Abstract & Details
Description
Award ID: 2513460
This I-Corps project focuses on proteins containing functional materials that are compatible with existing manufacturing infrastructure, accelerating their commercial adoption. Embedding proteins into plastics creates a new class of hybrid materials, bioactive plastics. Bioactive plastics combine the unique functions of biology with the production throughput and versatile forms of synthetic materials. For instance, dispersing nanoscale enzymes within biodegradable polymers can lead to fully compostable plastics. This I-Corps project utilizes experiential learning coupled with a first-hand investigation of the industry ecosystem to assess the translation potential of the technology. This solution is based on factors that govern enzyme stabilities outside of their native environment, e.g. inside of plastic matrices and during the polymer processing. Specifically, the stabilization technology is guided by protein conformation, the activity of the short-range interactions, and the chemical and physical characteristics of the surrounding media. Here, embedded enzymes convert polymers into small molecules under industrial composting conditions. Protein integrity is maintained during plastic manufacturing processes like 3D printing, pelletizing, film casting, and molding. This enables the downstream processing of bioactive plastics for health and sustainability applications, such as surgical implants with embedded protein therapeutics and plastics programmed with custom degradation profiles for specific real-world environments (e.g., composts/landfills, oceans, or re/upcycling facilities). This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
NSF Program Director: Ruth Shuman
This I-Corps project focuses on proteins containing functional materials that are compatible with existing manufacturing infrastructure, accelerating their commercial adoption. Embedding proteins into plastics creates a new class of hybrid materials, bioactive plastics. Bioactive plastics combine the unique functions of biology with the production throughput and versatile forms of synthetic materials. For instance, dispersing nanoscale enzymes within biodegradable polymers can lead to fully compostable plastics. This I-Corps project utilizes experiential learning coupled with a first-hand investigation of the industry ecosystem to assess the translation potential of the technology. This solution is based on factors that govern enzyme stabilities outside of their native environment, e.g. inside of plastic matrices and during the polymer processing. Specifically, the stabilization technology is guided by protein conformation, the activity of the short-range interactions, and the chemical and physical characteristics of the surrounding media. Here, embedded enzymes convert polymers into small molecules under industrial composting conditions. Protein integrity is maintained during plastic manufacturing processes like 3D printing, pelletizing, film casting, and molding. This enables the downstream processing of bioactive plastics for health and sustainability applications, such as surgical implants with embedded protein therapeutics and plastics programmed with custom degradation profiles for specific real-world environments (e.g., composts/landfills, oceans, or re/upcycling facilities). This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
NSF Program Director: Ruth Shuman
| Status | Active |
|---|---|
| Effective start/end date | 09/15/25 → 08/31/26 |
Funding
- I-Corps Teams: $50,000.00
Active Fiscal Year
- FY2026
- FY2025
Start Fiscal Year
- FY2025
TIP Programs
- I-Corps Teams
Key Technology Areas
- Advanced Materials
- (confidence score: 100%)
- Biotechnology
- (confidence score: 100%)
Technology Foci
- Synthetic Biology
- (confidence score: 100%)
- Bio-manufacturing
- (confidence score: 100%)
- Biotechnology - Other than SynBio
- (confidence score: 100%)
- Other next-generation materials
- (confidence score: 93%)
Congressional District at Award
- District n. 12 of California
Current Congressional District
- District n. 12 of California
United States
- California
Core Based Statistical Area (CBSA)
- San Francisco-Oakland-Fremont, CA
County
- County: Alameda, CA
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