Taimoor H. Qazi
Engineering · Purdue University West Lafayette
Publications
44
Citations
3,209
Est. group size
~3
Recurring co-author estimate
Active years
13
Publishing since 2014
Taimoor H. Qazi's research focuses on engineering biomaterials, particularly hydrogels, to study and support tissue repair and regeneration. His work includes designing injectable granular hydrogels for cell delivery and muscle injury repair, developing hydrogel-based models to study how cells interact with their surrounding matrix, and investigating how physical properties of tissue (such as water binding and mechanical stress) relate to healing and disease detection via imaging methods like MRI. This work sits at the intersection of materials science, cell biology, and regenerative medicine.
Publication output has been variable but generally steady over the last decade, with a dip around 2020 and 2024 followed by a rebound in 2025-2026, averaging under 4 papers per year over the last 5 years.
Generated by claude-sonnet-5 from public bibliographic data · Jul 20, 2026
- Determining the influence of ELF-EMFs on anabolic/catabolic remodeling using bioengineered tissue models
2026
- Water and ions binding to extracellular matrix drives stress relaxation, aiding MRI detection of swelling-associated pathology
Nature Biomedical Engineering · 2025
- Controlling Microparticle Aspect Ratio via Photolithography for Injectable Granular Hydrogel Formation and Cell Delivery
ACS Biomaterials Science & Engineering · 2025
- Development of Photocurable NorHA-dECM Hybrid Hydrogels to Study Cell–Matrix Interactions
ACS Macro Letters · 2025
- Cell-Instructive Biomaterials with Native-Like Biochemical Complexity
Annual Review of Biomedical Engineering · 2025
- Osmotic niche changes as multifaceted trigger of cellular regenerative processes in organ injury
bioRxiv (Cold Spring Harbor Laboratory) · 2025
- Granular Hydrogels Improve Myogenic Invasion and Repair after Volumetric Muscle Loss
Advanced Healthcare Materials · 2024
- Recent Advances in Implantable Biomaterials for the Treatment of Volumetric Muscle Loss
Cells Tissues Organs · 2024
- Odd skipped-related 1 controls the pro-regenerative response of fibro-adipogenic progenitors
npj Regenerative Medicine · 2023
- Granular hydrogels improve myogenic invasion and repair after volumetric muscle loss
bioRxiv (Cold Spring Harbor Laboratory) · 2023
- Water-binding strength as regulator of extracellular-matrix mechanics enables detection of swelling-associated biophysical alterations using MRI
Research Square · 2023
- Methods to Characterize Granular Hydrogel Rheological Properties, Porosity, and Cell Invasion
ACS Biomaterials Science & Engineering · 2022
- Sticking Together: Injectable Granular Hydrogels with Increased Functionality via Dynamic Covalent Inter‐Particle Crosslinking
Small · 2022
- Programming hydrogels to probe spatiotemporal cell biology
Cell stem cell · 2022
- Simultaneous One‐Pot Interpenetrating Network Formation to Expand 3D Processing Capabilities
Advanced Materials · 2022
- ACS Biomaterials Science & Engineering×4
- bioRxiv (Cold Spring Harbor Laboratory)×4
- Biomaterials×3
- Advanced Materials×3
- Scientific Reports×2
- Akhilesh K. Gaharwar
Engineering · Purdue University West Lafayette
- Sayan Deb Dutta
Engineering · Purdue University West Lafayette
- Bumsoo Han
Engineering · Purdue University West Lafayette
- Karthikeyan Subbiahanadar Chelladurai
Engineering · Purdue University West Lafayette
- Aleksander Skardal
Engineering · The Ohio State University
This profile was generated automatically from public scholarly data (OpenAlex). Group size and activity levels are estimates derived from co-authorship patterns.
Last updated Jul 20, 2026.
Claim or correct this profile