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Verified CAS / Academic Author2 Decoded Studies

Prof. YAO Tian

Huazhong University of Science and Technology

Research Publications & English Decoded Briefs

Showing 2 publications
Environmental Chemistry2026DOI: 10.7524/j.issn.0254-6108.2024112106

Induced Exposure Strategy to Achieve Synergistic Catalytic Elimination of CH3SH and CO2 by Al2O3

Selective synergistic catalytic elimination (SSCE) of CH3SH and CO2 represents a significant approach towards achieving green chemistry objectives. In this study, a series of Al2O3 catalysts with different surface hydroxyl coordination states were designed and fabricated through a simple water bath strategy. The performance of the corresponding catalysts for selective synergistic catalytic elimination of CH3SH and CO2 was systematically evaluated. The catalysts were comprehensively characterized by BET, XRD, XPS, NMR and CO-DRIFTS techniques. The experimental results revealed that the synthesized samples exhibited uniform specific surface areas (150 m2·g−1) and pore sizes (12 nm), while demonstrating varying hydroxyl coordination states, which significantly affects the surface acidity of W-Al2O3 catalyst. Notably, W80-Al2O3, synthesized at 80 °C via water bath heating, displayed the highest proportion of μ1-type hydroxyl coordination. This unique structural feature endowed the catalyst with enhanced Brønsted acidity and superior CO adsorption capacity compared to other catalysts, which significantly promotes the further hydrogenation of CO to CH4 in the SSCE process. As a result, the SSCE performance of W80-Al2O3 was significantly improved, achieving complete conversion of CH3SH (100%) and a CH4 product concentration of 1326 μmol·g−1, which is significantly higher than that of Al2O3 (56 μmol·g−1) and W-Al2O3 (54 μmol·g−1). This work provides a new strategy for the synergistic reduction of typical sulfur-containing odorous pollutants and carbon dioxide.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3438-6

Engineered Bacteria for Cancer Therapy: Synergistic Innovations in Synthetic Biology and Materials Science

Cancer remains the second leading cause of death globally, with approximately 20 million new cases and 9.7 million deaths in 2022. Traditional therapies—surgery, radiotherapy, and chemotherapy—suffer from poor targeting, systemic toxicity, drug resistance, and recurrence. Immunotherapy, while promising, achieves low patient response rates. Bacterial therapies exploit the hypoxic and immunosuppressive tumor microenvironment (TME) to selectively colonize and penetrate tumors, eliciting innate and adaptive immune responses. However, natural bacteria exhibit intrinsic virulence and uncontrolled replication, limiting clinical translation. This review examines recent advances in engineered bacteria for anti-tumor therapy, focusing on synthetic biology modifications and material science interventions that enhance safety and efficacy. Engineered bacteria can synthesize and release payloads in response to internal or external stimuli, leading to tumor regression and inhibition of recurrence. We discuss advantageous features, modification strategies, and remaining challenges, including precise spatiotemporal control, immunogenicity management, and scalable manufacturing. The integration of synthetic biology with materials science offers a viable pathway to develop low-toxicity, multifunctional bacterial therapeutics capable of overcoming the limitations of conventional and immunotherapeutic approaches.

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