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Dr Meihua Yu
Dr

Meihua Yu

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Overview

Background

Dr Meihua Yu is a Research Fellow in Cancer Immunotherapy at the Australian Institute for Bioengineering and Nanotechnology (AIBN). She received her PhD in Biomedical Engineering from AIBN, UQ in 2014. Throughout her research career, she has held full-time research positions from 2014 to 2021 at UQ following completion of her PhD, followed by a position as Research-Teaching Associate Prof at Shanghai University, China (2021-2025). She returned to AIBN in 2026 to continue her research program.

Dr Yu's current research focuses on materials-immunology for cancer treatment and prevention of infectious diseases. Dr Yu has published 95 papers (H-index, 40) in top international journals including Science Advances, Angewandte Chemie International Edition, Advanced Materials, Journal of the American Chemical Society, Journal of Immunology, and Chemical Society Reviews. Her innovative research has resulted in 1 international patents and 14 Chinese patents.

Dr Yu has secured competitive research funding over $1.0M from the ARC, NHMRC, Queensland Government, National Natural Science Foundation of China, Shanghai Municipality, and Zhejiang Province (e.g., UQ Early Career grants, ARC Linkage projects, Queensland Biomedical Assistance Fund, and the 2017 UQ Foundation Research Excellence Award).

Dr Yu has been awarded four prestigious national and state fellowships, including 2017 NHMRC Early Career Fellowship, 2016 Advance Queensland Early Career Research Fellowship, 2021 Shanghai Excellent Overseas Young Scientists, and 2022 Zhejiang Overseas Thousand Talents Program (relinquished). She has actively pursued commercial translation of her discoveries through strategic collaborations with industry partners, including Ridley, Ellume, and Jingang Medicines.

Dr Yu serves as an invited reviewer for national competitive grants and manuscripts for more than 40 international journals, including Med, ACS Nano, and Advanced Materials.

Availability

Dr Meihua Yu is:
Available for supervision

Qualifications

  • Doctor of Philosophy, The University of Queensland

Works

Search Professor Meihua Yu’s works on UQ eSpace

97 works between 2006 and 2026

61 - 80 of 97 works

2015

Journal Article

Core-cone structured monodispersed mesoporous silica nanoparticles with ultra-large cavity for protein delivery

Xu, Chun, Yu, Meihua, Noonan, Owen, Zhang, Jun, Song, Hao, Zhang, Hongwei, Lei, Chang, Niu, Yuting, Huang, Xiaodan, Yang, Yannan and Yu, Chengzhong (2015). Core-cone structured monodispersed mesoporous silica nanoparticles with ultra-large cavity for protein delivery. Small, 11 (44), 5949-5955. doi: 10.1002/smll.201501449

Core-cone structured monodispersed mesoporous silica nanoparticles with ultra-large cavity for protein delivery

2015

Journal Article

Self-Organized Mesostructured Hollow Carbon Nanoparticles via a Surfactant-Free Sequential Heterogeneous Nucleation Pathway

Zhang, Hongwei, Yu, Meihua, Song, Hao, Noonan, Owen, Zhang, Jun, Yang, Yannan, Zhou, Liang and Yu, Chengzhong (2015). Self-Organized Mesostructured Hollow Carbon Nanoparticles via a Surfactant-Free Sequential Heterogeneous Nucleation Pathway. Chemistry of Materials, 27 (18), 6297-6304. doi: 10.1021/acs.chemmater.5b01993

Self-Organized Mesostructured Hollow Carbon Nanoparticles via a Surfactant-Free Sequential Heterogeneous Nucleation Pathway

2015

Journal Article

Synthesis of silica nanoparticles with controllable surface roughness for therapeutic protein delivery

Niu, Yuting, Yu, Meihua, Zhang, Jun, Yang, Yannan, Xu, Chun, Yeh, Michael, Taran, Elena, Hou, Jeff Jia Cheng, Gray, Peter P. and Yu, Chengzhong (2015). Synthesis of silica nanoparticles with controllable surface roughness for therapeutic protein delivery. Journal of Materials Chemistry B, 3 (43), 8477-8485. doi: 10.1039/c5tb01405k

Synthesis of silica nanoparticles with controllable surface roughness for therapeutic protein delivery

2015

Journal Article

Shaping nanoparticles with hydrophilic compositions and hydrophobic properties as nanocarriers for antibiotic delivery

Ahmad Nor, Yusilawati, Niu, Yuting, Karmakar, Surajit, Zhou, Liang, Xu, Chun, Zhang, Jun, Zhang, Hongwei, Yu, Meihua, Mahony, Donna, Mitter, Neena, Cooper, Matthew and Yu, Cheng Zhong (2015). Shaping nanoparticles with hydrophilic compositions and hydrophobic properties as nanocarriers for antibiotic delivery. ACS Central Science, 1 (6), 328-334. doi: 10.1021/acscentsci.5b00199

Shaping nanoparticles with hydrophilic compositions and hydrophobic properties as nanocarriers for antibiotic delivery

2015

Journal Article

Gamma tocotrienol targets tyrosine phosphatase SHP2 in mammospheres resulting in cell death through RAS/ERK pathway

Gu, Wenyi, Prasadam, Indira, Yu, Meihua, Zhang, Fengxia, Ling, Patrick, Xiao, Yin and Yu, Chengzhong (2015). Gamma tocotrienol targets tyrosine phosphatase SHP2 in mammospheres resulting in cell death through RAS/ERK pathway. BMC Cancer, 15 (1) 609, 1-11. doi: 10.1186/s12885-015-1614-1

Gamma tocotrienol targets tyrosine phosphatase SHP2 in mammospheres resulting in cell death through RAS/ERK pathway

2015

Journal Article

Preparation of fluorescent mesoporous hollow silica-fullerene nanoparticles via selective etching for combined chemotherapy and photodynamic therapy

Yang, Yannan, Yu, Meihua, Song, Hao, Wang, Yue and Yu, Chengzhong (2015). Preparation of fluorescent mesoporous hollow silica-fullerene nanoparticles via selective etching for combined chemotherapy and photodynamic therapy. Nanoscale, 7 (28), 11894-11898. doi: 10.1039/c5nr02769a

Preparation of fluorescent mesoporous hollow silica-fullerene nanoparticles via selective etching for combined chemotherapy and photodynamic therapy

2015

Journal Article

Biphasic synthesis of large-pore and well-dispersed benzene bridged mesoporous organosilica nanoparticles for intracellular protein delivery

Yang, Yannan, Niu, Yuting, Zhang, Jun, Meka, Anand Kumar, Zhang, Hongwei, Xu, Chun, Lin, Chun Xiang Cynthia, Yu, Meihua and Yu, Chengzhong (2015). Biphasic synthesis of large-pore and well-dispersed benzene bridged mesoporous organosilica nanoparticles for intracellular protein delivery. Small, 11 (23), 2743-2749. doi: 10.1002/smll.201402779

Biphasic synthesis of large-pore and well-dispersed benzene bridged mesoporous organosilica nanoparticles for intracellular protein delivery

2015

Journal Article

Synthesis of mesoporous carbon nanoparticles with large and tunable pore sizes

Liu, Chao, Yu, Meihua, Li, Yang, Li, Jiansheng, Wang, Jing, Yu, Chengzhong and Wang, Lianjun (2015). Synthesis of mesoporous carbon nanoparticles with large and tunable pore sizes. Nanoscale, 7 (27), 11580-11590. doi: 10.1039/c5nr02389k

Synthesis of mesoporous carbon nanoparticles with large and tunable pore sizes

2015

Journal Article

Controlled synthesis of hexagonal mesostructure silica and macroporous ordered siliceous foams for VOCs adsorption

Wang, Hongning, Rong, Xiao, Han, Lu, Tang, Mei, Yu, Meihua, Zhang, Jun, Huang, Weiqiu and Chen, Ruoyu (2015). Controlled synthesis of hexagonal mesostructure silica and macroporous ordered siliceous foams for VOCs adsorption. RSC Advances, 5 (8), 5695-5703. doi: 10.1039/c4ra12553c

Controlled synthesis of hexagonal mesostructure silica and macroporous ordered siliceous foams for VOCs adsorption

2014

Other Outputs

Designed synthesis of mono-dispersed silica-based nanostructures and their applications in drug/gene delivery

Yu, Meihua (2014). Designed synthesis of mono-dispersed silica-based nanostructures and their applications in drug/gene delivery. PhD Thesis, Australian Institute for Bioengineering & Nanotechnology, The University of Queensland. doi: 10.14264/uql.2014.398

Designed synthesis of mono-dispersed silica-based nanostructures and their applications in drug/gene delivery

2014

Journal Article

An approach to prepare polyethylenimine functionalized silica-based spheres with small size for siRNA delivery

Yu, Meihua, Niu, Yuting, Yang, Yannan, Hartono, Sandy Budi, Yang, Jie, Huang, Xiaodan, Thorn, Peter and Yu, Chengzhong (2014). An approach to prepare polyethylenimine functionalized silica-based spheres with small size for siRNA delivery. ACS Applied Materials and Interfaces, 6 (18), 15626-15631. doi: 10.1021/am503060n

An approach to prepare polyethylenimine functionalized silica-based spheres with small size for siRNA delivery

2014

Journal Article

Synthesis of SBA-15 rods with small sizes for enhanced cellular uptake

Yang, Yannan, Karmakar, Surajit, Zhang, Jun, Yu, Meihua, Mitter, Neena and Yu, Chengzhong (2014). Synthesis of SBA-15 rods with small sizes for enhanced cellular uptake. Journal of Materials Chemistry B, 2 (30), 4929-4934. doi: 10.1039/c4tb00595c

Synthesis of SBA-15 rods with small sizes for enhanced cellular uptake

2014

Journal Article

Synthesis of multi-functional large pore mesoporous silica nanoparticles as gene carriers

Hartono, Sandy B., Yu, Meihua, Gu, Wenyi, Yang, Jie, Strounina, Ekaterina, Wang, Xiaolin, Qiao, Shizhang and Yu, Chengzhong (2014). Synthesis of multi-functional large pore mesoporous silica nanoparticles as gene carriers. Nanotechnology, 25 (5) 055701, 055701.1-055701.13. doi: 10.1088/0957-4484/25/5/055701

Synthesis of multi-functional large pore mesoporous silica nanoparticles as gene carriers

2014

Journal Article

Functionalized large pore mesoporous silica nanoparticles for gene delivery featuring controlled release and co-delivery

Hartono, Sandy Budi, Phuoc, Nghia Truong, Yu, Meihua, Jia, Zhongfan, Monteiro, Michael J., Qiao, Shizhang and Yu, Chengzhong (2014). Functionalized large pore mesoporous silica nanoparticles for gene delivery featuring controlled release and co-delivery. Journal of Materials Chemistry B, 2 (16), 718-726. doi: 10.1039/C3TB21015D

Functionalized large pore mesoporous silica nanoparticles for gene delivery featuring controlled release and co-delivery

2014

Journal Article

Facile synthesis of ultra-small hybrid silica spheres for enhanced penetration of 3D glioma spheroids

Yu, Meihua, Karmakar, Surajit, Yang, Jie, Zhang, Hongwei, Yang, Yannan, Thorn, Peter and Yu, Chengzhong (2014). Facile synthesis of ultra-small hybrid silica spheres for enhanced penetration of 3D glioma spheroids. Chemical Communications, 50 (13), 1527-1529. doi: 10.1039/C3CC48416E

Facile synthesis of ultra-small hybrid silica spheres for enhanced penetration of 3D glioma spheroids

2014

Journal Article

Mesoporous silica nanoparticles enhance the cytotoxicity of curcumin

Jambhrunkar, Siddharth, Karmakar, Surajit, Popat, Amirali, Yu, Meihua and Yu, Chengzhong (2014). Mesoporous silica nanoparticles enhance the cytotoxicity of curcumin. RSC Advances, 4 (2), 709-712. doi: 10.1039/c3ra44257h

Mesoporous silica nanoparticles enhance the cytotoxicity of curcumin

2014

Journal Article

Synthesis of silica vesicles with controlled entrance size for high loading, sustained release, and cellular delivery of therapeutical proteins

Zhang, Jun, Karmakar, Surajit, Yu, Meihua, Mitter, Neena, Zou, Jin and Yu, Chengzhong (2014). Synthesis of silica vesicles with controlled entrance size for high loading, sustained release, and cellular delivery of therapeutical proteins. Small, 10 (24), 5068-5076. doi: 10.1002/smll.201401538

Synthesis of silica vesicles with controlled entrance size for high loading, sustained release, and cellular delivery of therapeutical proteins

2014

Journal Article

Synthesis of silica vesicles with small sizes and reduced aggregation for photodynamic therapy

Yang, Yannan, Karmakar, Surajit, Yu, Meihua, Popat, Amirali and Yu, Chengzhong (2014). Synthesis of silica vesicles with small sizes and reduced aggregation for photodynamic therapy. Chemistry Letters, Article in press (3), 316-318. doi: 10.1246/cl.130930

Synthesis of silica vesicles with small sizes and reduced aggregation for photodynamic therapy

2013

Journal Article

Nanoparticles mimicking viral surface topography for enhanced cellular delivery

Niu, Yuting, Yu, Meihua, Hartono, Sandy B., Yang, Jie, Xu, Hongyi, Zhang, Hongwei, Zhang, Jun, Zou, Jin, Dexter, Annette, Gu, Wenyi and Yu, Chengzhong (2013). Nanoparticles mimicking viral surface topography for enhanced cellular delivery. Advanced Materials, 25 (43), 6233-6237. doi: 10.1002/adma.201302737

Nanoparticles mimicking viral surface topography for enhanced cellular delivery

2013

Journal Article

High-content, well-dispersed gamma-Fe2O3 nanoparticles encapsulated in macroporous silica with superior arsenic removal performance

Yang, Jie, Zhang, Hongwei, Yu, Meihua, Emmanuelawati, Irene, Zou, Jin, Yuan, Zhiguo and Yu, Chengzhong (2013). High-content, well-dispersed gamma-Fe2O3 nanoparticles encapsulated in macroporous silica with superior arsenic removal performance. Advanced Functional Materials, Early View (10), 1-10. doi: 10.1002/adfm.201302561

High-content, well-dispersed gamma-Fe2O3 nanoparticles encapsulated in macroporous silica with superior arsenic removal performance

Funding

Past funding

  • 2018 - 2022
    A Nano-platform for Affordable and Ultra-sensitive Bio-marker Detection
    ARC Linkage Projects
    Open grant
  • 2018
    Assessment of Novel Nanoadjuvants for the Development of Potent Therapeutic Cancer Vaccines
    UQ Foundation
    Open grant
  • 2018
    Nanotechnology-medicated therapeutic HPV DNA vaccines
    UQ Early Career Researcher
    Open grant
  • 2017 - 2020
    Engineered Spiky Silica Nanoparticles as Effective Immune Adjuvants by Activating Inflammasome and Enhancing Cellular Uptake
    NHMRC Early Career Fellowships
    Open grant
  • 2016
    Advance Queensland Research Fellowship (Early): Nano-pollen encapsulated lysozyme: a safe alternative to antibiotics for livestock
    Advance Queensland Research Fellowships
    Open grant
  • 2012 - 2013
    A general platform technology for functional nanocomposites with advanced applications
    UWA-UQ Bilateral Research Collaboration Award
    Open grant

Supervision

Availability

Dr Meihua Yu is:
Available for supervision

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Supervision history

Completed supervision

Media

Enquiries

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