L'écho des souris, voir chapitre «Les effets du méthylthioninium chez les souris tau transgéniques ont eu un rôle décisif dans l’encouragement de la recherche clinique», consulté 2011-11-06
Elodie Marciniak et al., Tau deletion promotes brain insulin resistance, 2017. DOI10.1084/jem.20161731
Marie Violet, Lucie Delattre, Meryem Tardivel et Audrey Sultan, « A major role for Tau in neuronal DNA and RNA protection in vivo under physiological and hyperthermic conditions », Frontiers in Cellular Neuroscience, vol. 8, (ISSN1662-5102, PMID24672431, PMCIDPMC3957276, DOI10.3389/fncel.2014.00084, lire en ligne, consulté le )
Erin E. Congdon, Jessica W. Wu, Natura Myeku et Yvette H. Figueroa, « Methylthioninium chloride (methylene blue) induces autophagy and attenuates tauopathy in vitro and in vivo », Autophagy, vol. 8, no 4, , p. 609–622 (ISSN1554-8627, PMID22361619, PMCID3405840, DOI10.4161/auto.19048, lire en ligne, consulté le )
Gordon K. Wilcock, Serge Gauthier, Giovanni B. Frisoni et Jianping Jia, « Potential of Low Dose Leuco-Methylthioninium Bis(Hydromethanesulphonate) (LMTM) Monotherapy for Treatment of Mild Alzheimer's Disease: Cohort Analysis as Modified Primary Outcome in a Phase III Clinical Trial », Journal of Alzheimer's disease: JAD, vol. 61, no 1, , p. 435–457 (ISSN1875-8908, PMID29154277, PMCID5734125, DOI10.3233/JAD-170560, lire en ligne, consulté le )
M. Catarina Silva, Ghata A. Nandi, Sharon Tentarelli et Ian K. Gurrell, « Prolonged tau clearance and stress vulnerability rescue by pharmacological activation of autophagy in tauopathy neurons », Nature Communications, vol. 11, (ISSN2041-1723, PMID32591533, PMCID7320012, DOI10.1038/s41467-020-16984-1, lire en ligne, consulté le )
(en) Tremblay C, Pilote M, Phivilay A, Emond V, Bennett DA et Calon F, « Biochemical Characterization of Aβ and Tau Pathologies in Mild Cognitive Impairment and Alzheimer's Disease », Journal of Alzheimer's Disease 12, , p. 377-390 (ISSN1387-2877, lire en ligne)
issn.org
portal.issn.org
Marie Violet, Lucie Delattre, Meryem Tardivel et Audrey Sultan, « A major role for Tau in neuronal DNA and RNA protection in vivo under physiological and hyperthermic conditions », Frontiers in Cellular Neuroscience, vol. 8, (ISSN1662-5102, PMID24672431, PMCIDPMC3957276, DOI10.3389/fncel.2014.00084, lire en ligne, consulté le )
(en) Tremblay C., François A, Delay C, Freland L, Vandal M, Bennett DA et Calon F, « Association of Neuropathological Markers in the Parietal Cortex With Antemortem Cognitive Function in Persons With Mild Cognitive Impairment and Alzheimer Disease. Journal of neuropathology and experimental neurology », J Neuropathol Exp Neurol, , p. 70-88 (ISSN1554-6578, lire en ligne)
Lebouvier, Pasquier et Buée, « Update on tauopathies », Current Opinion in Neurology, , p. 589-598 (ISSN1350-7540, lire en ligne)
(en) Buée-Scherrer, Hof et Buée et al., « Hyperphosphorylated tau proteins differentiate corticobasal degeneration and Pick’s disease », Acta Neuropathologica, , p. 351-359 (ISSN1432-0533, lire en ligne)
Malika Hamdane, Patrice Delobel, Anne-Véronique Sambo et Caroline Smet, « Neurofibrillary degeneration of the Alzheimer-type: an alternate pathway to neuronal apoptosis? », Biochemical Pharmacology, vol. 66, no 8, , p. 1619–1625 (ISSN0006-2952, PMID14555242, lire en ligne, consulté le )
(en) Tremblay C, Pilote M, Phivilay A, Emond V, Bennett DA et Calon F, « Biochemical Characterization of Aβ and Tau Pathologies in Mild Cognitive Impairment and Alzheimer's Disease », Journal of Alzheimer's Disease 12, , p. 377-390 (ISSN1387-2877, lire en ligne)
Erin E. Congdon, Jessica W. Wu, Natura Myeku et Yvette H. Figueroa, « Methylthioninium chloride (methylene blue) induces autophagy and attenuates tauopathy in vitro and in vivo », Autophagy, vol. 8, no 4, , p. 609–622 (ISSN1554-8627, PMID22361619, PMCID3405840, DOI10.4161/auto.19048, lire en ligne, consulté le )
Gordon K. Wilcock, Serge Gauthier, Giovanni B. Frisoni et Jianping Jia, « Potential of Low Dose Leuco-Methylthioninium Bis(Hydromethanesulphonate) (LMTM) Monotherapy for Treatment of Mild Alzheimer's Disease: Cohort Analysis as Modified Primary Outcome in a Phase III Clinical Trial », Journal of Alzheimer's disease: JAD, vol. 61, no 1, , p. 435–457 (ISSN1875-8908, PMID29154277, PMCID5734125, DOI10.3233/JAD-170560, lire en ligne, consulté le )
M. Catarina Silva, Ghata A. Nandi, Sharon Tentarelli et Ian K. Gurrell, « Prolonged tau clearance and stress vulnerability rescue by pharmacological activation of autophagy in tauopathy neurons », Nature Communications, vol. 11, (ISSN2041-1723, PMID32591533, PMCID7320012, DOI10.1038/s41467-020-16984-1, lire en ligne, consulté le )
Marie Violet, Lucie Delattre, Meryem Tardivel et Audrey Sultan, « A major role for Tau in neuronal DNA and RNA protection in vivo under physiological and hyperthermic conditions », Frontiers in Cellular Neuroscience, vol. 8, (ISSN1662-5102, PMID24672431, PMCIDPMC3957276, DOI10.3389/fncel.2014.00084, lire en ligne, consulté le )
Malika Hamdane, Patrice Delobel, Anne-Véronique Sambo et Caroline Smet, « Neurofibrillary degeneration of the Alzheimer-type: an alternate pathway to neuronal apoptosis? », Biochemical Pharmacology, vol. 66, no 8, , p. 1619–1625 (ISSN0006-2952, PMID14555242, lire en ligne, consulté le )
Spillantini MG, Van Swieten JC, Goedert M, Tau gene mutations in frontotemporal dementia and parkinsonism linked to chromosome 17 (FTDP-17). . Neurogenetics. 2000 Mar; 2(4):193-205 (résumé)
Erin E. Congdon, Jessica W. Wu, Natura Myeku et Yvette H. Figueroa, « Methylthioninium chloride (methylene blue) induces autophagy and attenuates tauopathy in vitro and in vivo », Autophagy, vol. 8, no 4, , p. 609–622 (ISSN1554-8627, PMID22361619, PMCID3405840, DOI10.4161/auto.19048, lire en ligne, consulté le )
Gordon K. Wilcock, Serge Gauthier, Giovanni B. Frisoni et Jianping Jia, « Potential of Low Dose Leuco-Methylthioninium Bis(Hydromethanesulphonate) (LMTM) Monotherapy for Treatment of Mild Alzheimer's Disease: Cohort Analysis as Modified Primary Outcome in a Phase III Clinical Trial », Journal of Alzheimer's disease: JAD, vol. 61, no 1, , p. 435–457 (ISSN1875-8908, PMID29154277, PMCID5734125, DOI10.3233/JAD-170560, lire en ligne, consulté le )
M. Catarina Silva, Ghata A. Nandi, Sharon Tentarelli et Ian K. Gurrell, « Prolonged tau clearance and stress vulnerability rescue by pharmacological activation of autophagy in tauopathy neurons », Nature Communications, vol. 11, (ISSN2041-1723, PMID32591533, PMCID7320012, DOI10.1038/s41467-020-16984-1, lire en ligne, consulté le )
pubmed.ncbi.nlm.nih.gov
Gordon K. Wilcock, Serge Gauthier, Giovanni B. Frisoni et Jianping Jia, « Potential of Low Dose Leuco-Methylthioninium Bis(Hydromethanesulphonate) (LMTM) Monotherapy for Treatment of Mild Alzheimer's Disease: Cohort Analysis as Modified Primary Outcome in a Phase III Clinical Trial », Journal of Alzheimer's disease: JAD, vol. 61, no 1, , p. 435–457 (ISSN1875-8908, PMID29154277, PMCID5734125, DOI10.3233/JAD-170560, lire en ligne, consulté le )
oup.com
academic.oup.com
(en) Tremblay C., François A, Delay C, Freland L, Vandal M, Bennett DA et Calon F, « Association of Neuropathological Markers in the Parietal Cortex With Antemortem Cognitive Function in Persons With Mild Cognitive Impairment and Alzheimer Disease. Journal of neuropathology and experimental neurology », J Neuropathol Exp Neurol, , p. 70-88 (ISSN1554-6578, lire en ligne)
ovid.com
insights.ovid.com
Lebouvier, Pasquier et Buée, « Update on tauopathies », Current Opinion in Neurology, , p. 589-598 (ISSN1350-7540, lire en ligne)
(en) Buée-Scherrer, Hof et Buée et al., « Hyperphosphorylated tau proteins differentiate corticobasal degeneration and Pick’s disease », Acta Neuropathologica, , p. 351-359 (ISSN1432-0533, lire en ligne)
(en) COLIN, « From the prion-like propagation hypothesis to therapeutic strategies of anti-tau immunotherapy », Acta Neuropathologica, , Acta Neuropathologica volume 139, pages 3–25 (2020) (lire en ligne [html])