Kadiombo Bantubungi
Overview
    Explore the profile of Kadiombo Bantubungi including associated specialties, affiliations and a list of published articles.
          
  Author names and details appear as published. Due to indexing inconsistencies, multiple individuals may share a name, and a single author may have variations. MedLuna displays this data as publicly available, without modification or verification
  
  
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          Snapshot
              Articles
              22
            
            
              Citations
              662
            
            
              Followers
              0
            
  
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  Recent Articles
          1.
        
    
    Bantubungi K, Vieau D, Blum D, Ferreira S
  
  
    Neuropharmacology
    . 2022 Apr;
          212:109073.
    
    PMID: 35461881
  
  
          No abstract available.
      
2.
        
    
    Benderradji H, Kraiem S, Courty E, Eddarkaoui S, Bourouh C, Faivre E, et al.
  
  
    Front Mol Neurosci
    . 2022 Mar;
          15:841892.
    
    PMID: 35250480
  
  
          Alzheimer's disease (AD) is the leading cause of dementia. While impaired glucose homeostasis has been shown to increase AD risk and pathological loss of tau function, the latter has been...
      
3.
        
    
    Deckmyn B, Domenger D, Blondel C, Ducastel S, Nicolas E, Dorchies E, et al.
  
  
    Front Mol Neurosci
    . 2022 Jan;
          14:808603.
    
    PMID: 35058750
  
  
          The nuclear bile acid (BA) receptor farnesoid X receptor (FXR) is a major regulator of metabolic/energy homeostasis in peripheral organs. Indeed, enterohepatic-expressed FXR controls metabolic processes (BA, glucose and lipid...
      
4.
        
    
    Deleye Y, Cotte A, Hannou S, Hennuyer N, Bernard L, Derudas B, et al.
  
  
    J Biol Chem
    . 2020 Oct;
          295(50):17310-17322.
    
    PMID: 33037071
  
  
          In addition to their well-known role in the control of cellular proliferation and cancer, cell cycle regulators are increasingly identified as important metabolic modulators. Several GWAS have identified SNPs near...
      
5.
        
    
    Ducastel S, Touche V, Trabelsi M, Boulinguiez A, Butruille L, Nawrot M, et al.
  
  
    Sci Rep
    . 2020 Jan;
          10(1):174.
    
    PMID: 31932631
  
  
          The gut microbiota participates in the control of energy homeostasis partly through fermentation of dietary fibers hence producing short-chain fatty acids (SCFAs), which in turn promote the secretion of the...
      
6.
        
    
    Leboucher A, Ahmed T, Caron E, Tailleux A, Raison S, Joly-Amado A, et al.
  
  
    Neurobiol Dis
    . 2019 Jan;
          125:14-22.
    
    PMID: 30665005
  
  
          Accumulation of hyper-phosphorylated and aggregated Tau proteins is a neuropathological hallmark of Alzheimer's Disease (AD) and Tauopathies. AD patient brains also exhibit insulin resistance. Whereas, under normal physiological conditions insulin...
      
7.
        
    
    Ploton M, Mazuy C, Gheeraert C, Dubois V, Berthier A, Dubois-Chevalier J, et al.
  
  
    J Hepatol
    . 2018 Jul;
          69(5):1099-1109.
    
    PMID: 29981427
  
  
          Background & Aims: Embedded into a complex signaling network that coordinates glucose uptake, usage and production, the nuclear bile acid receptor FXR is expressed in several glucose-processing organs including the...
      
8.
        
    
    Marciniak E, Leboucher A, Caron E, Ahmed T, Tailleux A, Dumont J, et al.
  
  
    J Exp Med
    . 2017 Jun;
          214(8):2257-2269.
    
    PMID: 28652303
  
  
          The molecular pathways underlying tau pathology-induced synaptic/cognitive deficits and neurodegeneration are poorly understood. One prevalent hypothesis is that hyperphosphorylation, misfolding, and fibrillization of tau impair synaptic plasticity and cause degeneration....
      
9.
        
    
    Trabelsi M, Daoudi M, Prawitt J, Ducastel S, Touche V, Sayin S, et al.
  
  
    Nat Commun
    . 2015 Jul;
          6:7629.
    
    PMID: 26134028
  
  
          Bile acids are signalling molecules, which activate the transmembrane receptor TGR5 and the nuclear receptor FXR. BA sequestrants (BAS) complex bile acids in the intestinal lumen and decrease intestinal FXR...
      
10.
        
    Cdkn2a/p16Ink4a regulates fasting-induced hepatic gluconeogenesis through the PKA-CREB-PGC1α pathway
  
  
    
    Bantubungi K, Hannou S, Caron-Houde S, Vallez E, Baron M, Lucas A, et al.
  
  
    Diabetes
    . 2014 May;
          63(10):3199-209.
    
    PMID: 24789920
  
  
          Type 2 diabetes (T2D) is hallmarked by insulin resistance, impaired insulin secretion, and increased hepatic glucose production. The worldwide increasing prevalence of T2D calls for efforts to understand its pathogenesis...