1.Effects of water-aging for 6 months on the durability of a novel antimicrobial and protein-repellent dental bonding agent.
Ning ZHANG ; Ke ZHANG ; Michael D WEIR ; David J XU ; Mark A REYNOLDS ; Yuxing BAI ; Hockin H K XU
International Journal of Oral Science 2018;10(2):18-18
Biofilms at the tooth-restoration bonded interface can produce acids and cause recurrent caries. Recurrent caries is a primary reason for restoration failures. The objectives of this study were to synthesize a novel bioactive dental bonding agent containing dimethylaminohexadecyl methacrylate (DMAHDM) and 2-methacryloyloxyethyl phosphorylcholine (MPC) to inhibit biofilm formation at the tooth-restoration margin and to investigate the effects of water-aging for 6 months on the dentin bond strength and protein-repellent and antibacterial durability. A protein-repellent agent (MPC) and antibacterial agent (DMAHDM) were added to a Scotchbond multi-purpose (SBMP) primer and adhesive. Specimens were stored in water at 37 °C for 1, 30, 90, or 180 days (d). At the end of each time period, the dentin bond strength and protein-repellent and antibacterial properties were evaluated. Protein attachment onto resin specimens was measured by the micro-bicinchoninic acid approach. A dental plaque microcosm biofilm model was used to test the biofilm response. The SBMP + MPC + DMAHDM group showed no decline in dentin bond strength after water-aging for 6 months, which was significantly higher than that of the control (P < 0.05). The SBMP + MPC + DMAHDM group had protein adhesion that was only 1/20 of that of the SBMP control (P < 0.05). Incorporation of MPC and DMAHDM into SBMP provided a synergistic effect on biofilm reduction. The antibacterial effect and resistance to protein adsorption exhibited no decrease from 1 to 180 d (P > 0.1). In conclusion, a bonding agent with MPC and DMAHDM achieved a durable dentin bond strength and long-term resistance to proteins and oral bacteria. The novel dental bonding agent is promising for applications in preventive and restorative dentistry to reduce biofilm formation at the tooth-restoration margin.
Anti-Infective Agents
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chemistry
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pharmacology
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Biofilms
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drug effects
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Dental Bonding
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Dentin-Bonding Agents
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chemistry
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pharmacology
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Materials Testing
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Methacrylates
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chemistry
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pharmacology
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Phosphorylcholine
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analogs & derivatives
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chemistry
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pharmacology
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Resin Cements
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Shear Strength
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Surface Properties
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Water
2.Crystal structure of a PP2A B56-BubR1 complex and its implications for PP2A substrate recruitment and localization.
Jiao WANG ; Zhizhi WANG ; Tingting YU ; Huan YANG ; David M VIRSHUP ; Geert J P L KOPS ; Sang Hyun LEE ; Weihong ZHOU ; Xin LI ; Wenqing XU ; Zihe RAO
Protein & Cell 2016;7(7):516-526
Protein phosphatase 2A (PP2A) accounts for the majority of total Ser/Thr phosphatase activities in most cell types and regulates many biological processes. PP2A holoenzymes contain a scaffold A subunit, a catalytic C subunit, and one of the regulatory/targeting B subunits. How the B subunit controls PP2A localization and substrate specificity, which is a crucial aspect of PP2A regulation, remains poorly understood. The kinetochore is a critical site for PP2A functioning, where PP2A orchestrates chromosome segregation through its interactions with BubR1. The PP2A-BubR1 interaction plays important roles in both spindle checkpoint silencing and stable microtubule-kinetochore attachment. Here we present the crystal structure of a PP2A B56-BubR1 complex, which demonstrates that a conserved BubR1 LxxIxE motif binds to the concave side of the B56 pseudo-HEAT repeats. The BubR1 motif binds to a groove formed between B56 HEAT repeats 3 and 4, which is quite distant from the B56 binding surface for PP2A catalytic C subunit and thus is unlikely to affect PP2A activity. In addition, the BubR1 binding site on B56 is far from the B56 binding site of shugoshin, another kinetochore PP2A-binding protein, and thus BubR1 and shugoshin can potentially interact with PP2A-B56 simultaneously. Our structural and biochemical analysis indicates that other proteins with the LxxIxE motif may also bind to the same PP2A B56 surface. Thus, our structure of the PP2A B56-BubR1 complex provides important insights into how the B56 subunit directs the recruitment of PP2A to specific targets.
Amino Acid Motifs
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Binding Sites
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Cell Cycle Proteins
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chemistry
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Crystallography, X-Ray
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Humans
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Multienzyme Complexes
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chemistry
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Protein Phosphatase 2
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chemistry
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Protein Structure, Quaternary
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Protein-Serine-Threonine Kinases
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chemistry