Long-Hai Wang

Long-Hai Wang

Cornell University

H-index: 25

North America-United States

About Long-Hai Wang

Long-Hai Wang, With an exceptional h-index of 25 and a recent h-index of 21 (since 2020), a distinguished researcher at Cornell University, specializes in the field of Biomaterials, Biomedical engineering, Cell therapy, Type 1 diabetes, Gene therapy.

His recent articles reflect a diverse array of research interests and contributions to the field:

Phosphatidylserine-targeting bis (zinc-dipicolylamine) farnesol inhibits ATP production in cancer cells to overcome multidrug resistance

Methods and devices for providing oxygen to encapsulated cells

Inflammation-induced subcutaneous neovascularization for the long-term survival of encapsulated islets without immunosuppression

In vitro oxygen imaging of acellular and cell-loaded beta cell replacement devices

DPA‐Zinc around Polyplexes Acts Like PEG to Reduce Protein Binding While Targeting Cancer Cells

Easy access to diverse multiblock copolymers with on‐demand blocks via thioester‐relayed in‐chain cascade copolymerization

Co-delivery of a tumor microenvironment-responsive disulfiram prodrug and CuO 2 nanoparticles for efficient cancer treatment

Direct cytosolic delivery of DNA by creating fast closable holes in the cell membrane

Long-Hai Wang Information

University

Position

___

Citations(all)

1788

Citations(since 2020)

1530

Cited By

614

hIndex(all)

25

hIndex(since 2020)

21

i10Index(all)

40

i10Index(since 2020)

36

Email

University Profile Page

Google Scholar

Long-Hai Wang Skills & Research Interests

Biomaterials

Biomedical engineering

Cell therapy

Type 1 diabetes

Gene therapy

Top articles of Long-Hai Wang

Phosphatidylserine-targeting bis (zinc-dipicolylamine) farnesol inhibits ATP production in cancer cells to overcome multidrug resistance

Supramolecular Materials

2024/4/24

Methods and devices for providing oxygen to encapsulated cells

2024/1/25

Inflammation-induced subcutaneous neovascularization for the long-term survival of encapsulated islets without immunosuppression

Nature Biomedical Engineering

2023/12/5

In vitro oxygen imaging of acellular and cell-loaded beta cell replacement devices

Scientific Reports

2023/9/20

DPA‐Zinc around Polyplexes Acts Like PEG to Reduce Protein Binding While Targeting Cancer Cells

Advanced Healthcare Materials

2023/8

Easy access to diverse multiblock copolymers with on‐demand blocks via thioester‐relayed in‐chain cascade copolymerization

Angewandte Chemie

2023/4/3

Co-delivery of a tumor microenvironment-responsive disulfiram prodrug and CuO 2 nanoparticles for efficient cancer treatment

Nanoscale Advances

2023

Direct cytosolic delivery of DNA by creating fast closable holes in the cell membrane

Chemical Engineering Journal

2023/1/1

Biodegradable hydrogels with photodynamic antibacterial activity promote wound healing and mitigate scar formation

Biomaterials Science

2023

A safe, fibrosis‐mitigating, and scalable encapsulation device supports long‐term function of insulin‐producing cells

Small

2022/2

Caging pyrophosphate structure blocks the cell wall synthesis to kill bacteria without detectable resistance

Chemical Engineering Journal

2022/12/15

A predictive computational platform for optimizing the design of bioartificial pancreas devices

Nature communications

2022/10/13

Engineering a Hierarchical Biphasic Gel for Subcutaneous Vascularization

Advanced Healthcare Materials

2022/10

Tumor Microenvironment Triggered the In Situ Synthesis of an Excellent Sonosensitizer in Tumor for Sonodynamic Therapy

ACS Applied Materials & Interfaces

2022/6/7

High DNA-Binding Affinity and Gene-Transfection Efficacy of Bioreducible Cationic Nanomicelles

2021/12/1

Long-Hai Wang
Long-Hai Wang

H-Index: 15

Tug-of-War between Covalent Binding and Electrostatic Interaction Effectively Killing E. coli without Detectable Resistance

ACS Applied Materials & Interfaces

2021/11/24

A broad‐spectrum antimicrobial and antiviral membrane inactivates SARS‐CoV‐2 in minutes

Advanced functional materials

2021/11

A bioinspired scaffold for rapid oxygenation of cell encapsulation systems

Nature communications

2021/10/6

A zwitterionic polyurethane nanoporous device with low foreign‐body response for islet encapsulation

Advanced Materials

2021/10

Atmosphere-breathing refillable biphasic device for cell replacement therapy

2021/6/10

See List of Professors in Long-Hai Wang University(Cornell University)

Co-Authors

academic-engine