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Kanazawa University


Getting the most out of atmospheric data analysis

A team of researchers has developed a mutual information approach to interpreting atmospheric data collected over an 18-year period, finding strong correlations between new-particle formation and water content, sulfuric acid concentration, temperature, and relative humidity.

SourceKanazawa University·JournalAtmospheric Chemistry and Physics·DateOct 26, 2018

Novel mechanism for generating our skeleton

The Mek5/Erk5 pathway plays a crucial role in skeletogenesis through the regulation of mesenchymal stem cell differentiation and chondrocyte maturation. Erk5 controls early chondrogenic differentiation and chondrogenic differentiation after condensation formation. This study improves our understanding of skeletal development and paves ...

SourceKanazawa University·JournalDevelopment·DateOct 2, 2018

Breaking supersymmetry

Kanazawa University researcher Hajime Moriya shows that the extended Nicolai supersymmetric fermion lattice model breaks supersymmetry and has a strictly positive energy density for any homogeneous ground state. This contradicts previous claims that supersymmetry may be restored in the infinite-volume limit.

SourceKanazawa University·JournalPhysical Review D·DateOct 2, 2018

New method for hydroboration of alkynes: Radicals induce unusual selectivity

Researchers at Kanazawa University developed a novel method for hydroboration of alkynes utilizing radical chemistry, resulting in the creation of previously inaccessible trans-hydroboration products. This breakthrough enables the synthesis of various bench-stable alkenyl borane compounds that can be converted into drug candidates.

SourceKanazawa University·JournalAngewandte Chemie International Edition·DateAug 30, 2018

A chaperonin protein, GroEL, has a more complex mechanism than was thought before

A Kanazawa University-led team used high-speed atomic force microscopy to study GroEL's mechanism, finding two alternative pathways for the protein-GroES interaction. The research suggests a more active role for the football-shaped structure in protein folding, challenging conventional models of molecular chaperone function.

SourceKanazawa University·JournalPhilosophical Transactions of the Royal Society of London (B )·DateJul 10, 2018

Exploration of a new chemical synthesis process -- synergy of two catalysts in one flask

Researchers at Kanazawa University have successfully synthesized a ketone from an aldehyde using the synergistic action of an organocatalyst and a palladium catalyst in one flask. This novel protocol enables simple and mild synthesis under conditions that previously required complex chemical reaction steps or metal reagents.

SourceKanazawa University·JournalAngewandte Chemie International Edition·DateMar 14, 2018

Potential enzyme as therapeutic target for diabetes

A team of Japanese researchers has identified Sirt2 as a key player in regulating hepatic glucose uptake, which is impaired in obesity and type 2 diabetes. The study found that Sirt2 regulates the dissociation of glucokinase from its regulatory protein, GKRP, through post-translational modifications.

SourceKanazawa University·JournalNature Communications·DateJan 26, 2018

Genetic engineering mechanism visualized

A team of scientists has visualized the dynamics of the CRISPR-Cas9 complex using high-speed atomic force microscopy. The study provides unprecedented insights into the CRISPR-Cas9-mediated DNA cleavage mechanism, highlighting its potential for gene editing.

SourceKanazawa University·JournalNature Communications·DateNov 13, 2017

Development of compound that captures specific alkane gas molecule with its color change

Researchers at Kanazawa University have developed a compound that selectively captures n-alkane gas molecules with its color change, indicating a special ability to distinguish configuration of guest molecules. The compound's properties were evaluated in solid/gas interfaces, showing excellent separation efficiency and recyclability.

SourceKanazawa University·JournalJournal of the American Chemical Society·DateMay 25, 2017

Identification of the neuronal suppressor of cataplexy, sudden weakening of muscle tone

A recent study led by Kanazawa University has discovered that serotonin neurons in the dorsal raphe nucleus inhibit catalepsy by reducing activities of the amygdala that controls emotion. This finding provides new insights into the narcolepsy mechanism and holds promise for developing new therapies for cataplexy.

SourceKanazawa University·JournalProceedings of the National Academy of Sciences·DateMay 13, 2017