Engineered yeast for converting plastic and biomass compounds to food additives

11 hours ago (acs.digitellinc.com)

> 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 temperatures and pressures to break down tough material into microbe-accessible pieces. Then, those pieces are fed to the programmed yeasts, which transform them into a variety of new food ingredients, including proteins, fats and acids. Finally, the researchers add fiber, starch and sweetener to the mix and extrude it through a 3D printer, forming protein-rich cookies dubbed µBites (pronounced "microbites"). [https://phys.org/news/2026-08-yeasts-pet-plastic-crop-protei...]

It kind of sounds like they made food out of corn plant stalks and leaves and "other biomass", added fiber, starch, and sweetener, but then just polluted the product with processed waste plastic as an additive. If this really is just using trash as a filler in actual food that's pretty dystopian. I'm sure companies would happily line up to sell their industrial waste products to food companies as an additive, but I'm not seeing the appeal in this for consumers.

  • Vegetables grown in shit, garbage, and pesticides are fine as long as the levels of harmful residues are low enough by the time they reach people's mouths. Not appealing, but also not that "dystopian"

Is there any of this ”bacteria converting plastic to fuel/food/neutral stuff“ actually applied anywhere at scale under economically reasonably conditions?

It will be interesting to see how much carbon dioxide is also created through this process.

Maybe the only thing more worrisome than microplastics everywhere is unstoppable plastics eating organisms everywhere, eating through all plastics everywhere.

  • Usually these bioengineered yeasts need pretty specific growth conditions in order to eat in this case ethylene glycol, not raw finished plastic. In this case they say "plastic-derived substrates" which means they're pre-processing the waste plastic.

    • >Usually these bioengineered yeasts need pretty specific growth conditions in order to eat

      Until, say, they mutate independently. Now, I have no idea how likely that is, but I think the fear is not baseless. There's a fun SF book, "Directive 51", which explores this a bit. Not a bad book to cuddle up with.

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    • > bioengineered yeasts need pretty specific growth conditions

      In a natural environment this will not hold. Organisms are unstable; they change all the time, simpler ones even more so. Mutants with a faster growth rate will, up to a certain maximum, take over from slower growing or growth-deficient mutants. There isn't really a compelling growth advantage for plastic-degrading organisms, which is one reason why plastic stays so long in the environment.

      All pre-processing steps further add to the cost, so we will year after year hear about it - and then wonder why nothing happens and plastics keep compounding in the ocean. And this is not new either: https://en.wikipedia.org/wiki/Diamond_v._Chakrabarty

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  • Perhaps soon you'll be needing to apply stains or sealants to your outdoor plastic items. Maybe even purchase treated plastic products that we worry leach toxic chemicals into their surroundings.

  • Timescale is the important bit. If organisms degrade plastics in a few hundred years then what plastics are uniquely valuable for will be quite fine indeed.

  • Why is that worrisome? Might give the fish a chance whose bellies are filling up with plastic rubbish

    • for all the reasons in the book/movie/television show 'The Andromeda Strain'.

  • There’s a fantastically silly but fun book about this the name of which eludes me.

  • there was a time in history before fungus came along and ate trees so there were just a huge amount of trees around that couldn't decay. (which is why we have coal actually) this could be something akin to that.

    • I've heard that the prevailing theory now is that it wasn't the lack of fungus that made coal. Instead, the earth was covered in tropical wetlands, and trees couldn't decay in the anoxic water.

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Someone needs to figure out how to convert mineral oil into food.

If it could be done, we solve world hunger overnight.

Oddly many countries explicitly have a law that such a thing is forbidden. I wonder it it was preemptively protecting farmers?

  • The Soviet Union ran such a program:

    https://www.nytimes.com/1973/11/10/archives/soviet-plant-to-...

    https://www.cia.gov/readingroom/docs/CIA-RDP91T01115R0001000...

    The term to search for is "single cell protein."

    There are newer approaches to making single cell protein from carbon dioxide and renewable energy instead of fossil oil, like Solein:

    https://www.solein.com/

    There are a few problems with turning oil into single cell protein:

    - Microorganisms have small cells that reproduce quickly, which means a lot of nucleic acids in the dry mass, which is trouble for animals (including humans) that can't tolerate a very high purine level in the diet.

    - The abundant cell walls of microorganisms also can cause illness when they're a high proportion of dietary intake.

    - Feeding single cell protein directly to people has to overcome traditions of cuisine, even in cases where it doesn't actually make people sick. Indirect usage of SCP (e.g. feeding it to salmon, and then having people eat salmon) can overcome that hurdle, but then the cost per human-edible calorie goes up too.

  • In WW2 Germany invented a way to convert coal into an edible, butter-like substance. I think it was very inefficient though (70 to 1 input/output ratio).

  • I couldn’t find anything about this in a cursory google search, do you have any more information or links on this?

  • is there a lot of mineral oil out there? what motivates the suggestion of this particular precursor?

  • This is a bit nonsensical. How is doing chemistry to mineral oil to turn it into some other hydrocarbon sludge with mediocre nutrition more effective than the stupid hydrocarbon sludge we already have: Corn syrup?

    Again, the ONLY reason there is still anyone, anywhere, who suffers from not enough food, is because people in the richest country on earth aren't even willing to spend a few million sending support to extremely needy countries.

    Instead, we take a huge fraction of our entire corn crop, turn it into ethanol, and burn it. The primary reason we do it is to waste corn, so that corn prices are higher. We purposely make food more expensive, as a kickback to some real assholes.

    World hunger could have been solved a century ago. No technology is required. Zero. At least until we have to figure out a reasonable way to make fertilizers more sustainable.

    You know petroleum is actually expensive for a commodity, right? For the price of one barrel of oil, you could get an entire ton of iron ore, 0.8 tons of coal, 20 bushels of corn (about 1000-1200 pounds), 500 pounds of milk, 500 pounds of refined sugar, etc. Petroleum is an input to agriculture, but it enables staggering yield outputs per gallon of input. No amount of chemistry can ever compete with that for simple thermodynamics reasons.

    Mechanized agriculture is so efficient that if you leave it to it's own devices it simply bankrupts itself every other year from oversupply. Damn near every functioning country artificially increases the price of basic agricultural commodities to ensure farms are stable. It's a massive handout to a cohort of people that nowadays are basically just very wealthy capital owners, but it also was the actual solution to famine, at least inside those countries.

    • The rich countries already send enough food to the poorer countries. The problem is their despotic and corrupt governments don't distribute it to the people who need it.

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In 2011 researchers identified a fungus named pestalotiopsis microspora. It gained widespread attention because it can digest polyurethane plastic and survive entirely in anaerobic conditions, making it a prime candidate for deployment at the bottom of landfills.

I for one look forward to serving this underground deity.

This keeps on re-emerging every year.

The primary issue that has consistently been a problem, is the cost.

soilent goo, again!

you, yes you, area "biomass compound", well maybe not quite yet, but soon, as these things go, but most definitly every last putrid smelly horrible thing is a "biomass compound", and when you add in plastic we are talking about most of the stuff found in millions of dumpsters, and most of the stuff actualy in dumps, or sewers.

This then solves the whole issue of what is allowed to go in which can or bin, which is anything you cant get money for or find someone who will hall it away for free.

I am very very sure that volunteers will soon show up wishing to "return to the great nutrient cycle"

but there is nothing to worry about as I am positive that everything will be tested and cynicly proven to be safe for human consumption

Honestly at this point I think the way to go may be to stop using plastics where they're not absolutely required, and to subsequently burn what goes into landfill while producing electricity and reclaiming heat. Better that than this.

  • Burn it? With all the talk of carbon capture? Recall that plastic literally consists of a mass of hydrocarbons. Why not bury it?

    • I think the legitimate answer was groundwater contamination, but that should be solved for other things we bury. I'm on board for non-biodegradable plastic trash sequestration

    • I'd argue that if we are burning plastics we get to dodge microplastics, and we get a second use of hydrocarbons. Burn enough plastic, maybe we can displace some gas. Optimistic, I realise.

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  • How do you define 'not absolutely required'?

    • Easy cases might be single use plastics outside of a medical environment and anything where there isn't a substitute with adequate properties (I'd ignore economics here and let the market solve)

      Ultimately a tricky thing to define though, no argument.

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