectonemes, DNA supercoils that form when DNA passes through narrow channels, producing a characteristic signature in current measured during translocation. This study provides insights into DNA organization and integrity, enabling the detection of twisted structures using nanopores.

SourceScuola Internazionale Superiore di Studi Avanzati·JournalPhysical Review X·TypeComputational simulation/modeling·DateAug 19, 2025
SAMSUNG T9 Portable SSD 2TB

SAMSUNG T9 Portable SSD 2TB transfers large imagery and model outputs quickly between field laptops, lab workstations, and secure archives.

Bringing DNA computing to life

A comprehensive review explores DNA computing circuits operating within living cells, leveraging dynamic nanodevices powered by DNA strand displacement reactions. Key findings include the integration of computational principles with random biochemical processes and chemical reactions in biological systems.

SourceIntelligent Computing·JournalIntelligent Computing·DateApr 8, 2025
Meta Quest 3 512GB

Meta Quest 3 512GB enables immersive mission planning, terrain rehearsal, and interactive STEM demos with high-resolution mixed-reality experiences.

Scientists discover mechanism driving molecular network formation

Researchers identified a new property, interface flexibility, controlling how molecules self-organize into crystalline supramolecular networks. Interface flexibility was found to be more important than chemical bond strength or number in forming stable hexagonal networks.

SourceEcole Polytechnique Fédérale de Lausanne·JournalNature Chemistry·TypeExperimental study·DateFeb 13, 2025

Harnessing nature’s code for data storage

The new approach utilizes epigenetic principles to encode digital information onto existing DNA strands, significantly increasing storage capacity and reducing costs. The technique enables the storage of vast amounts of data in a minuscule space for long durations, offering a major shift from conventional storage technologies.

SourceArizona State University·JournalNature·TypeExperimental study·DateOct 25, 2024

Researchers offer alternative to hydroxyurea in study of DNA replication process

Researchers at Colorado State University have identified an alternate method to study changes during the DNA replication process in lab settings using genetically modified yeast. This new approach provides a less toxic and quickly reversible alternative to hydroxyurea, allowing for better insight into cell cycle arrest mechanisms.

SourceColorado State University·JournalProceedings of the National Academy of Sciences·DateOct 16, 2024
Rigol DP832 Triple-Output Bench Power Supply

Rigol DP832 Triple-Output Bench Power Supply powers sensors, microcontrollers, and test circuits with programmable rails and stable outputs.

Discovery of key protein that helps cells maintain their identity

A study published in Cell reveals that Mrc1 is crucial for epigenetic inheritance, ensuring cells maintain their genetic identity and function. The discovery has significant implications for understanding diseases like cancer and aging, where epigenetic landscapes deteriorate over time.

SourceUniversity of Copenhagen - The Faculty of Health and Medical Sciences·JournalCell·TypeObservational study·DateAug 13, 2024

Researchers capture never-before-seen view of gene transcription

A team of scientists captured a clear picture of the structural changes and intermediates that form during the initial stages of RNA polymerase binding to DNA. The findings provide new insights into the fundamental mechanisms of transcription and shed light on long-standing questions about the initiation mechanism.

SourceRockefeller University·JournalNature Structural & Molecular Biology·DateJul 3, 2024

How cells boost gene expression

A research team from Göttingen University has discovered that antisense RNA (asRNA) plays a crucial role in cell transport, allowing cells to accelerate gene expression and produce proteins quickly in response to environmental stress or harm. This new understanding sheds light on the function of asRNAs and their potential link to disea...

SourceUniversity of Göttingen·JournalNature·TypeExperimental study·DateJun 24, 2024
Apple iPhone 17 Pro

Apple iPhone 17 Pro delivers top performance and advanced cameras for field documentation, data collection, and secure research communications.

How E. coli defends itself against antibiotics

When E. coli detects damage from antibiotic Ciprofloxacin, it sends out an SOS signal that alters cellular activity. The bacteria then mutate their DNA to repair the damage or adapt to resist the antibiotic. Researchers studied this process in detail using bioreactors and found all genes are activated simultaneously at the protein level.

SourceNorwegian University of Science and Technology·JournalFrontiers in Microbiology·TypeExperimental study·DateJun 20, 2024

Beethoven's genes reveal low predisposition for beat synchronization

Researchers analyzed Beethoven's DNA to investigate his genetic musical predisposition, finding an unremarkable polygenic score compared to population samples. The study suggests that while DNA contributes to musical skills, environment plays a key role in musical ability and engagement.

SourceVanderbilt University Medical Center·JournalCurrent Biology·DateMar 26, 2024

DNA attached to nanoparticles contributes to lupus symptoms

A new study by Duke University researchers provides fundamental insights into autoimmune diseases, including systemic lupus erythematosus. They developed a system to test how DNA attached to nanoparticles interact with the immune system, revealing that larger nanoparticles provide more protection for DNA.

SourceDuke University·JournalProceedings of the National Academy of Sciences·TypeExperimental study·DateMar 21, 2024

Double trouble at chromosome ends

Scientists have discovered two new end-replication problems in DNA replication, affecting both the leading and lagging strands. This revelation changes our understanding of telomere biology and may hold clinical implications for individuals with telomere disorders, such as Coats plus syndrome.

SourceRockefeller University·JournalNature·DateFeb 28, 2024
Davis Instruments Vantage Pro2 Weather Station

Davis Instruments Vantage Pro2 Weather Station offers research-grade local weather data for networked stations, campuses, and community observatories.

New cause of neuron death in Alzheimer's discovered

Researchers at Northwestern University have discovered that toxic short RNAs contribute to neuron death and DNA damage in Alzheimer's disease. Studies found that older individuals with superior memories have higher amounts of protective short RNA strands in their brains.

SourceNorthwestern University·JournalNature Communications·TypeExperimental study·DateJan 18, 2024

Scientists develop novel base editors

CyDENT base editors allow efficient and precise modification of genetic information in living organisms. The system enables strand-specific base editing in nuclear and organellar genomes, with high strand specificity demonstrated in mitochondrial genome editing.

SourceChinese Academy of Sciences Headquarters·JournalNature Biotechnology·TypeExperimental study·DateAug 28, 2023

Cutting-edge imaging technique shines light on how DNA strands stack up

Researchers used DNA-PAINT to study base-stacking interactions in DNA strands, finding that adding one more interaction increases stability by up to 250 times. This information allowed them to design a highly efficient three-armed DNA nanostructure with potential biomedical applications.

SourceIndian Institute of Science (IISc)·JournalNature Nanotechnology·DateAug 17, 2023
Garmin GPSMAP 67i with inReach

Garmin GPSMAP 67i with inReach provides rugged GNSS navigation, satellite messaging, and SOS for backcountry geology and climate field teams.

New tool provides greater accuracy for medical biosensors

Researchers at the University of Missouri have developed a new method using nanopores to advance discoveries in neuroscience and medical applications. The technique allows for real-time detection of dynamic aptamer-small molecule interactions, which can aid in understanding DNA and RNA diseases and drug discovery.

SourceUniversity of Missouri-Columbia·JournalProceedings of the National Academy of Sciences·DateAug 8, 2023

Revolutionary new method can manipulate the shape and packing of DNA

Researchers have developed a new method to manipulate the shape of double-stranded DNA, known as triplex origami, which can create compacted structures with unique properties. This breakthrough has implications for gene therapy, nanoscale materials engineering, and our understanding of biological processes.

SourceAarhus University·JournalAdvanced Materials·TypeExperimental study·DateJun 16, 2023

A multiomics approach provides insights into flu severity

Researchers used a multiomics approach to analyze changes in transposable elements after influenza A virus infection, identifying transcription factors contributing to individual responses. The study provides insights into the variable severity of illness among individuals infected with the same virus.

SourceKyoto University·JournalCell Genomics·TypeExperimental study·DateMay 22, 2023

How cells select DNA damage repair pathways

Researchers discovered that MSH2-MSH3 plays a crucial role in selecting the right DNA repair process by interacting with other proteins during DSB repair. This interaction facilitates error-free homologous recombination and blocks error-prone polymerase theta-mediated end-joining.

SourceInstitute for Basic Science·JournalNucleic Acids Research·TypeExperimental study·DateMay 18, 2023

CNIO researchers help to understand the functioning of the protein that makes DNA loops in the human genome

Researchers at the CNIO have elucidated a key point about how cohesin attaches to DNA and forms loops. The study suggests that NIPBL is not necessary for cohesin to bind to DNA, but only for it to move and form DNA loops. This finding may be important in understanding Cornelia de Lange syndrome.

SourceCentro Nacional de Investigaciones Oncológicas (CNIO)·JournalNature Communications·TypeExperimental study·DateMar 29, 2023
GoPro HERO13 Black

GoPro HERO13 Black records stabilized 5.3K video for instrument deployments, field notes, and outreach, even in harsh weather and underwater conditions.

Breaking bonds: Double-helix unzipping reveals DNA physics

Researchers reconstructed thermodynamics of double helix formation and breaking using simulated DNA unzipping speed. The technique can be applied to other molecular systems, including molecular motors.

SourceScuola Internazionale Superiore di Studi Avanzati·JournalPhysical Review Letters·TypeComputational simulation/modeling·DateMar 17, 2023

Fishing for proteins: Scientists use new optical tweezer technology to study DNA repair

Researchers used C-trap technology to investigate how different DNA repair proteins identify and bind to their respective forms of damage. They found that some proteins arrived at the damage site together and departed together, while others showed surprising variability in their association and dissociation patterns. The study provides...

SourceUniversity of Pittsburgh·JournalNucleic Acids Research·TypeExperimental study·DateMar 1, 2023

Argonaute protein slicing and retention of RNA fragments plays a role in the chemical modification of DNA for gene silencing

A team led by Dr. Feng Wang found that Argonaute 4 binds to and retains snippets of ribonucleic acid molecules guiding the chemical inactivation of genes with matching sequences, playing a crucial role in gene silencing through DNA methylation. The retained RNA fragments help tether AGO4-RNA complexes to corresponding DNA sequences, bo...

SourceIndiana University·JournalGenes & Development·TypeObservational study·DateFeb 6, 2023
Fluke 87V Industrial Digital Multimeter

Fluke 87V Industrial Digital Multimeter is a trusted meter for precise measurements during instrument integration, repairs, and field diagnostics.

Fastening enzyme seals the deal in genome repair

Researchers at KAUST have discovered the molecular mechanisms of DNA repair by studying the interaction between two enzymes, Lig1 and PCNA. Lig1 seals nicks in DNA by attaching to a ring-shaped protein called PCNA, which dislodges another enzyme FEN1 to prepare for sealing.

SourceKing Abdullah University of Science & Technology (KAUST)·JournalNature Communications·DateJan 24, 2023

A unique approach for studying changes in chemical markers on DNA

A new method, iDEMS, uses quantitative mass spectrometry to measure DNA modifications on purified, replicated DNA. This approach reveals that DNA methylation levels increase steadily after replication and are eventually diluted by cell division.

SourceUniversity of Copenhagen - The Faculty of Health and Medical Sciences·JournalNature Cell Biology·DateJan 12, 2023

DNA repair scheme gets closer look for cancer therapy

Researchers at Rice University and St. Jude Children’s Research Hospital discovered the structural basis of DNA polymerase theta-mediated microhomology-mediated end joining, a process complementary to homologous recombination and non-homologous end joining. This mechanism could be a promising target for precision cancer therapy.

SourceRice University·JournalNucleic Acids Research·TypeExperimental study·DateJan 6, 2023
Kestrel 3000 Pocket Weather Meter

Kestrel 3000 Pocket Weather Meter measures wind, temperature, and humidity in real time for site assessments, aviation checks, and safety briefings.

Radiation damage to paternal DNA is passed on to offspring

Researchers discovered that radiation damage to paternal DNA is passed on to offspring through a highly error-prone repair mechanism. This leads to structural changes in the paternal chromosomes and causes developmental defects. Histone proteins play a crucial role in shielding damaged chromosomes from accurate repair.

SourceUniversity of Cologne·JournalNature·TypeObservational study·DateDec 21, 2022

Explaining the DNA repair mechanism

A recent study has unveiled how nucleotide excision repair (NER) is controlled at the molecular level, shedding light on its role in cancer treatment. The research revealed that TFIIH uses XPG to stimulate motor activity and locate damaged DNA, licensing XPG nuclease activity to excise it.

SourceKing Abdullah University of Science & Technology (KAUST)·JournalNucleic Acids Research·DateDec 8, 2022

Review of fluorescent probes for detecting G-Quadruplex DNA

G-Quadruplex DNA structures play a crucial role in regulating genes and cell processes, but their visualization is challenging due to the dynamic nature of double standard DNA. Fluorescence-active small molecule probes have emerged as a real-time visualization method, enabling researchers to detect G-quadruplexes with high selectivity.

SourceBentham Science Publishers·JournalCurrent Organic Chemistry·DateDec 8, 2022
GQ GMC-500Plus Geiger Counter

GQ GMC-500Plus Geiger Counter logs beta, gamma, and X-ray levels for environmental monitoring, training labs, and safety demonstrations.

New CRISPR-based tool inserts large DNA sequences at desired sites in cells

The new PASTE tool combines precise targeting of CRISPR-Cas9 with integrases to insert large chunks of DNA into the genome without inducing double-stranded breaks. This approach holds promise for treating diseases with multiple mutations, such as cystic fibrosis, with high efficiency and minimal unwanted effects.

SourceMassachusetts Institute of Technology·JournalNature Biotechnology·DateNov 24, 2022

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
Sky & Telescope Pocket Sky Atlas, 2nd Edition

Sky & Telescope Pocket Sky Atlas, 2nd Edition is a durable star atlas for planning sessions, identifying targets, and teaching celestial navigation.

Sperm are masters of Tetris packing

Researchers discovered that the process of hypercondensation, where DNA is compressed, relies on a second type of protamine, PRM2, which may be crucial for fertility. The study sheds light on the complex mechanism behind sperm development and could lead to new treatments for male infertility.

SourceUniversity of Bonn·JournalPLOS Genetics·DateJul 11, 2022

“Soft” CRISPR may offer a new fix for genetic defects

A new CRISPR strategy, employing natural DNA repair machinery, provides a foundation for novel gene therapy strategies to cure genetic diseases. The technique, known as homologous chromosome-templated repair, uses "nicks" of single DNA strands to correct genetic defects.

SourceUniversity of California - San Diego·JournalScience Advances·TypeExperimental study·DateJul 1, 2022

Scientists engineer synthetic DNA to study “architect” genes

Researchers at New York University have created artificial Hox genes using synthetic DNA technology and genomic engineering in stem cells. The findings confirm that clusters of Hox genes help cells learn and remember where they are in the body, with no other genes needed to be present.

SourceNew York University·JournalScience·DateJun 30, 2022

The emergence of form: New study expands horizons for DNA nanotechnology

A new study explores the characteristics of 36 basic variants of the Holliday junction, a fundamental building block used in DNA nanoforms. The results show that sequences forming the four protruding arms of the junction can enhance or hinder crystallization processes.

SourceArizona State University·JournalNature Communications·TypeMeta-analysis·DateJun 28, 2022
Apple MacBook Pro 14-inch (M4 Pro)

Apple MacBook Pro 14-inch (M4 Pro) powers local ML workloads, large datasets, and multi-display analysis for field and lab teams.

Aging-US | WRNing for the right DNA repair pathway choice

A recent study published in Aging-US reveals the crucial role of WRN in making choices between classical and alternative non-homologous end joining (NHEJ) DNA repair pathways. The research provides new insights into progeroid syndromes, such as Werner syndrome, and their connection to aging.

SourceImpact Journals LLC·JournalAging-US·TypeExperimental study·DateJun 16, 2022

Cancer Grand Challenge: Solving the mystery of DNA rings

A team led by Professor Anton Henssen is investigating extrachromosomal DNA (ecDNA) in cancer research. The researchers aim to understand how DNA rings contribute to tumor aggressiveness and develop effective therapies to slow them down.

SourceMax Delbrück Center for Molecular Medicine in the Helmholtz Association·DateJun 16, 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

Novel supramolecular CRISPR–Cas9 carrier enables more efficient genome editing

A team of researchers from Kumamoto University has developed a transformable polyrotaxane carrier that can facilitate genome editing using Cas9RNP with high efficiency. The carrier, called amino-PRX, is multi-step transformable and has low cytotoxicity, making it an enormously promising candidate for safe and efficient delivery.

SourceKumamoto University·JournalApplied Materials Today·TypeExperimental study·DateMay 11, 2022
Nikon Monarch 5 8x42 Binoculars

Nikon Monarch 5 8x42 Binoculars deliver bright, sharp views for wildlife surveys, eclipse chases, and quick star-field scans at dark sites.

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

Crystal study may resolve DNA mystery

A study by Rice University bioscientists has revealed the presence of a central metal ion critical to DNA replication and implicated in misincorporation. The research found that three metal ions are involved in the process, with the first supporting nucleotide binding and the second stabilizing the binding of loose nucleotides. This di...

SourceRice University·JournalNature Communications·TypeExperimental study·DateMay 9, 2022

Quantum mechanics could explain why DNA can spontaneously mutate

A team of physicists and chemists at the University of Surrey used computer modeling to show that quantum mechanics can cause errors in DNA replication, leading to mutations. The researchers found that protons can tunnel through energy barriers, causing mistakes in the pairing of DNA bases.

SourceUniversity of Surrey·JournalCommunications Physics·TypeComputational simulation/modeling·DateMay 5, 2022
CalDigit TS4 Thunderbolt 4 Dock

CalDigit TS4 Thunderbolt 4 Dock simplifies serious desks with 18 ports for high-speed storage, monitors, and instruments across Mac and PC setups.

The future of data storage is double-helical, research indicates

A team of researchers has developed a DNA-based data storage platform with an expanded molecular alphabet, enabling the storage of vast amounts of digital information. The new system uses nanopores to distinguish between natural and chemically modified nucleotides, increasing storage density and sustainability.

SourceBeckman Institute for Advanced Science and Technology·JournalNano Letters·TypeExperimental study·DateMar 3, 2022