Infantile neurodegenerative disorder associated with mutations in TBCD, an essential gene in the tubulin heterodimer assembly pathway.
暂无分享,去创建一个
O. Elpeleg | S. Bhat | J. Heng | S. Edvardson | G. Tian | N. Cowan | A. Aran | H. Vanyai | B. Abu-Libdeh | M. Daana | H. Cullen | Linh H. Ngo | Naderah Da'amseh | Shimon Edvardson
[1] R. Taneja,et al. Arl2- and Msps-dependent microtubule growth governs asymmetric division , 2016, The Journal of cell biology.
[2] M. Miura,et al. Linking Cell Surface Receptors to Microtubules: Tubulin Folding Cofactor D Mediates Dscam Functions during Neuronal Morphogenesis , 2015, The Journal of Neuroscience.
[3] Shan Shan Li,et al. TUBB5 and its disease-associated mutations influence the terminal differentiation and dendritic spine densities of cerebral cortical neurons. , 2014, Human molecular genetics.
[4] N. Galjart,et al. Severe presentation of WDR62 mutation: Is there a role for modifying genetic factors? , 2014, American journal of medical genetics. Part A.
[5] Wieland B Huttner,et al. Neural progenitors, neurogenesis and the evolution of the neocortex , 2014, Development.
[6] Laurie E. Seltzer,et al. Genetic disorders associated with postnatal microcephaly , 2014, American journal of medical genetics. Part C, Seminars in medical genetics.
[7] J. D. Macklis,et al. Molecular logic of neocortical projection neuron specification, development and diversity , 2013, Nature Reviews Neuroscience.
[8] Christopher A Walsh,et al. Genetic causes of microcephaly and lessons for neuronal development , 2013, Wiley interdisciplinary reviews. Developmental biology.
[9] D. Zélénika,et al. Mutations in TUBG1, DYNC1H1, KIF5C and KIF2A cause malformations of cortical development and microcephaly , 2013, Nature Genetics.
[10] Martin W. Breuss,et al. Mutations in the β-Tubulin Gene TUBB5 Cause Microcephaly with Structural Brain Abnormalities , 2012, Cell reports.
[11] Andreas Bracher,et al. The molecular architecture of the eukaryotic chaperonin TRiC/CCT. , 2012, Structure.
[12] C. Fallet-Bianco,et al. Mutations in the neuronal ß-tubulin subunit TUBB3 result in malformation of cortical development and neuronal migration defects. , 2010, Human molecular genetics.
[13] Terry L. Jernigan,et al. The Basics of Brain Development , 2010, Neuropsychology Review.
[14] G. Tian,et al. Effect of TBCD and its regulatory interactor Arl2 on tubulin and microtubule integrity , 2010, Cytoskeleton.
[15] D. Keays,et al. Disease-associated mutations in TUBA1A result in a spectrum of defects in the tubulin folding and heterodimer assembly pathway. , 2010, Human molecular genetics.
[16] M. Fanarraga,et al. TBCD Links Centriologenesis, Spindle Microtubule Dynamics, and Midbody Abscission in Human Cells , 2010, PloS one.
[17] T. Meitinger,et al. Human TUBB3 Mutations Perturb Microtubule Dynamics, Kinesin Interactions, and Axon Guidance , 2010, Cell.
[18] J. Chelly,et al. Tubulin-related cortical dysgeneses: microtubule dysfunction underlying neuronal migration defects. , 2009, Trends in genetics : TIG.
[19] K. Mitchell,et al. Boundary cap cells constrain spinal motor neuron somal migration at motor exit points by a semaphorin-plexin mechanism , 2007, Neural Development.
[20] Steve D. M. Brown,et al. Mutations in α-Tubulin Cause Abnormal Neuronal Migration in Mice and Lissencephaly in Humans , 2007, Cell.
[21] M. C. Huang,et al. Cryptic out-of-frame translational initiation of TBCE rescues tubulin formation in compound heterozygous HRD , 2006, Proceedings of the National Academy of Sciences.
[22] R. Kahn,et al. Cytosolic Arl2 Is Complexed with Cofactor D and Protein Phosphatase 2A* , 2003, Journal of Biological Chemistry.
[23] Adam Godzik,et al. Domain analysis of the tubulin cofactor system: a model for tubulin folding and dimerization , 2003, BMC Bioinformatics.
[24] S. Gregory,et al. Mutation of TBCE causes hypoparathyroidism–retardation–dysmorphism and autosomal recessive Kenny–Caffey syndrome , 2002, Nature Genetics.
[25] Frank Küttner,et al. The Arabidopsis PILZ group genes encode tubulin-folding cofactor orthologs required for cell division but not cell growth. , 2002, Genes & development.
[26] Nicholas J. Cowan,et al. Adp Ribosylation Factor-like Protein 2 (Arl2) Regulates the Interaction of Tubulin-Folding Cofactor D with Native Tubulin , 2000, The Journal of cell biology.
[27] T. Toda,et al. Functional dissection and hierarchy of tubulin-folding cofactor homologues in fission yeast. , 1999, Molecular biology of the cell.
[28] Brian A. Hemmings,et al. The Structure of the Protein Phosphatase 2A PR65/A Subunit Reveals the Conformation of Its 15 Tandemly Repeated HEAT Motifs , 1999, Cell.
[29] J. Vandekerckhove,et al. Prefoldin, a Chaperone that Delivers Unfolded Proteins to Cytosolic Chaperonin , 1998, Cell.
[30] T. Toda,et al. Essential role of tubulin‐folding cofactor D in microtubule assembly and its association with microtubules in fission yeast , 1998, The EMBO journal.
[31] Nicholas J. Cowan,et al. Tubulin Subunits Exist in an Activated Conformational State Generated and Maintained by Protein Cofactors , 1997, The Journal of cell biology.
[32] T Takahashi,et al. The Leaving or Q Fraction of the Murine Cerebral Proliferative Epithelium: A General Model of Neocortical Neuronogenesis , 1996, The Journal of Neuroscience.
[33] Takao Takahashi,et al. Interkinetic and Migratory Behavior of a Cohort of Neocortical Neurons Arising in the Early Embryonic Murine Cerebral Wall , 1996, The Journal of Neuroscience.
[34] Christophe Ampe,et al. Pathway Leading to Correctly Folded β-Tubulin , 1996, Cell.
[35] W. Tap,et al. Quasi-native Chaperonin-bound Intermediates in Facilitated Protein Folding (*) , 1995, The Journal of Biological Chemistry.
[36] W. Tap,et al. Specificity in chaperonin-mediated protein folding , 1995, Nature.
[37] A. Villasanté,et al. The mammalian beta-tubulin repertoire: hematopoietic expression of a novel, heterologous beta-tubulin isotype , 1986, The Journal of cell biology.
[38] Martin W. Breuss,et al. Microtubules and neurodevelopmental disease: the movers and the makers. , 2014, Advances in experimental medicine and biology.
[39] A. Fry,et al. Overlapping cortical malformations and mutations in TUBB2B and TUBA1A. , 2013, Brain : a journal of neurology.
[40] Min-Sung Kim,et al. Transient mammalian cell transfection with polyethylenimine (PEI). , 2013, Methods in enzymology.
[41] A. Represa,et al. Mutations in the beta-tubulin gene TUBB2B result in asymmetrical polymicrogyria , 2011 .
[42] S. Lewis,et al. Type II chaperonins, prefoldin, and the tubulin-specific chaperones. , 2001, Advances in protein chemistry.
[43] J Vandekerckhove,et al. Pathway leading to correctly folded beta-tubulin. , 1996, Cell.