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The Journal of Biological Chemistry|November 25, 2003
Murine Frizzled-1 behaves as an antagonist of the canonical Wnt/beta-catenin signalingSergio Roman-Roman, De-Li Shi, Véronique Stiot, et al.Frontiers in Medicine|August 30, 2021
Entering First-in-Human Clinical Study With a Single-Strain Live Biotherapeutic Product: Input and Feedback Gained From the EMA and the FDAJeanne-Céleste Paquet, Sandrine P Claus, Magali Cordaillat-Simmons, et al.The Journal of Biological Chemistry|June 11, 2005
AIP4 restricts transforming growth factor-beta signaling through a ubiquitination-independent mechanismFrançois Lallemand, Su Ryeon Seo, Nathalie Ferrand, et al.The Journal of Biological Chemistry|February 9, 2005
Interaction between LRP5 and Frat1 mediates the activation of the Wnt canonical pathwayEric Hay, Chi Faucheu, Isabelle Suc-Royer, et al.Scientific Reports|June 2, 2021
The Keystone commensal bacterium Christensenella minuta DSM 22607 displays anti-inflammatory properties both in vitro and in vivoCamille Kropp, Katy Le Corf, Karima Relizani, et al.Molecular and Cellular Biology|May 29, 2008
Targeted disruption of the Wnt regulator Kremen induces limb defects and high bone densityKristina Ellwanger, Hiroaki Saito, Philippe Clément-Lacroix, et al.Proceedings of the National Academy of Sciences of the United States of America|November 19, 2005
Lrp5-independent activation of Wnt signaling by lithium chloride increases bone formation and bone mass in micePhilippe Clément-Lacroix, Minrong Ai, Frederic Morvan, et al.Cells|April 30, 2021
A New Strain of Christensenella minuta as a Potential Biotherapy for Obesity and Associated Metabolic DiseasesWilfrid Mazier, Katy Le Corf, Ccori Martinez, et al.Scientific Reports|April 12, 2022
Selection of a novel strain of Christensenella minuta as a future biotherapy for Crohn's diseaseKarima Relizani, Katy Le Corf, Camille Kropp, et al.Journal of Bone and Mineral Research : the Official Journal of the American Society for Bone and Mineral Research|June 7, 2006
Deletion of a single allele of the Dkk1 gene leads to an increase in bone formation and bone massFrederic Morvan, Kim Boulukos, Philippe Clément-Lacroix, et al.Pageof 3