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Xu Jin

Publications and source records attributed to Xu Jin.

2 recordsLinked to original sources

Engineering local nitrogen coordination environments of Palladium subnanometric clusters in metal-organic frameworks for efficient hydrogenation.

Subnanometric clusters (SCs) bridge the gap between single-atom catalysts and nanoparticles by combining high atomic utilization with cooperative multi-atom effects. However, stabilizing low-coordinated SCs while maintaining accessible active sites remains challenging. Here, we introduce pyrazole-3,5-dicarboxylic acid (PZDC), pyridine-3,5-dicarboxylic acid (PDC), and pyrrole-3,5-dicarboxylic acid (PPy) as secondary ligands in metal-organic frameworks to regulate the local nitrogen (N) coordination environment of Pd SCs (∼0.6 nm). Specifically, PZDC provides a chemically differentiated pyrazolic dual-N environment containing formally pyridinic-like and pyrrolic-like N sites. Aberration-corrected high-angle annular dark-field scanning transmission electron microscopy (AC HAADF-STEM) and X-ray absorption spectroscopy (XAS) confirm the formation of low-coordinated Pd clusters containing PdN and PdPd interactions, while CO diffuse reflectance infrared Fourier transform spectroscopy (CO-DRIFTS) reveals a distinctive adsorption environment characterized by geminal dicarbonyl species and strongly suppressed bridge-bonded CO adsorption. Within this catalyst series, the PZDC-functionalized material exhibits the highest activity and tetrahydrocyclopentadiene (THDCPD) selectivity in dicyclopentadiene (DCPD) hydrogenation. These results demonstrate that modification of the local N environment can regulate the average coordination structure, adsorption behavior, and catalytic properties of MOF-supported Pd SCs.

Hydrogenation catalysis

Characterization of phosphorylation variants for identifying adaptive alleles in Zea.

Large-scale genome sequencing of maize wild species (teosinte) has uncovered thousands of genetic mutations, but distinguishing causal alleles from neutral variations remains a significant challenge. In this study, we conducted a comprehensive analysis of phosphorylation-associated single-nucleotide variations (pSNVs) to enhance our understanding of adaptive variations in the Zea genus. We collected 234 teosinte genomes from seven different taxa and 507 cultivated maize genomes to identify single-nucleotide variants that target phosphorylation machinery, which is crucial for plant development and environmental adaptation. Our analysis identified 33 687 pSNVs within the Zea genus and revealed a reduction in genetic conservation along with an increase in protein abundance and expression for genes harboring pSNVs. Additionally, pSNVs present stronger purifying selection pressures compared with other missense mutations. We found that maize possesses fewer pSNVs than teosinte, likely due to the effects of selection and hitchhiking. By examining the role of pSNVs related to kinase-substrate rewriting events and exhibiting evolutionary divergence jointly, our results suggest that pSNVs impact multiple traits, particularly flowering time variation between teosinte and maize. Furthermore, we documented the widespread presence of pSNVs in Arabidopsis thaliana, rice, and wheat, identifying 46 pSNVs that have convergently evolved between maize and other species. Our study provides another insight into uncovering adaptive alleles in wild species by incorporating protein signaling sites and emphasizes the potential of utilizing wild species for future crop improvement.

Zea mays