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The concept of the circular bioeconomy is a carbon neutral, sustainable system with zero waste. One vision for such an economy is based upon lignocellulosic biomass. This lignocellulosic circular bioeconomy requires CO absorption from biomass growth and the efficient deconstruction of recalcitrant biomass into solubilized and fractionated biopolymers which are then used as precursors for the sustainable production of high-quality liquid fuels, chemical bioproducts and bio-based materials. Here, we summarize the roles that molecular dynamics (MD) simulations and machine learning (ML) are playing in overcoming several fundamental challenges hindering the adoption of a circular bioeconomy. Specifically, we discuss the role of MD and ML/AI in overcoming lignocellulose recalcitrance by designing biomass pretreatment methods to efficiently produce solubilized cellulose/lignin/hemicellulose, and in improving energy-intensive manufacturing of biomass-based materials and their structural and mechanical properties. Quantum mechanical (QM) methods and MD simulations, in addition to offering a mechanistic understanding of biomass deconstruction and biomaterials design, can provide meaningful structural, energetics, and physiochemical properties as inputs to train AI/ML models. The ML models can guide the experimental prioritization of materials/solvents and process parameters that significantly accelerate the development of biofuel and biomaterial components of circular bioeconomy.
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http://dx.doi.org/10.1016/j.bpj.2025.09.006 | DOI Listing |
Biophys J
September 2025
Chemical Sciences Division, Oak Ridge National Laboratory, Oak Ridge, Tennessee.
The concept of the circular bioeconomy is a carbon neutral, sustainable system with zero waste. One vision for such an economy is based upon lignocellulosic biomass. This lignocellulosic circular bioeconomy requires CO absorption from biomass growth and the efficient deconstruction of recalcitrant biomass into solubilized and fractionated biopolymers which are then used as precursors for the sustainable production of high-quality liquid fuels, chemical bioproducts and bio-based materials.
View Article and Find Full Text PDFBioresour Technol
September 2025
Department of Chemical and Petroleum Engineering, Khalifa University of Science and Technology, PO Box 127788, Abu Dhabi, United Arab Emirates; Center for Membranes and Advanced Water Technology (CMAT), Khalifa University of Science and Technology, PO Box 127788, Abu Dhabi, United Arab Emirates. Ele
Electrotechnology has recently emerged as an eco-friendly method for enhancing microalgal processes. Electric fields can be applied to microalgae at different stages to improve their biomass productivity, high-value products (HVPs) content, harvesting efficiency, and cell disruption for biomolecule recovery. Incorporating them into microalgal processes can significantly contribute to achieving a circular bioeconomy.
View Article and Find Full Text PDFInt J Biol Macromol
September 2025
"Materials + Technologies" Research Group (GMT), Department of Chemical and Environmental Engineering, Faculty of Engineering of Gipuzkoa, University of Basque Country UPV/EHU, Donostia-San Sebastian, 20018, Spain. Electronic address:
Colloidal Lignin Particles (CLPs), with their polyphenolic structure, are promising sustainable alternatives to chemical UV filters. This study investigates the photochemical behavior of CLPs under ultraviolet irradiation synthetized from five different technical raw lignins (Alkali, Organosolv, two Enzymatic Hydrolyzed and Softwood Kraft Lignin) via solvent-shift procedure. The suspensions were irradiated using a self-developed UV-pen set-up and a commercially available UV chamber, enabling controlled UV exposure over time.
View Article and Find Full Text PDFBioresour Technol
September 2025
Department of Chemical Engineering, University of Almería, Almería 04120, Spain; Research Center in Agrifood Biotechnology (CIAMBITAL) University of Almería, Almería 04120, Spain. Electronic address:
This study investigated the valorisation of seawater desalination brine (61 g L1) by cultivating the halotolerant microalga Prymnesium parvum in 10-L bubble column photobioreactors, previously acclimated to a broad salinity range (5-61 g L1). Under optimized nutrients and irradiance, brine-based cultures achieved biomass yields (1.9 gL1) comparable to seawater controls.
View Article and Find Full Text PDFFood Chem
August 2025
Department of Food Science and Technology, University of California, Davis, Davis, CA 95616, USA. Electronic address:
Pomegranate processing generates large quantities of pomace and mesocarp, yet their carbohydrate composition remains largely unexplored. Here, we applied comprehensive mass spectrometry-based profiling to characterize monosaccharides, oligosaccharides, and polysaccharides from these side streams. Fructose and glucose dominated the free sugar fraction in both tissues.
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