Sacha Grisel
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Explore the profile of Sacha Grisel including associated specialties, affiliations and a list of published articles.
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47
Citations
860
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Recent Articles
1.
Munzone A, Pujol M, Badjoudj M, Haon M, Grisel S, Magueresse A, et al.
Chem Bio Eng
. 2025 Feb;
1(10):863-875.
PMID: 39974575
The worldwide accumulation of plastic waste in the environment, along with its lifespan of hundreds of years, represents a serious threat to ecosystems. Enzymatic recycling of plastic waste offers a...
2.
Santos C, Morais M, Mandelli F, Lima E, Miyamoto R, Higasi P, et al.
Nature
. 2025 Feb;
PMID: 39939775
The breakdown of cellulose is one of the most important reactions in nature and is central to biomass conversion to fuels and chemicals. However, the microfibrillar organization of cellulose and...
3.
Colinet D, Haon M, Drula E, Boyer M, Grisel S, Belliardo C, et al.
Genome Biol Evol
. 2025 Jan;
17(2).
PMID: 39862048
Carbohydrate-active enzymes involved in the degradation of plant cell walls and/or the assimilation of plant carbohydrates for energy uptake are widely distributed in microorganisms. In contrast, they are less frequent...
4.
Plouhinec L, Zhang L, Pillon A, Haon M, Grisel S, Navarro D, et al.
Sci Rep
. 2025 Jan;
15(1):1716.
PMID: 39799163
Pectin is a complex plant heteropolysaccharide whose structure and function differ depending on its source. In animal feed, breaking down pectin is essential, as its presence increases feed viscosity and...
5.
Leroy A, Fanuel M, Alvarado C, Rogniaux H, Grisel S, Haon M, et al.
Carbohydr Polym
. 2024 Aug;
343:122465.
PMID: 39174080
Lytic polysaccharide monooxygenases (LPMOs) are copper-dependent enzymes that oxidatively cleave recalcitrant polysaccharides such as cellulose. Several studies have reported LPMO action in synergy with other carbohydrate-active enzymes (CAZymes) for the...
6.
Grellier M, Moreau C, Beaugrand J, Grisel S, Berrin J, Cathala B, et al.
Int J Biol Macromol
. 2024 Jun;
275(Pt 2):133429.
PMID: 38944074
Lytic polysaccharide monooxygenase (LPMO)-catalyzed oxidative processes play a major role in natural biomass conversion. Despite their oxidative cleavage at the surface of polysaccharides, understanding of their mode of action, and...
7.
Puginier C, Libourel C, Otte J, Skaloud P, Haon M, Grisel S, et al.
Nat Commun
. 2024 May;
15(1):4452.
PMID: 38789482
Mutualistic symbioses have contributed to major transitions in the evolution of life. Here, we investigate the evolutionary history and the molecular innovations at the origin of lichens, which are a...
8.
Tamburrini K, Kodama S, Grisel S, Haon M, Nishiuchi T, Bissaro B, et al.
Proc Natl Acad Sci U S A
. 2024 Mar;
121(13):e2319998121.
PMID: 38513096
Lytic polysaccharide monooxygenases (LPMOs) are monocopper enzymes that oxidatively degrade various polysaccharides, such as cellulose. Despite extensive research on this class of enzymes, the role played by their C-terminal regions...
9.
Yao R, Reyre J, Tamburrini K, Haon M, Tranquet O, Nalubothula A, et al.
Appl Environ Microbiol
. 2023 Sep;
89(10):e0057323.
PMID: 37702503
Lytic polysaccharide monooxygenases (LPMOs) can perform oxidative cleavage of glycosidic bonds in carbohydrate polymers (e.g., cellulose, chitin), making them more accessible to hydrolytic enzymes. While most studies have so far...
10.
Reyre J, Grisel S, Haon M, Xiang R, Gaillard J, Armengaud J, et al.
Sci Rep
. 2023 Jul;
13(1):11586.
PMID: 37463979
Lytic polysaccharide monooxygenases (LPMOs) are taxonomically widespread copper-enzymes boosting biopolymers conversion (e.g. cellulose, chitin) in Nature. White-rot Polyporales, which are major fungal wood decayers, may possess up to 60 LPMO-encoding...