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Huibin Xu

Publications and source records attributed to Huibin Xu.

4 recordsLinked to original sources

The N-terminal domain of tumor suppressor p53 is involved in the molecular interaction with the anti-apoptotic protein Bcl-Xl.

Emerging evidences suggest that transcription-independent mechanism of p53 appears to make an important contribution to the overall p53-dependent apoptosis. Recently, it has been postulated that the DNA-binding domain of p53 can interact with Bcl-Xl, and subsequently the proposed molecular interaction has been shown by NMR studies. Interestingly, Chipuk et al. [Cancer Cell 4 (2003) 371] reported that the N-terminal domain of p53 (p53NTD) alone is necessary and sufficient to induce transcription-independent apoptosis. To further define and understand the nature of the molecular recognition between p53 and Bcl-Xl, our current study focuses on p53NTD. We first demonstrated the molecular interaction between p53NTD and Bcl-Xl by co-expressing and purifying the complex. Second, to define the binding interface of the molecular interaction, which is not previously characterized, in the current we employed a NMR-based binding study, showing that the binding site on Bcl-Xl is located in the region including alpha4, the N- and C-termini of alpha3, the N-terminus of alpha5, and the central part of alpha2. To further probe this observation, we then performed fluorescence resonance energy transfer (FRET) assay in cells. The FRET efficiency detected between the donor and acceptor molecules appears to suggest the presence of molecular interaction of p53NTD with Bcl-Xl in cells. Taken together, our data suggest that p53NTD interacts with Bcl-Xl but the characteristic of the molecular interaction appears to be different from that of the DNA-binding domain of p53.

Cell Line, Tumor↗

Large-scale synthesis of uniform nanotubes of a nickel complex by a solution chemical route.

Novel layer-rolled nanotubes of a nickel complex have been successfully synthesized by a simple wet chemical method. The nanotubes are assembled by rolling the (111) sheets of [Ni(NH3)6]Cl2 with the assistance of a polymer. The remarkable uniformity and high yields of the nickel complex nanotubes point to future applications in various fields of nanotechnology.

Journal Article↗

First-principles pair potentials across the metal-ceramic interface.

Systematic approaches are presented to invert the first-principle binding energy to obtain the pair potentials across the metal/ceramic interfaces. The conformation characteristics of two virtual interface models suitable for the inversion are summarized: (1) the positions of one kind of ceramic ions stay unchanged, but those of the other change; or, (2) there is no change in the relative positions of the ceramic ions to the metal atoms but the positions of two kinds of ceramic ions are all exchanged each other. As an example, we derive the pair potentials of Ni-Zr(4+) and Ni-O(2-) across the Ni/ZrO(2) interface with this method, which exhibit comparable accuracy to the first-principle results. This provides direct evidence that the interfacial potentials obtained from this method can reasonably describe the general features of bondings across the metal-ceramic interface. The limitation of this method is also discussed.

Journal Article↗

Regularly shaped, single-crystalline ZnO nanorods with Wurtzite structure.

A convenient route at ambient conditions was employed to prepare narrow-dispersed ZnO nanorods in terms of size and morphology. Transmission electron microscopy and X-ray diffraction were used to characterize the structurally uniform and well-proportioned products. The as-prepared specimen exhibits strong ultraviolet exciton emission at 385 nm and disappearance of visible defect emission.

Journal Article↗