Add BrightSurf on Google Email

This cookie started its life as a plastic bottle

08.24.26 | American Chemical Society
Anker Laptop Power Bank 25,000mAh (Triple 100W USB-C)

Anker Laptop Power Bank 25,000mAh (Triple 100W USB-C) keeps Macs, tablets, and meters powered during extended observing runs and remote surveys.


CHICAGO, Aug. 24, 2026 — Plastic might be the last ingredient you would ever add to a cookie recipe. But a team of researchers is looking to change that. They’ve programmed yeasts to turn plastic and agricultural waste into edible proteins and flavoring molecules, creating a treat from trash. The technology not only offers a new upcycling method but could also sustain life in disaster zones or even deep-space missions with humans aboard.

The researchers will present their results at the fall meeting of the American Chemical Society (ACS) during the “Undergraduate and Graduate Research in Biochemistry and Chemical Biology” symposium in McCormick Place. ACS Fall 2026 is being held August 23-27.

“Microbes are very clever. So, we are using their traits to solve the problems we created.” — Lahiru Jayakody

As the world struggles with growing plastic pollution and increasing concerns about food security, researchers are looking for ways to turn one problem into a means of solving the other. So, a team from Southern Illinois University (SIU) Carbondale has put microbes to the test to transform plastic waste into edible food for humans. The work was conducted as part of a project led by NASA aimed at creating food for the resource-limited environment of deep-space exploration.

“We were trying to develop technologies for plastic upcycling to make more valuable products. We thought, why not focus on making food? Because plastic is carbon and food is carbon,” explains Associate Professor Lahiru Jayakody.

One of the most common forms of plastic is polyethylene terephthalate (PET), a material often used to make soda and water bottles. PET contains molecules with lots of carbon that could be rebuilt into something like a protein. And while that rebuilding could be done using chemical reactions and solvents in a lab, a simpler and more eco-friendly solution is to outsource the work to microbes. Jayakody adds, “microbes are very clever. So, we are using their traits to solve the problems we created.”

Scientists have long used microbes, including yeast, as miniature factories to make a variety of molecules. For example, insulin is no longer extracted from animal pancreases — now, yeast can be programmed to make it. Similarly, Jayakody and graduate student Sandhya Jayasekara programmed a variety of yeasts, including baker’s yeast, to convert molecules present in plastic and agricultural waste into proteins, vitamins, and flavorings.

The researchers took PET plastic, discarded corn plant stalks and leaves, and other biomass and put it through a proprietary process called oxidative hydrothermal dissolution. Created by SIU Carbondale Geology Professor Ken Anderson, this method uses water and oxygen at high temperature and pressure to break down tough material into microbe-accessible pieces. Then, those pieces are fed to the programmed yeasts, which reform those pieces into a variety of new food ingredients, including proteins, fats, and acids. Finally, the researchers add fiber, starch, and sweetener to the mix and then extruded it through a 3D printer, forming protein-rich cookies dubbed µBites (pronounced “microbites”).

Though the data show that µBites are safe to eat, the team is awaiting institutional approval to conduct taste tests. For now, the cookies have received high marks on aroma, with most participants agreeing that they would be willing to eat the cookies in resource-limited situations.

To make µBites into something consumers might opt for in less dire circumstances, Jayasekara created yeasts that can produce more food additives. Now, baker’s yeast can produce vanilla flavoring from plant biomass, while a different strain can now turn ethylene glycol from PET into beta-carotene, which the body can convert into vitamin A. “We’re using microbes to develop the cookie into a more attractive, consumer-friendly product,” says Jayasekara.

In the future, Jayakody and team hope to produce the main ingredients in the µBites using microbes, including the added starch, fiber, and sweetener. He also hopes µBites will be ready for public consumption within a few years and could be used both on Earth and in more extreme environments, like submarines or even colonies on the moon or Mars. “Global food demand is expected to rise 35–56% by the year 2050, and about 30% of the world population will be at risk of hunger in the future. The way to address that, I believe, is by using microbes,” he concludes.

The research was funded by the NASA Deep Space Food Challenge and a National Science Foundation Faculty Early Career Development Program (CAREER) grant.

A Headline Science YouTube Short about this topic will be posted on Monday, August 24. Reporters can access the video during the embargo period.

###

The American Chemical Society (ACS) is one of the world's largest scientific organizations and a global leader in advancing scientific knowledge. Founded in 1876, ACS' mission is to advance scientific knowledge, empower a global community, and champion scientific integrity. Guided by its vision of a world built on science, ACS brings together people, ideas, and resources to drive discovery and innovation, support the professional growth of scientists and students, and advance scientific discussion. Through its trusted publications, scientific meetings, community networks, education and career resources, and scientific information solutions, ACS helps scientists, educators, and students make a lasting impact on their communities and the world at large. Together, these efforts support ACS' commitment to improve all lives through the transforming power of chemistry.

Registered journalists can subscribe to the ACS journalist news portal on EurekAlert! to access embargoed and public science press releases. For media inquiries, contact newsroom@acs.org .

Note to journalists: Please report that this research was presented at a meeting of the American Chemical Society. ACS does not conduct research.

Follow us: Facebook | LinkedIn | Instagram

Title
Engineered yeast consortia for converting plastic and biomass-derived compounds into valuable food additives

Abstract
With billions of people experiencing hunger in 2025 and unable to afford a healthy diet, food insecurity remains a critical global challenge. “µBites", originally developed for the NASA Deep Space Food Challenge, represents a novel way of producing nutritious food by converting plastic and plant waste into edible, protein-rich supplements. Beyond space travel, µBites could offer a promising solution to address both food shortage and plastic pollution simultaneously. We have previously demonstrated the successful 3D printing of edible, µBites protein cookies using plastic-derived substrates and yeast biomass. In this study, we demonstrate the enhancement of flavor, aroma, and color of these cookies using naturally produced ingredients by safe-to-eat yeast strains, Saccharomyces boulardii , S. cerevisiae , and Rhodosporidium toruloides . We engineered S. cerevisiae to produce vanillin, the compound that is responsible for vanilla flavor and aroma, from ferulic acid. Adaptive laboratory evolution of R. toruloides enhanced its utilization of ethylene glycol as a carbon source to produce β-carotene, a vitamin A precursor. We demonstrated the production of these ingredients from waste biomass and plastic-derived substrates and combined with the yeast-derived protein to produce nutritionally enhanced 3D-printed “µBites”. This project's outcomes will revolutionize the production of next-generation microbially derived food ingredients from waste organic carbon, contributing to a circular economy of plastics.

Keywords

Contact Information

ACS Newsroom
American Chemical Society
newsroom@acs.org
Sarah Michaud
American Chemical Society
s_michaud@acs.org

How to Cite This Article

APA:
American Chemical Society. (2026, August 24). This cookie started its life as a plastic bottle. Brightsurf News. https://www.brightsurf.com/news/1EO9EK7L/this-cookie-started-its-life-as-a-plastic-bottle.html
MLA:
"This cookie started its life as a plastic bottle." Brightsurf News, Aug. 24 2026, https://www.brightsurf.com/news/1EO9EK7L/this-cookie-started-its-life-as-a-plastic-bottle.html.