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Mohamed Sassi

Researcher at University of Rennes

Publications -  147
Citations -  2253

Mohamed Sassi is an academic researcher from University of Rennes. The author has contributed to research in topics: Adsorption & Combustion. The author has an hindex of 21, co-authored 131 publications receiving 1545 citations. Previous affiliations of Mohamed Sassi include Masdar Institute of Science and Technology & University of Rochester Medical Center.

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Cross-reactivity between tumor MHC class I-restricted antigens and an enterococcal bacteriophage.

Aurélie Fluckiger, +64 more
- 21 Aug 2020 - 
TL;DR: In renal and lung cancer patients, the presence of the enterococcal prophage in stools and expression of a TMP–cross-reactive antigen by tumors correlated with long-term benefit of PD-1 blockade therapy.
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Adsorption behavior of cationic and anionic dyes on magadiite-chitosan composite beads

TL;DR: The results reveal that the magadiite was immobilized in the chitosan matrix by hydrogen bond and electrostatic interactions and the influence of contact time, adsorbent dose and initial concentration of dye were investigated.
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Intercalation of halloysite from Djebel Debagh (Algeria) and adsorption of copper ions

TL;DR: In this paper, the authors showed that the intercalation rate exceeded 90% for NaCH3COO at long reaction time and showed an expansion of the interlamellar space of 55 and 63 ǫ A due to the inter-calation of Pb(CH 3COO)2 and NH4CH3cOO FTIR proved that Mn+(CH 3cOO)n reacted with the inner surface hydroxyl groups of halloysite, on the basis of the disappearance of the frequence bands at 3676 and 3652 �
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Genome analysis reveals three genomospecies in Mycobacterium abscessus

TL;DR: The genomics data here reported indicate differences in virulence of medical interest; and suggest targets for the refined detection and identification of M. abscessus, M. bolletii, and M. massiliense.
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Sulfur Recovery from Acid Gas Using the Claus Process and High Temperature Air Combustion (HiTAC) Technology

TL;DR: In this paper, a modified Claus process, enhanced by the use of High Temperature Air Combustion (HiTAC) technology in the Claus furnace, is proposed for reducing pollutants containing sulfur.