Page last updated: 2024-08-17

lysine and lignin

lysine has been researched along with lignin in 8 studies

Research

Studies (8)

TimeframeStudies, this research(%)All Research%
pre-19902 (25.00)18.7374
1990's0 (0.00)18.2507
2000's0 (0.00)29.6817
2010's3 (37.50)24.3611
2020's3 (37.50)2.80

Authors

AuthorsStudies
Bock, HD; Hennig, U; Hoffmann, B; Kesting, U; Kuhla, S; Meinl, M; Völker, T; Wünsche, J; Zwierz, P1
Abraham, J; Baratou, F; Jacquot, R; Robin, P1
Anusree, M; Christopher, M; Mathew, AK; Nampoothiri, KM; Pandey, A; Sukumaran, RK1
Bikker, P; Hendriks, WH; Hulshof, TG; van der Poel, AF1
Bao, J; Chen, Z; Liu, G; Zhang, J1
Hao, C; Hou, B; Jiang, C; Li, X; Wang, X; Wu, J1
Chen, F; Chen, K; Qi, D; Qiu, X; Wang, D; Yuan, S1
Berr, A; Carles, CC; Chabouté, ME; Faigenboim, A; Fal, K; Ishkhneli, N; Le Masson, M; Moyal, NL; Pano, E; Tomkova, D; Villette, C; Williams, LE1

Trials

1 trial(s) available for lysine and lignin

ArticleYear
Assessment of protein quality of soybean meal and 00-rapeseed meal toasted in the presence of lignosulfonate by amino acid digestibility in growing pigs and Maillard reaction products.
    Journal of animal science, 2016, Volume: 94, Issue:3

    Topics: Amino Acids; Animal Feed; Animal Nutritional Physiological Phenomena; Animals; Brassica rapa; Diet; Dietary Proteins; Digestion; Glycine max; Ileum; Lignin; Lysine; Maillard Reaction; Swine

2016

Other Studies

7 other study(ies) available for lysine and lignin

ArticleYear
[Nutrient composition of some newly bred high protein and/or high lysine grains and their digestibility determined on growing pigs].
    Archiv fur Tierernahrung, 1978, Volume: 28, Issue:5

    Topics: Animal Nutritional Physiological Phenomena; Animals; Dietary Fats; Dietary Proteins; Digestion; Edible Grain; Female; Hordeum; Lignin; Lysine; Methods; Swine; Triticum; Zea mays

1978
[Study of the composition and nutritive value of corn opaque 2 and sunflower meal].
    Annales de la nutrition et de l'alimentation, 1970, Volume: 24, Issue:4

    Topics: Amino Acids; Animal Nutritional Physiological Phenomena; Animals; Aspergillus; Body Weight; Cellulose; Digestion; Flour; Food Microbiology; Food Preservation; Food Supply; Food-Processing Industry; Fungi; Glycine max; Helianthus; Intestinal Absorption; Lignin; Lysine; Nutritional Physiological Phenomena; Rats; Zea mays

1970
Detoxification of acidic biorefinery waste liquor for production of high value amino acid.
    Bioresource technology, 2016, Volume: 213

    Topics: Adsorption; Biomass; Biotechnology; Corynebacterium glutamicum; Fermentation; Furaldehyde; Lignin; Lysine; Waste Disposal, Fluid; Waste Products

2016
A preliminary study on l-lysine fermentation from lignocellulose feedstock and techno-economic evaluation.
    Bioresource technology, 2019, Volume: 271

    Topics: Corynebacterium glutamicum; Cost-Benefit Analysis; Fermentation; Hydrolysis; Lignin; Lysine; Starch; Zea mays

2019
Construction of a Lignosulfonate-Lysine Hydrogel for the Adsorption of Heavy Metal Ions.
    Journal of agricultural and food chemistry, 2020, Mar-11, Volume: 68, Issue:10

    Topics: Adsorption; Hydrogels; Kinetics; Lignin; Lysine; Metals, Heavy; Wastewater; Water Pollutants, Chemical; Water Purification

2020
Curcumin-loaded high internal phase emulsions stabilized with lysine modified lignin: a biological agent with high photothermal protection and antibacterial properties.
    Food & function, 2021, Aug-21, Volume: 12, Issue:16

    Topics: Anti-Bacterial Agents; Curcumin; Emulsions; Lignin; Lysine; Staphylococcus aureus

2021
Lysine 27 of histone H3.3 is a fine modulator of developmental gene expression and stands as an epigenetic checkpoint for lignin biosynthesis in Arabidopsis.
    The New phytologist, 2023, Volume: 238, Issue:3

    Topics: Arabidopsis; Epigenesis, Genetic; Genes, Developmental; Histones; Lignin; Lysine; Methylation

2023