Add BrightSurf on Google Email

Weizmann Institute of Science


Blowing in the (stellar) wind

Scientists identified the mix of elements thrown off by the star before its explosion, which helped paint a picture of how heavy elements in the universe are formed. The findings revealed a nitrogen-rich wind similar to those of Wolf-Rayet stars, providing a window into the workings of the cosmos.

Where have all the mitochondria gone?

Researchers at the Weizmann Institute have discovered a new type of cellular vesicle that actively seeks out and destroys paternal mitochondria upon fertilization. This finding may help explain why only a quarter of IVF pregnancies carry to term, and could lead to a better understanding of mitochondrial turnover and male fertility.

SourceWeizmann Institute of Science·JournalDevelopmental Cell·DateMay 15, 2014

Time is of the essence

A Weizmann Institute of Science study reveals that daily fluctuations in triglycerides in the liver are driven by internal 'body clocks' and timing of meals. Researchers found that restricting nighttime feeding led to a 50% decrease in liver TAG levels, suggesting that meal times can affect lipid accumulation.

SourceWeizmann Institute of Science·JournalCell Metabolism·DateFeb 5, 2014

300,000-year-old hearth found

A 300,000-year-old hearth discovered in the Qesem Cave provides conclusive evidence of repeated fire building over time, hinting at advanced social structure and intellectual capacity. The find suggests that early humans had a sophisticated understanding of space organization and social order.

SourceWeizmann Institute of Science·JournalJournal of Archaeological Science·DateJan 27, 2014

New hope for Gaucher patients

Researchers at the Weizmann Institute of Science have identified a key player in triggering brain inflammation and nerve cell death in severe forms of Gaucher disease. This discovery may lead to new treatments, including those that can cross the blood-brain barrier to target neurological symptoms.

SourceWeizmann Institute of Science·JournalNature Medicine·DateJan 19, 2014

Not so dumb

Researchers at the Weizmann Institute of Science have developed a system to investigate microglia functions, revealing their role in shaping neuronal networks and contributing to neurodegenerative diseases. The study uses a genetic switch to target microglia cells, shedding new light on their mechanisms of action.

SourceWeizmann Institute of Science·JournalNature Neuroscience·DateNov 25, 2013

Chromosomes show off their shapes

A new method combines high-throughput DNA sequencing and computer analysis to produce reliable maps describing contacts between genes along individual chromosomes. The results suggest that the arrangement of genes on chromosomes is modular and based on their functions, with active genes exposed at chromosome boundaries.

Super SQUID

Researchers have developed a nano-SQUID-on-tip that measures magnetic fields at distances as small as a few nanometers from the sample, breaking the record for sensitivity and resolution. This tiny device may also enable measuring the magnetic field from the spin of a single electron, a major breakthrough in magnetic imaging.

SourceWeizmann Institute of Science·JournalNature Nanotechnology·DateNov 25, 2013

New stem cells go back further

Researchers at the Weizmann Institute of Science have successfully created induced pluripotent stem cells (iPS cells) that can be kept in a pristine state, paving the way for growing transplant organs to order. The breakthrough enables the production of 'humanized' mouse models containing human-derived tissues.

Stem cell reprogramming made easier

Researchers find removing MBD3 protein increases efficiency of stem cell reprogramming from 1% to 100%, allowing for faster production of cells for medical use. This breakthrough provides a deeper understanding of embryonic development and could advance treatment of various diseases.

The pathway to potato poisons

Scientists have mapped out the biochemical pathway responsible for manufacturing glycoalkaloids in plants, which are toxic substances found in potatoes and other edible plants. The research could facilitate breeding of toxin-free crops and development of new crop varieties.

SourceWeizmann Institute of Science·JournalThe Plant Cell·DateJul 31, 2013

Guided growth of nanowires leads to self-integrated circuits

Scientists have successfully created self-integrating nanowires whose position, length and direction can be fully controlled. This breakthrough enables the production of electronic circuits with hundreds of transistors simultaneously, opening doors to various technological applications including LED devices, lasers, and solar cells.

SourceWeizmann Institute of Science·JournalProceedings of the National Academy of Sciences·DateJul 31, 2013

Oldest use of flowers in grave lining

Archaeologists at the Weizmann Institute of Science have discovered the oldest known use of flowers in grave lining, dating back 11,700 to 13,700 years. The graves were found to contain Judean sage, mint, and figwort plants, which suggest that ancient humans had a positive association with flowers.

SourceWeizmann Institute of Science·JournalProceedings of the National Academy of Sciences·DateJul 10, 2013

Programmed destruction

A recent Weizmann Institute study has discovered that caspase 8 signaling enzymes, which were previously thought to only induce programmed cell death, can also activate an entirely different process in certain cells - causing inflammation more directly. This finding highlights the need for further research into the signals transmitted ...

SourceWeizmann Institute of Science·JournalImmunity·DateMar 18, 2013

Causing collapse

Weizmann Institute researchers found that measuring a single atom's spin can collapse its superposition into one state. By adjusting the polarization of the emitted photon, they demonstrate that observers can influence the spin collapse, suggesting an 'action-at-a-distance' effect.

SourceWeizmann Institute of Science·JournalScience·DateMar 18, 2013

Cell on a chip reveals protein behavior

Researchers at the Weizmann Institute of Science created a two-dimensional cell-like system on a glass chip, enabling precise observation of gene expression and protein behavior. The system allows for the simultaneous production and trapping of multiple proteins, revealing a spectrum of protein activities.

SourceWeizmann Institute of Science·JournalNature Nanotechnology·DateMar 18, 2013

2 antibodies are better than 1

Researchers propose using two EGFR-blocking antibodies to treat triple-negative breast cancer, which lacks common receptors for hormone-based treatments. In a study, combining two antibodies proved effective in preventing tumor growth and spread in mice.

SourceWeizmann Institute of Science·JournalProceedings of the National Academy of Sciences·DateFeb 6, 2013

The smell of white

Scientists have created a blended scent, known as 'Laurax,' which spans the entire range of human olfaction and is perceived as neutral. This breakthrough challenges conventional wisdom on how our sense of smell works.

SourceWeizmann Institute of Science·JournalProceedings of the National Academy of Sciences·DateNov 22, 2012

Immune cells make flexible choices

A team of researchers at the Weizmann Institute has discovered how immune cells produce a wide range of receptors to fight different diseases. By analyzing the genetic sequences of lymphocyte receptors in mice, they found that the flexibility and length of DNA segments play a crucial role in determining the likelihood of two distant se...

SourceWeizmann Institute of Science·JournalProceedings of the National Academy of Sciences·DateOct 22, 2012

Rejecting arsentate

Researchers discovered that bacteria in arsenic-rich environments developed a protein, PBP, with extreme selectivity for phosphate over arsenate. The unique bond between the protein and arsenate molecule led to repulsion and prevented its entry into the cell.

Stem cell bodyguards

A recent study has revealed the existence of a rare sub-group of activated immune cells that act as bodyguards to protect stem cells from premature differentiation. These macrophage cells secrete prostaglandins, which delay differentiation and preserve the youthful state of the stem cells.

SourceWeizmann Institute of Science·JournalNature Immunology·DateOct 22, 2012

Uncovering the genome's regulatory code

A team of researchers developed an automated system to map protein-DNA interactions, uncovering a hierarchical structure for the regulatory code. They found that regulatory factors can be classified into three levels, with each tier governing cell type, sub-identity and specialized gene expression.

SourceWeizmann Institute of Science·JournalMucosal Immunology·DateSep 9, 2012

A lesson in sleep learning

A Weizmann Institute study found that people can learn new information while sleeping and retain it unconsciously, modifying their waking behavior. The research used a type of conditioning involving tones and odors presented during sleep, leading to responses similar to those experienced when awake.

SourceWeizmann Institute of Science·JournalNature Neuroscience·DateAug 26, 2012

Locally produced proteins

Researchers discovered that importin beta1, a crucial protein for nerve repair, is produced locally in the axons of peripheral nerve cells. This finding has significant implications for treating nerve damage and may lead to better treatments and faster repair.

Judging DNA by its cover

A new Weizmann Institute-led study identifies a potential molecular mechanism behind the link between cancer and faulty stem cell differentiation. The researchers discovered that the tagging of DNA pieces with ubiquitin is crucial for proper stem cell differentiation, and disruptions in this process can lead to cancer.

SourceWeizmann Institute of Science·JournalMolecular Cell·DateJul 23, 2012

Rewriting DNA to understand what it says

The new study proposes a way to effectively introduce carefully planned DNA segments into genomes of living cells and test the effects. The technology enables simultaneous introduction of tens of thousands of DNA regions into tens of thousands of living cells, allowing for precise measurement of results within a single experiment.

SourceWeizmann Institute of Science·JournalNature Genetics·DateMay 31, 2012

Why chemotherapy fails

A study by Weizmann Institute scientists reveals that leukemia recurrence is often caused by 'cancer stem cells' that divide slowly, evading chemotherapy drugs. These cells can give rise to new rapidly-dividing cancer cells, making them a key target for new treatment approaches.

Lineage trees reveal cells' histories

Weizmann Institute scientists have disproved a claim about the origin of eggs in female mammals and created a new method for reconstructing lineage trees for cells. The study found that ova cannot be descended from bone-marrow stem cells, but older mice eggs undergo more cell divisions than younger ones.

SourceWeizmann Institute of Science·JournalPLOS Genetics·DateFeb 23, 2012

A supernova with a view

The study of the closest supernova in 25 years has shed new light on its formation. The team found that the exploding star was a white dwarf, and while they couldn't rule out a white dwarf merger, their results suggest a medium-sized star supplied the white dwarf with extra material to trigger the explosion.

Hide and seek signals

New research at the Weizmann Institute shows how blood vessel cells 'hide' signals from immune cells, only allowing those with special training to cross. This selective barrier prevents certain immune cells from reaching tumors near blood vessels.

SourceWeizmann Institute of Science·JournalNature Immunology·DateDec 15, 2011

Unraveling Batten disease

Researchers have discovered that a mutation in the CLN3 gene disrupts protein trafficking, leading to lysosome overflow and neuronal death in Batten disease. The findings may form the basis for a new therapy by targeting the kinase function of CLN3.

SourceWeizmann Institute of Science·JournalJournal of Cell Biology·DateNov 2, 2011

A hormone ensures its future

Researchers discovered a crucial brain area, neuro-hypophysis, where biochemical commands are passed from the brain to the bloodstream. They found that oxytocin, known as the 'hormone of love,' plays a key role in the development of this structure, governing blood vessel formation during embryonic stages.

SourceWeizmann Institute of Science·JournalDevelopmental Cell·DateNov 2, 2011

Scale models

Scientists Profs. Naama Barkai and Ben-Zion Shilo have developed a theoretical model explaining how scaling works in developing fruit fly wings, where the vein structure stays proportioned. Their findings suggest that this mechanism can be applied to various examples of development, including human embryonic development.

SourceWeizmann Institute of Science·JournalCurrent Biology·DateAug 22, 2011

Nanowires get into the groove

Scientists at the Weizmann Institute of Science have developed a method to grow semiconductor nanowires on a surface, producing relatively long, orderly, aligned structures. This breakthrough enables the production of enhanced electronic and optical properties suitable for various applications.

SourceWeizmann Institute of Science·JournalScience·DateAug 22, 2011