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Two proteins, one goal: New findings on stem cell differentiation

Researchers from The University of Osaka have discovered a two-factor system that controls stem cell differentiation, involving the stabilization of the CoREST corepressor complex at gene promoters. This process prevents stem cells from drifting towards differentiation and maintaining their pluripotency.

SourceThe University of Osaka·JournalCell Reports·TypeExperimental study·DateMay 11, 2026

How a critical enzyme keeps potentially dangerous genes in check

Cells employ a protein network to repress TE activity and keep themselves healthy. O-GlcNAc transferase (OGT) is a lead choreographer in this process, protecting cells from genomic instability by restraining TET activity.

SourceLa Jolla Institute for Immunology·JournalNature Structural & Molecular Biology·TypeExperimental study·DateMar 28, 2025
Apple iPhone 17 Pro

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

LJI researchers shed light on devastating blood diseases

Scientists have discovered how a mutated ASXL1 gene disrupts normal blood cell development, leading to diseases such as clonal hematopoiesis and malignant leukemias. The study reveals that mutated ASXL1 causes heterochromatin dysfunction, silencing genes essential for blood cell maturation.

SourceLa Jolla Institute for Immunology·JournalProceedings of the National Academy of Sciences·TypeExperimental study·DateJan 8, 2025

Texas A&M researcher receives grant for work on phase separation

Dr. Jeetain Mittal's NIH grant will support multiscale computational models investigating phase separation in biology, particularly heterochromatin formation and its role in neurodegenerative diseases. The research aims to elucidate the molecular origins of phase separation using innovative models and methods.

SourceTexas A&M University·DateJun 11, 2024
Meta Quest 3 512GB

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

New fluorescent approach reveals different DNA densities in stem cells

Researchers have developed a new method to study the inner workings of cell nuclei during embryonic stem cell differentiation. By using fluorescent proteins, they found that biomaterials become more uniformly distributed as cells mature, resembling oil droplets in water, but with intriguing complexities.

SourceThe Hebrew University of Jerusalem·JournalNature Communications·TypeExperimental study·DateSep 10, 2023

Editorial: Epigenetic aging in oocytes

The editorial discusses epigenetic mechanisms leading to oocyte quality loss, a significant factor in age-related fertility decline. Researchers highlight the importance of understanding this process to address the growing issue of advanced maternal age and its impact on reproduction.

SourceImpact Journals LLC·JournalAging-US·TypeCommentary/editorial·DateAug 30, 2023

An epigenetic approach to modulating aging with nutrition and exercise

Researchers from the ALFA Score Consortium explore how nutrition and physical exercise can positively impact the aging process by modifying epigenetic changes. They find that healthy aging is associated with more tightly condensed chromatin, fewer histone post-translational modifications, and greater regulation by non-coding RNAs.

SourceImpact Journals LLC·JournalAging-US·TypeCommentary/editorial·DateMay 10, 2023

Weiss-Kruszka syndrome and the failure to establish neuronal identity

Researchers identified the molecular mechanism underlying Weiss-Kruszka syndrome, a rare neurodevelopmental disorder characterized by craniofacial anomalies and autistic features. The study reveals that the ZFP462 gene mutation leads to a failure to safeguard neural lineage specification during early embryonic development.

SourceIMBA- Institute of Molecular Biotechnology of the Austrian Academy of Sciences·JournalNature Cell Biology·TypeExperimental study·DateJan 5, 2023

The guardian of the (epi-)genome

A research team led by Ivano Amelio found that the protein p53 acts as a key to maintaining genomic stability, preventing cancer-promoting mutations. Without p53, cells become more aggressive and prone to acquire genomic instability.

SourceUniversity of Konstanz·JournalCell Reports·DateNov 2, 2022
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.

Finding an RNA target and tool to fight premature aging

Scientists have identified long interspersed nuclear element-1 (L1) RNA as a promising new target for treating progeroid syndromes. Increased L1 RNA expression in cells from patients with these disorders led to deactivation of an enzyme, causing cell aging.

SourceKing Abdullah University of Science & Technology (KAUST)·JournalScience Translational Medicine·DateOct 4, 2022

“Kipferl”: Guiding the defense against jumping genes

Researchers at IMBA found that Kipferl helps distribute Rhino to piRNA clusters, avoiding sequestration to Satellite arrays. This control mechanism ensures the effective silencing of jumping genes and maintains genome stability.

SourceIMBA- Institute of Molecular Biotechnology of the Austrian Academy of Sciences·JournaleLife·TypeExperimental study·DateOct 4, 2022

Dynamic nature of genome-protecting DNA may offer clues to fight cancer

Researchers propose a new paradigm for analyzing genetic mutations that may lead to cancer after finding varying levels of heterochromatin, a key player in genomic stability. The study reveals that heterochromatin is dynamic and not stable, increasing the rate of mutation.

SourceUniversity of Arizona Health Sciences·JournalProceedings of the National Academy of Sciences·DateJun 16, 2022
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.

New human reference genome opens unexplored regions

The new reference genome provides a more complete sequence of the human genome, shedding light on long-running mysteries surrounding centromeres and heterochromatin. This breakthrough enables researchers to better understand gene expression, variation, and epigenetic mechanisms.

SourceUniversity of California - Davis·JournalScience·TypeExperimental study·DateMar 31, 2022

Researchers find new protein conducting piRNA expression

A new protein, UAD-2, has been identified as essential for the genesis of piRNAs in Caenorhabditis elegans. The protein and its associated complex colocalize with histone marks in the nucleus.

SourceUniversity of Science and Technology of China·JournalProceedings of the National Academy of Sciences·DateJul 15, 2021

Silencing by crosstalk

Researchers have identified the SFiNX complex as a key player in silencing transposons through a DNA-RNA crosstalk mechanism. This interaction enables other domains within the complex or co-recruited silencing effectors to establish heterochromatin, leading to gene expression regulation.

SourceIMBA- Institute of Molecular Biotechnology of the Austrian Academy of Sciences·JournalGenes & Development·DateFeb 16, 2021

Genome-editing tool TALEN outperforms CRISPR-Cas9 in tightly packed DNA

Researchers have discovered that TALEN is up to five times more efficient than CRISPR-Cas9 in targeting densely packed DNA regions, including those causing fragile X syndrome and sickle cell anemia. This breakthrough adds to the need for a broader selection of genome-editing tools to target all parts of the genome.

SourceUniversity of Illinois at Urbana-Champaign, News Bureau·JournalNature Communications·DateJan 27, 2021
Creality K1 Max 3D Printer

Creality K1 Max 3D Printer rapidly prototypes brackets, adapters, and fixtures for instruments and classroom demonstrations at large build volume.

Proteins -- and labs -- coming together to prevent Rett syndrome

Researchers have made new discoveries about the disruption of condensates in Rett syndrome, a neurodevelopmental disorder. The study found that MeCP2's condensate-forming ability is disrupted in Rett syndrome and suggests that therapies targeting condensates associated with the protein may be promising.

SourceWhitehead Institute for Biomedical Research·JournalNature·DateJul 22, 2020

Epigenetics: What the embryo can teach us about cell reprogramming

Researchers discover a way to 'tune down' heterochromatin in early embryos, improving artificial cell reprogramming efficiency. This knowledge can lead to the efficient generation of high-quality stem cells for regenerative medicine approaches.

SourceHelmholtz Munich (Helmholtz Zentrum München Deutsches Forschungszentrum für Gesundheit und Umwelt (GmbH))·JournalNature Cell Biology·DateJul 6, 2020

New roles for DNA-packaging proteins

Researchers found that linker histone H1 undergoes liquid-liquid phase separation in the nucleus, forming droplets with densely packed DNA and enriching with protein HP1α. This process segregates heterochromatin from euchromatin, revealing a new function of histones in gene regulation.

SourceInstitute for Basic Science·JournalBiophysical Journal·DateFeb 4, 2020

Renegade genes caught red handed

Researchers dispute the long-held belief that heterochromatin is a reliable guardian of the human genome. A study by University of Arizona researcher Keith Maggert reveals that heterochromatin can flicker on and off, allowing transposons to cause mutations and damage. This instability has significant implications for our understanding ...

SourceUniversity of Arizona·JournalProceedings of the National Academy of Sciences·DateSep 16, 2019
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.

Math shows why animals see at night

Biological experiments confirm that chromatin in mice eyes changes structure over time, allowing for night vision. Mathematical modeling shows nuclear deformation is a crucial point in DNA's structure change.

SourceHiroshima University·JournalPLOS Computational Biology·DateSep 11, 2019

TET proteins: double agents in DNA methylation prevent catastrophic cancer

Researchers reveal how TET proteins convert 5mC to 5hmC, preventing genomic instability and cancer. Defects in TET function are linked to increased levels of DNA damage and genome instability, highlighting the importance of maintaining a balance between DNA methylation and demethylation.

SourceLa Jolla Institute for Immunology·JournalProceedings of the National Academy of Sciences·DateJul 29, 2019

The protein that gives identical cells individuality

Researchers at Hokkaido University have discovered how a protein called Epe1 maintains a balance between tightly packed and variable DNA structures in yeast cells. This finding could lead to new strategies for suppressing the formation of tumor cells resistant to anti-cancer drugs.

SourceHokkaido University·JournalPLOS Genetics·DateJul 16, 2019

Nuclear architecture: What organizes the genome in the nucleus?

Eukaryotic chromosomes are separated into active euchromatin and inactive heterochromatin by interactions between the two chromatin types. The researchers discovered that heterochromatin core serves as a microlens condensing light in nocturnal retinas.

SourceLudwig-Maximilians-Universität München·JournalNature·DateJun 6, 2019
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.

Keeping chromosomes in check: a new role for heterochromatin

Researchers at Osaka University found that heterochromatin helps prevent large chromosomal rearrangements by repressing transcription of centromere repeats. The team's study reveals a key mechanism for maintaining chromosomal integrity and could lead to new methods for securing genome stability.

SourceOsaka University·JournalCommunications Biology·DateJan 24, 2019

The world's tiniest first responders

Researchers at USC Dornsife have discovered how the cell's emergency response team, known as paramedics, uses walking molecules to transport damaged DNA to the nucleus for repair. This process is crucial for preventing cancer formation and has implications for human health and genome editing.

SourceUniversity of Southern California·JournalNature·DateJun 20, 2018
AmScope B120C-5M Compound Microscope

AmScope B120C-5M Compound Microscope supports teaching labs and QA checks with LED illumination, mechanical stage, and included 5MP camera.

Cryo-electron microscopy reveals shape of heterochromatin

Scientists from Waseda University and others have successfully visualized the structure of heterochromatin using cryo-electron microscopy. The study sheds light on how heterochromatin regulates genes and its connection to various diseases, including cancer and virus infections.

SourceWaseda University·JournalMolecular Cell·DateJan 16, 2018

The nanoscopic structure that locks up our genes

New research reveals heterochromatin is less dense than previously thought and features a velcro-like protein called HP1 that allows genes to be locked down. The study's findings have implications for understanding higher-order structures like nucleosome strings.

SourceOkinawa Institute of Science and Technology (OIST) Graduate University·JournalMolecular Cell·DateJan 11, 2018
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.

A molecular garbage disposal complex has a role in packing the genome

The proteasome complex has been found to regulate DNA packing in the nucleus, influencing gene expression. In yeast cells, the proteasome can induce heterochromatin formation but prevent its spread, suggesting an alternative mechanism of action beyond proteolysis.

SourceAmerican Society for Biochemistry and Molecular Biology·JournalJournal of Biological Chemistry·DateOct 10, 2017

Histone 1, the guardian of genome stability

Researchers reveal histone 1 prevents accumulation of lethal R-loops and genome instability in heterochromatin, contradicting long-held hypothesis.

SourceInstitute for Research in Biomedicine (IRB Barcelona)·JournalNature Communications·DateAug 18, 2017
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.

Researchers find new mechanism for genome regulation

A study by researchers at Berkeley Lab found that heterochromatin organizes the genome into specific regions of the nucleus using liquid-liquid phase separation. This mechanism allows proteins to be targeted to one 'liquid' or the other based on physical traits, enabling precise gene regulation.

SourceDOE/Lawrence Berkeley National Laboratory·JournalNature·DateJun 21, 2017

Tight DNA packaging protects against 'jumping genes,' potential cellular destruction

Researchers at UNC School of Medicine discovered that tight DNA packaging in chromosomes mainly guards against virus-like genetic elements known as transposons or 'jumping genes,' which can copy and paste themselves throughout the genome, potentially destroying important genes. The discovery clarifies the role of heterochromatin and ad...

SourceUniversity of North Carolina Health Care·JournalGenes & Development·DateSep 1, 2016
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.

Stem cells know how to open up and unwind

Research found that heterochromatin organisation in embryonic stem cells is maintained in an open form through the action of key stem cell factors. This open architecture may contribute to keeping stem cells unspecialised and full of developmental potential.

SourceBabraham Institute·JournalGenes & Development·DateApr 28, 2016

Nuclear membrane repairs the 'dark matter' of DNA

Scientists have discovered a new function of the nuclear membrane: repairing catastrophically broken DNA strands. The membrane fixes heterochromatin breaks, preventing chromosome aberrations and potentially fatal cancer formation. This study may reveal how organisms become more predisposed to cancer as they age.

SourceUniversity of Southern California·JournalNature Cell Biology·DateOct 29, 2015

Aging erodes genetic control, but that's flexible

Biologists at Brown University found that gene silencing via chromatin in fruit flies declines with age, but administering life span extending measures such as lower calorie diets or increased expression of the protein Sir2 restores the loss of gene silencing due to age. The study suggests a possible line of research to develop more pr...

SourceBrown University·DateNov 20, 2013
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.

Potential new way to suppress tumor growth discovered

Researchers at the University of California, San Diego School of Medicine discovered a novel mechanism that suppresses tumor growth by stabilizing heterochromatin, a form of chromosomal DNA. This finding suggests a potential new approach to inhibit cancer gene expression and may represent a new class of tumor suppressors.

SourceUniversity of California - San Diego·JournalProceedings of the National Academy of Sciences·DateJun 3, 2013

Dual systems key to keeping chromosomes intact

Scientists have discovered two structural apparatuses that collaborate to protect repetitive DNA during replication. Disrupting both heterochromatin and replication fork proteins increases abnormal chromosomes and cell death.

SourceUniversity of Southern California·JournalCell Reports·DateMar 7, 2013

Aging cells lose their grip on DNA rogues

Brown University researchers discovered that as cells age, their ability to defend against parasitic strands of genetic material called transposable elements deteriorates. This breakdown allows the newly freed transposons to take full advantage, potentially leading to a decline in cell function and health.

SourceBrown University·JournalAging Cell·DateJan 30, 2013

Making and breaking heterochromatin

Researchers at Max Planck Institute of Immunobiology and Epigenetics have identified two novel enzymes, Prdm3 and Prdm16, that attach methyl groups to packaging proteins, maintaining heterochromatin structure. Additionally, transcription factors Pax3 and Pax9 are essential for intact heterochromatin, with random binding sites in contra...

SourceMax-Planck-Gesellschaft·JournalCell·DateSep 25, 2012
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.

CSHL team solves a protein complex's molecular structure to explain its role in gene silencing

Researchers from CSHL and St. Jude's Research Hospital have discovered new details of how a protein complex contributes to heterochromatin assembly and gene silencing in fission yeast. The team identified a previously unknown substructure at the end of Chp1, which plays a crucial role in heterochromatin formation at telomeres.

SourceCold Spring Harbor Laboratory·JournalNature Structural & Molecular Biology·DateNov 13, 2011

Study reveals new role for RNA interference during chromosomal replication

A recent study by Cold Spring Harbor Laboratory reveals that RNA interference plays a crucial role in regulating chromosomal replication. The findings show that RNAi mechanism causes the enzyme to release its hold on the DNA and allows the replication fork to progress smoothly, protecting cells from DNA damage.

SourceCold Spring Harbor Laboratory·JournalNature·DateOct 16, 2011

How yeast chromosomes avoid the bad breaks

Researchers found a novel system involving Pch2 and Orc1 proteins protecting yeast rDNA from inappropriate meiotic recombination. This protective repeat-associated heterochromatin makes the DNA segments near its boundary particularly vulnerable to recombination.

SourceWhitehead Institute for Biomedical Research·JournalNature·DateAug 7, 2011
Apple AirPods Pro (2nd Generation, USB-C)

Apple AirPods Pro (2nd Generation, USB-C) provide clear calls and strong noise reduction for interviews, conferences, and noisy field environments.

Effects of stress can be inherited, and here's how

Researchers have found that stress can be inherited through epigenetic changes, affecting gene expression and potentially influencing diseases like heart disease, diabetes, and schizophrenia. This discovery has implications for the impact of stress on future generations.

SourceCell Press·JournalCell·DateJun 23, 2011

Safeguarding genome integrity through extraordinary DNA repair

Researchers at Berkeley Lab have discovered a new process for repairing double-strand breaks in heterochromatin, a crucial step in maintaining genome stability. This mechanism allows cells to accurately repair DNA damage and prevent chromosomal abnormalities that can lead to cancer and birth defects.

SourceDOE/Lawrence Berkeley National Laboratory·JournalCell·DateApr 18, 2011

Researchers discover mechanism that prevents 2 species from reproducing

Cornell researchers discovered a genetic mechanism in fruit flies that prevents reproduction between two closely related species, Drosophila melanogaster and D. simulans. The mechanism involves rapidly evolving junk DNA in the male's X chromosome, which creates incompatibilities with the female's DNA, leading to embryo death.

SourceCornell University·JournalPLOS Biology·DateOct 26, 2009
Apple iPad Pro 11-inch (M4)

Apple iPad Pro 11-inch (M4) runs demanding GIS, imaging, and annotation workflows on the go for surveys, briefings, and lab notebooks.

Scientists clarify a mechanism of epigenetic inheritance

A team of scientists at Cold Spring Harbor Laboratory solved a puzzle about how genes are expressed by studying the way DNA is packed in yeast. They found that RNA interference plays a crucial role in transmitting epigenetic information across generations, providing specificity to histone modifications.

SourceCold Spring Harbor Laboratory·JournalCurrent Biology·DateApr 22, 2008

St. Jude study yields secrets of chromosome movement

Researchers used specially modified yeast to study the molecular events necessary for establishing and maintaining centromeric heterochromatin, a specialized DNA structure at the chromosome's centromere. The findings provide insight into how cells ensure each daughter cell receives the correct number of chromosomes.

SourceSt. Jude Children's Research Hospital·JournalMolecular Cell·DateJun 14, 2007

Exploring the dark matter of the genome

Researchers have sequenced and analyzed the complex heterochromatin of fruit flies, revealing over 200 protein-coding genes and functional elements. The study sheds light on the critical role of heterochromatin in cellular survival and organization.

SourceDOE/Lawrence Berkeley National Laboratory·JournalScience·DateJun 14, 2007