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Discovery of the most intron-rich eukaryotic genome

Researchers used long-read sequencing to analyze the nuclear genome of Amorphochlora amoebiformis, revealing an extremely high proportion of introns (74%) compared to other eukaryotic genomes. The study provides important insights into the evolutionary dynamics and potential functional roles of introns in eukaryotic genomes.

SourceUniversity of Tsukuba·JournalDNA Research·DateDec 22, 2025

Splicing twins: unravelling the secrets of the minor spliceosome complex

Researchers in the Galej Group at EMBL Grenoble have provided new structural insights into the U11 snRNP subunit of the minor spliceosome, revealing its ability to specifically identify rare substrates. The study sheds light on the complex assembly pathway of the minor spliceosome, which is critical for processing minor introns in genes.

SourceEuropean Molecular Biology Laboratory·JournalMolecular Cell·TypeExperimental study·DateFeb 12, 2025

Do genes-in-pieces code for proteins that fold in pieces?

Researchers found a correlation between protein folding and evolution in certain globular protein families, with most conserved exons corresponding to better foldons. However, the general trend did not hold for all protein families, suggesting other biological factors may influence protein folding and evolution.

SourceRice University·JournalProceedings of the National Academy of Sciences·DateJul 3, 2024

Structural biology: Molecular scissors caught in the act

Researchers have successfully visualized the three-dimensional structure of human tRNA splicing endonuclease TSEN, a crucial enzyme in tRNA maturation. The study reveals how TSEN recognizes and excises introns from precursor tRNAs, shedding light on its role in neurodegenerative disorders like pontocerebellar hypoplasia.

SourceGoethe University Frankfurt·JournalNature Structural & Molecular Biology·TypeExperimental study·DateJul 13, 2023

Long-standing genomic mystery about the origins of introns explained in new study

A new study led by UCSC scientists suggests that introners are the source of most introns across species, providing a plausible explanation for their vast majority. The researchers found evidence of introners in 5.2% of surveyed eukaryotic species and suggest they may be a fundamental mechanism driving genomic complexity.

SourceUniversity of California - Santa Cruz·JournalProceedings of the National Academy of Sciences·DateNov 28, 2022

To splice or not to splice...

A study by Karan Bedi and colleagues found that RNA splicing is inefficient, leaving many intronic sequences unspliced. The team analyzed Bru-seq data from six cell lines and identified variable patterns of splicing across genes and cell types.

Researchers reveal process behind harmful glial cell change in motor neurone disease

Researchers at the Francis Crick Institute have identified the key cellular change that leads to harmful astrocytes in amyotrophic lateral sclerosis (ALS). The discovery could lead to new therapies to slow disease progression and is also relevant to other neurodegenerative diseases like Parkinson's and Alzheimer's. Understanding this c...

SourceThe Francis Crick Institute·JournalNucleic Acids Research·DateMar 3, 2021

Scientists reveal relationship between Dek and Intron retention during muscle stem cells quiescence

Researchers at Hong Kong University of Science and Technology discovered a key mechanism controlling muscle stem cell dormancy, involving the release of conserved introns upon activation. This discovery sheds light on the importance of Intron Retention (IR) in regulating gene expression and stem cell quiescence.

SourceHong Kong University of Science and Technology·JournalDevelopmental Cell·DateJun 10, 2020

Fine-tuning gene expression during stress recovery

Researchers at Hokkaido University found that nuclear stress bodies help cells recover from stress by regulating intron retention, a process essential for gene expression. The discovery sheds light on the mysterious organelles' role in stress response and has implications for understanding various biological functions.

SourceHokkaido University·JournalThe EMBO Journal·DateNov 29, 2019

CU School of Medicine researcher makes key finding related to pre-mRNA splicing

A study led by CU School of Medicine researcher Rui Zhao sheds light on the mechanism of pre-mRNA splicing, a complex process that converts precursor mRNA into mature mRNA for protein production. The research proposes a unified model explaining three fundamental phenomena in pre-mRNA splicing without requiring different spliceosomes.

Jumping genes shed light on how advanced life may have emerged

Researchers discovered that retrotransposons and nonhomologous end-joining (NHEJ) interacted to create a selection pressure that helped lead to the emergence of advanced life. This interaction enabled eukaryotes to mix and match genes, creating more complicated functions.

SourceCarl R. Woese Institute for Genomic Biology, University of Illinois at Urbana-Champaign·JournalProceedings of the National Academy of Sciences·DateNov 19, 2018

Encrypted messages in biological processes

A study by a Danish-German research team reveals that modified RNA bases play a crucial role in controlling gene expression from DNA to functional RNA. The researchers used a newly developed technique to label newly made RNA with the m6A modification, demonstrating its impact on RNA maturation and splicing efficiency.

SourceAarhus University·JournalCell Reports·DateJun 20, 2018

Ten thousand bursting genes

Researchers developed a new technique called intron seqFISH that allows for the imaging of over 10,000 genes within single cells. This technique provides precise and instantaneous snapshots of single cells, revealing that gene expression oscillates globally across many genes on a surprisingly short timescale.

Neurobiology: Lessons by post

A dedicated transport system has been characterized that delivers specific mRNAs to active synapses, allowing for the modulation of synaptic junctions and enabling learning and memory. The key factor involved in this transport binds specifically to regions of its mRNA cargo lacking protein-coding information.

The spliceosome: More than meets the eye

Researchers from Brandeis University and UMMS discovered that the spliceosome's major components can attach in any order, eliminating the need for precise communication. This breakthrough sheds light on the process of RNA splicing, a crucial step in protein synthesis, and holds promise for understanding diseases like cystic fibrosis.

SourceBrandeis University·JournalCell·DateSep 26, 2013

Process important to brain development studied in detail

Researchers at Uppsala University have examined the mechanism of gene transcription and found that genes active in the brain are transcribed with a special mechanism. During fetal development, there is a larger proportion of RNA molecules containing introns compared to fully developed brains.

SourceUppsala University·JournalNature Structural & Molecular Biology·DateNov 6, 2011

Process leading to protein diversity in cells important for proper neuron firing

A novel form of splicing in the cytoplasm of nerve cells dictates a special form of a potassium channel protein in the outer membrane, essential for coordinating electrical firing of nerve cells. This discovery highlights the importance of introns in regulating protein diversity and has implications for brain diseases such as epilepsy.

SourceUniversity of Pennsylvania School of Medicine·JournalProceedings of the National Academy of Sciences·DateNov 18, 2010

Introns: A mystery renewed

Researchers studying the model organism Daphnia pulex found that introns are inserted into the genome far more frequently than predicted, with many sequences of unknown origin. The study identified 'hot spots' for intron insertion and discovered parallel intron gains in independent genotypes.

SourceIndiana University·JournalScience·DateDec 10, 2009

RNA-associated introns guide nerve-cell channel production

A team of researchers at the University of Pennsylvania School of Medicine has identified an important molecular mechanism guiding nerve-cell electrical channels. The discovery suggests that RNA-associated introns play a critical role in regulating gene expression and controlling the number of channel proteins produced.

SourceUniversity of Pennsylvania School of Medicine·JournalProceedings of the National Academy of Sciences·DateFeb 5, 2008