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Bacteria, eating Plastic and producing Multipurpose Spider Silk Photo: Kareni, Pixabay
05.02.2024

Bacteria, eating Plastic and producing Multipurpose Spider Silk

For the first time, researchers have used bacteria to “upcycle” waste polyethylene: Move over Spider-Man: Researchers at Rensselaer Polytechnic Institute have developed a strain of bacteria that can turn plastic waste into a biodegradable spider silk with multiple uses.

Their new study marks the first time scientists have used bacteria to transform polyethylene plastic — the kind used in many single-use items — into a high-value protein product.

That product, which the researchers call “bio-inspired spider silk” because of its similarity to the silk spiders use to spin their webs, has applications in textiles, cosmetics, and even medicine.

For the first time, researchers have used bacteria to “upcycle” waste polyethylene: Move over Spider-Man: Researchers at Rensselaer Polytechnic Institute have developed a strain of bacteria that can turn plastic waste into a biodegradable spider silk with multiple uses.

Their new study marks the first time scientists have used bacteria to transform polyethylene plastic — the kind used in many single-use items — into a high-value protein product.

That product, which the researchers call “bio-inspired spider silk” because of its similarity to the silk spiders use to spin their webs, has applications in textiles, cosmetics, and even medicine.

“Spider silk is nature’s Kevlar,” said Helen Zha, Ph.D., an assistant professor of chemical and biological engineering and one of the RPI researchers leading the project. “It can be nearly as strong as steel under tension. However, it’s six times less dense than steel, so it’s very lightweight. As a bioplastic, it’s stretchy, tough, nontoxic, and biodegradable.”

All those attributes make it a great material for a future where renewable resources and avoidance of persistent plastic pollution are the norm, Zha said.

Polyethylene plastic, found in products such as plastic bags, water bottles, and food packaging, is the biggest contributor to plastic pollution globally and can take upward of 1,000 years to degrade naturally. Only a small portion of polyethylene plastic is recycled, so the bacteria used in the study could help “upcycle” some of the remaining waste.

Pseudomonas aeruginosa, the bacteria used in the study, can naturally consume polyethylene as a food source. The RPI team tackled the challenge of engineering this bacteria to convert the carbon atoms of polyethylene into a genetically encoded silk protein. Surprisingly, they found that their newly developed bacteria could make the silk protein at a yield rivaling some bacteria strains that are more conventionally used in biomanufacturing.

The underlying biological process behind this innovation is something people have employed for millennia.

“Essentially, the bacteria are fermenting the plastic. Fermentation is used to make and preserve all sorts of foods, like cheese, bread, and wine, and in biochemical industries it’s used to make antibiotics, amino acids, and organic acids,” said Mattheos Koffas, Ph.D., Dorothy and Fred Chau ʼ71 Career Development Constellation Professor in Biocatalysis and Metabolic Engineering, and the other researcher leading the project, and who, along with Zha, is a member of the Center for Biotechnology and Interdisciplinary Studies at Rensselaer.

To get bacteria to ferment polyethylene, the plastic is first “predigested,” Zha said. Just like humans need to cut and chew our food into smaller pieces before our bodies can use it, the bacteria has difficulty eating the long molecule chains, or polymers, that comprise polyethylene.

In the study, Zha and Koffas collaborated with researchers at Argonne National Laboratory, who depolymerized the plastic by heating it under pressure, producing a soft, waxy substance. Next, the team put a layer of the plastic-derived wax on the bottoms of flasks, which served as the nutrient source for the bacteria culture. This contrasts with typical fermentation, which uses sugars as the nutrient source.

“It’s as if, instead of feeding the bacteria cake, we’re feeding it the candles on the cake,” Zha said.

Then, as a warming plate gently swirled the flasks’ contents, the bacteria went to work. After 72 hours, the scientists strained out the bacteria from the liquid culture, purified the silk protein, and freeze dried it. At that stage, the protein, which resembled torn up cotton balls, could potentially be spun into thread or made into other useful forms.

“What’s really exciting about this process is that, unlike the way plastics are produced today, our process is low energy and doesn’t require the use of toxic chemicals,” Zha said. “The best chemists in the world could not convert polyethylene into spider silk, but these bacteria can. We’re really harnessing what nature has developed to do manufacturing for us.”

However, before upcycled spider silk products become a reality, the researchers will first need to find ways to make the silk protein more efficiently.

“This study establishes that we can use these bacteria to convert plastic to spider silk. Our future work will investigate whether tweaking the bacteria or other aspects of the process will allow us to scale up production,” Koffas said.

“Professors Zha and Koffas represent the new generation of chemical and biological engineers merging biological engineering with materials science to manufacture ecofriendly products. Their work is a novel approach to protecting the environment and reducing our reliance on nonrenewable resources,” said Shekhar Garde, Ph.D., dean of RPI’s School of Engineering.

The study, which was conducted by first author Alexander Connor, who earned his doctorate from RPI in 2023, and co-authors Jessica Lamb and Massimiliano Delferro with Argonne National Laboratory, is published in the journal “Microbial Cell Factories.”

Source:

Samantha Murray, Rensselaer

Photo: pixabay
06.07.2021

»Waste4Future«: Today's Waste becomes Tomorrow's Resource

Fraunhofer Institutes pave new ways in plastics recycling

A sustainable society, the renunciation of fossil raw materials, climate-neutral processes - also the chemical industry has committed itself to these goals. For the industry, this means a huge challenge within the next years and decades. This structural change can succeed if all activities - from the raw material base to material flows and process technology to the end of a product's life cycle - are geared towards the goal of sustainable value creation. The key to this is innovation.

Fraunhofer Institutes pave new ways in plastics recycling

A sustainable society, the renunciation of fossil raw materials, climate-neutral processes - also the chemical industry has committed itself to these goals. For the industry, this means a huge challenge within the next years and decades. This structural change can succeed if all activities - from the raw material base to material flows and process technology to the end of a product's life cycle - are geared towards the goal of sustainable value creation. The key to this is innovation.

Plastics such as polyethylene (PE), polypropylene (PP) or polystyrene (PS), which are currently produced almost entirely from fossil raw materials, are fundamental to many everyday products and modern technologies. The carbon contained in plastics is an important resource for the chemical industry. If it is possible to better identify such carbon-containing components in waste, to recycle them more effectively, and to use them again to produce high-quality raw materials for industry, the carbon can be kept in the cycle. This not only reduces the need for fossil resources, but also pollution with CO2 emissions and plastic waste. At the same time, the security of supply for industry is improved because an additional source of carbon is tapped.

The "Waste4Future" lighthouse project therefore aims to create new opportunities for recycling plastics in order to make the carbon they contain available as a "green" resource for the chemical industry. "We are thus paving the way for a carbon circular economy in which valuable new base molecules are obtained from plastic waste and emissions are largely avoided: Today's waste becomes tomorrow's resource," says Dr.-Ing. Sylvia Schattauer, deputy director of the Fraunhofer Institute for Microstructure of Materials and Systems IMWS, which is heading the project. "With the know-how of the participating institutes, we want to show how the comprehensive recycling of waste containing plastics without loss of carbon is possible and ultimately economical through interlocking, networked processes." The outcome of the project, which will run until the end of 2023, is expected to be innovative recycling technologies for complex waste that can be used to obtain high-quality recyclates.

Specifically, the development of a holistic, entropy-based assessment model is planned (entropy = measure of the disorder of a system), which will reorganize the recycling chain from process-guided to material-guided. A new type of sorting identifies which materials and in particular which plastic fractions are contained in the waste. Based on this analysis, the total stream is separated and a targeted decision is then made for the resulting sub-streams as to which recycling route is the most technically, ecologically and economically sensible for this specific waste quantity. What cannot be further utilized by means of mechanical recycling is available for chemical recycling, always with the aim of preserving the maximum possible amount of carbon compounds. Burning waste containing plastics at the end of the chain is thus eliminated.

The challenges for research and development are considerable. These include the complex evaluation of both input materials and recyclates according to ecological, economic and technical criteria. Mechanical recycling must be optimized, and processes and technologies must be established for the key points in the material utilization of plastic fractions. In addition, suitable sensor technology must be developed that can reliably identify materials in the sorting system. Machine learning methods will also be used, and the aim is to link them to a digital twin that represents the properties of the processed materials.

Another goal of the project is the automated optimization of the formulation development of recyclates from different material streams. Last but not least, an economic evaluation of the new recycling process chain will be carried out, for example with regard to the effects of rising prices for CO2 certificates or new regulatory requirements. The project consortium will also conduct comprehensive life cycle analysis (LCA) studies for the individual recycling technologies to identify potential environmental risks and opportunities.

For the development of the corresponding solutions, the participating institutes are in close exchange with companies from the chemical industry and plastics processing, waste management, recycling plant construction and recycling plant operation, in order to consider the needs of industry in a targeted manner and thus increase the chances of rapid application of the results achieved.

The following Institutes are involved in the Fraunhofer lighthouse project "Waste4Future":

  • Fraunhofer Institute for Microstructure of Materials and Systems IMWS (lead)
  • Fraunhofer Institute for Non-Destructive Testing IZFP
  • Fraunhofer Institute for Materials Recycling and Resource Strategy IWKS
  • Fraunhofer Institute of Optronics, System Technologies and Image Exploitation IOSB
  • Fraunhofer Institute for High Frequency Physics and Radar Techniques FHR
  • Fraunhofer Institute for Structural Durability and System Reliability LBF
  • Fraunhofer Institute for Process Engineering and Packaging IVV
Taiwan's Textile Industry sustains its Position with Innovations Photo: Pixabay
25.09.2018

TAIWAN'S TEXTILE INDUSTRY SUSTAINS ITS POSITION WITH INNOVATIONS

  • Manufacturers rely, among others, on German Machines

Tokyo (GTAI) - When it comes to functional textiles, Taiwan belongs to the international top league. To ensure that this remains the case, industry manufacturers invest in modern equipment and innovations.

Taiwan is an important global supplier of functional textiles. The sector wants to maintain this position and expand it as much as possible. They are therefore investing in new capacities, research and development. There are good sales opportunities for suppliers of pre-products and equipment.

The demand for functional textiles is increasing in the sports, leisure and footwear industries. In other sectors, such as the automotive and medical industries, building materials and agricultural aids, these are also increasingly being used. Functional textiles are usually not recognizable as Taiwan products. Nevertheless, some of them are very visible.

  • Manufacturers rely, among others, on German Machines

Tokyo (GTAI) - When it comes to functional textiles, Taiwan belongs to the international top league. To ensure that this remains the case, industry manufacturers invest in modern equipment and innovations.

Taiwan is an important global supplier of functional textiles. The sector wants to maintain this position and expand it as much as possible. They are therefore investing in new capacities, research and development. There are good sales opportunities for suppliers of pre-products and equipment.

The demand for functional textiles is increasing in the sports, leisure and footwear industries. In other sectors, such as the automotive and medical industries, building materials and agricultural aids, these are also increasingly being used. Functional textiles are usually not recognizable as Taiwan products. Nevertheless, some of them are very visible.

For example, at least 15 out of 32 teams at the 2018 FIFA World Cup wore clothing made with textiles of Taiwanese origin for internationally renowned brand names, according to the Taiwan Industrial Development Bureau (IDB). According to the Taiwan Footwear Manufacturers Association, Taiwanese manufacturers are responsible for approximately 80 percent of all sports shoes produced worldwide.

Textile manufacturers invest
Far Eastern New Century (FENC) is one of the largest textile manufacturers on the island. Its production capacity is nowadays mainly located abroad with productions in China, Japan, the USA and Vietnam. FENC is also expanding its capacity in Taiwan. Polyester spunbonded nonwovens have been produced for the Asian market in a joint venture with Freudenberg in Germany since 1987.

Freudenberg Far Eastern Spunweb has announced that it will set up a third production line for nonwovens at the Tayuan plant, thereby increasing the existing production of 20,000 tons by 11,000 tons per year. Construction of the new production facility, which is scheduled to start operations in 2020, has now begun. The latest automated production technology is to be used. According to the company, the investments amount will approximately be at USD 43 million.

Biggest companies in the textile industry in Taiwan by sales
(in USD million; change compared to previous year in %)

Company 2016 2017 Change
Far Eastern New Century Corp. 6,679 7,157 0.,9
Formosa Taffeta Co., Ltd. 1,233 1,337 2.2
Shinkong Synthetic Fiber Corporation 1,066 1,200 6.1
Eclat Textile Co., Ltd. 759 796 -1.2
Makalot Industrial Co., Ltd. 685 735 1.2
Tainan Spinning Co., Ltd. 602 692 8.3

Source: CommonWealth Magazine, Taiwan Stock Exchange

Germany remains an important equipment supplier
Taiwan's textile manufacturers import their equipment mainly from China, Japan and Germany, with some of the machines produced in China coming from companies with Japanese, German, Italian or Taiwanese parent companies. German deliveries declined by 13.7 percent to USD 71.1 compared to 2016 million in 2017. However, Taiwan's imports from Germany increased by 24.3 percent in the first six months of 2018, exceeding deliveries from Japan at USD 42.5 million.

The fact that the import of equipment remains at a high level has to do with the fact that companies in the textile industry in Taiwan are modernizing existing plants and converting them to Industry 4.0. In addition, the number of textile manufacturers in Taiwan has increased in recent years. According to statistics from the Taiwan Federation of Textiles, the number of companies rose from 3,143 to 3,214 between 2014 and 2017.

Main suppliers of textile machinery *)
to Taiwan (USD million; change in % compared to previous year)

Supplying country 2016 2017 Change
China 108.7 111.0 2.1
Japan 97.2 97.2 0
Germany 82.5 71.1 -13.7
Italy 32.8 23.8 -27.3
Switzerland 13.6 14.1 3.6
USA 19.2 12.1 -37.2
Total 405.4 364.7 -10.0

*) HS-Codes 8444-8453; without 8450
Source: Customs Statistics, Ministry of Finance

Core functions remain in Taiwan
By contrast, the production value of the textile sector fell slightly. In local currency terms, it fell in 2017 compared with 2016 by 1.7 percent. Converted to US dollars, the production value of textiles was USD 9 billion, according to the statistics from the Ministry of Economic Affairs. The production of synthetic fibers stagnated at just under USD 3 billion in 2017.

Taiwan is home to the headquarters of the often family-run textile companies. Purchasing and marketing decisions are mainly made here, and, last but not least, research and development are carried out here too. For example, several manufacturers are currently developing smart textiles with integrated temperature control, heart and location functions.

Foreign activities are diversified
The textile manufacturers are investing predominantly in new capacities outside Taiwan. For example, FENC 2018 is expanding its capacity for PET (polyethylene terephthalate) and terephthalic acid (PTA), which among others are required for the production of synthetic fibers. Together with an Indonesian and a Mexican partner, FENC acquires two new plants of a bankrupt US company in West Virginia and Texas. Among other things, this reduces the risk of possible trade restrictions and, conversely, increases the opportunity to benefit from free trade agreements.

Vietnam is also a focus of investment. Here, most Taiwanese textile companies are in the process of establishing or expanding new capacities. FENC, Formosa Taffeta, Eclat, Makalot and several others invested in the southeast Asian tigerland several years ago. By contrast, new investments in China have become rare, primarily due to rising wage costs.

 

More information:
Taiwan
Source:

Jürgen Maurer, Germany Trade & Invest www.gtai.de