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The Journal of Neuroscience, April 1, 1999, 19(7):2522-2534
Nuclear and Neuropil Aggregates in Huntington's Disease:
Relationship to Neuropathology
Claire-Anne
Gutekunst1,
Shi-Hua
Li2,
Hong
Yi1,
James S.
Mulroy1,
Stefan
Kuemmerle3,
Randi
Jones1,
David
Rye1,
Robert J.
Ferrante3,
Steven M.
Hersch1, and
Xiao-Jiang
Li2
Departments of 1 Neurology and 2 Genetics,
Emory University School of Medicine, Atlanta, Georgia 30322, and
3 Geriatric Research Education Clinical Center,
Bedford VA Medical Center, Bedford, Massachusetts 01730, and
Departments of Neurology, Pathology, and Psychiatry, Boston University
School of Medicine, Boston, Massachusetts 02118
The data we report in this study concern the types, location,
numbers, forms, and composition of microscopic huntingtin aggregates in
brain tissues from humans with different grades of Huntington's disease (HD). We have developed a fusion protein antibody against the
first 256 amino acids that preferentially recognizes aggregated huntingtin and labels many more aggregates in neuronal nuclei, perikarya, and processes in human brain than have been described previously. Using this antibody and human brain tissue ranging from
presymptomatic to grade 4, we have compared the numbers and locations
of nuclear and neuropil aggregates with the known patterns of neuronal
death in HD. We show that neuropil aggregates are much more common than
nuclear aggregates and can be present in large numbers before the onset
of clinical symptoms. There are also many more aggregates in cortex
than in striatum, where they are actually uncommon. Although the
striatum is the most affected region in HD, only 1-4% of striatal
neurons in all grades of HD have nuclear aggregates. Neuropil
aggregates, which we have identified by electron microscopy to occur in
dendrites and dendritic spines, could play a role in the known
dendritic pathology that occurs in HD. Aggregates increase in size in
advanced grades, suggesting that they may persist in neurons that are
more likely to survive. Ubiquitination is apparent in only a subset of
aggregates, suggesting that ubiquitin-mediated proteolysis of
aggregates may be late or variable.
Key words:
Huntington's disease; huntingtin; neuropil aggregates; nuclear inclusions; ubiquitin; neuropathology
Copyright © 1999 Society for Neuroscience 0270-6474/99/1972522-13$05.00/0
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M. J. Thieben, A. J. Duggins, C. D. Good, L. Gomes, N. Mahant, F. Richards, E. McCusker, and R. S. J. Frackowiak
The distribution of structural neuropathology in pre-clinical Huntington's disease
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J.-Z. Chuang, H. Zhou, M. Zhu, S.-H. Li, X.-J. Li, and C.-H. Sung
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Z.-X. Yu, S.-H. Li, H.-P. Nguyen, and X.-J. Li
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V. C. Wheeler, C.-A. Gutekunst, V. Vrbanac, L.-A. Lebel, G. Schilling, S. Hersch, R. M. Friedlander, J. F. Gusella, J.-P. Vonsattel, D. R. Borchelt, et al.
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S.-H. Li, A. L. Cheng, H. Zhou, S. Lam, M. Rao, H. Li, and X.-J. Li
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S Lovestone and D M McLoughlin
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H. Zhou, S.-H. Li, and X.-J. Li
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W. J. Welch and M. I. Diamond
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G. A. Laforet, E. Sapp, K. Chase, C. McIntyre, F. M. Boyce, M. Campbell, B. A. Cadigan, L. Warzecki, D. A. Tagle, P. H. Reddy, et al.
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E. Martin-Aparicio, A. Yamamoto, F. Hernandez, R. Hen, J. Avila, and J. J. Lucas
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H. Li, S.-H. Li, Z.-X. Yu, P. Shelbourne, and X.-J. Li
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R. I. Richards
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K. Sathasivam, B. Woodman, A. Mahal, F. Bertaux, E. E. Wanker, D. T. Shima, and G. P. Bates
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A. Reiner, N. Del Mar, C. A. Meade, H. Yang, I. Dragatsis, S. Zeitlin, and D. Goldowitz
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J S Paulsen, R E Ready, J M Hamilton, M S Mega, and J L Cummings
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J. S. Paulsen, H. Zhao, J. C. Stout, R. R. Brinkman, M. Guttman, C. A. Ross, P. Como, C. Manning, M. R. Hayden, and I. Shoulson
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G. Yvert, K. S. Lindenberg, D. Devys, D. Helmlinger, G. B. Landwehrmeyer, and J.-L. Mandel
SCA7 mouse models show selective stabilization of mutant ataxin-7 and similar cellular responses in different neuronal cell types
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A. L. Peel, R. V. Rao, B. A. Cottrell, M. R. Hayden, L. M. Ellerby, and D. E. Bredesen
Double-stranded RNA-dependent protein kinase, PKR, binds preferentially to Huntington's disease (HD) transcripts and is activated in HD tissue
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A. Petersen, K. E. Larsen, G. G. Behr, N. Romero, S. Przedborski, P. Brundin, and D. Sulzer
Expanded CAG repeats in exon 1 of the Huntington's disease gene stimulate dopamine-mediated striatal neuron autophagy and degeneration
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H. Adachi, A. Kume, M. Li, Y. Nakagomi, H. Niwa, J. Do, C. Sang, Y. Kobayashi, M. Doyu, and G. Sobue
Transgenic mice with an expanded CAG repeat controlled by the human AR promoter show polyglutamine nuclear inclusions and neuronal dysfunction without neuronal cell death
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N. R. Jana, E. A. Zemskov, G.-h. Wang, and N. Nukina
Altered proteasomal function due to the expression of polyglutamine-expanded truncated N-terminal huntingtin induces apoptosis by caspase activation through mitochondrial cytochrome c release
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J.-M. Lecerf, T. L. Shirley, Q. Zhu, A. Kazantsev, P. Amersdorfer, D. E. Housman, A. Messer, and J. S. Huston
Human single-chain Fv intrabodies counteract in situ huntingtin aggregation in cellular models of Huntington's disease
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W. Chun, M. Lesort, J. Tucholski, C. A. Ross, and G. V.W. Johnson
Tissue Transglutaminase Does Not Contribute to the Formation of Mutant Huntingtin Aggregates
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L. M. Mende-Mueller, T. Toneff, S.-R. Hwang, M.-F. Chesselet, and V. Y. H. Hook
Tissue-Specific Proteolysis of Huntingtin (htt) in Human Brain: Evidence of Enhanced Levels of N- and C-Terminal htt Fragments in Huntington's Disease Striatum
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S. Holbert, I. Denghien, T. Kiechle, A. Rosenblatt, C. Wellington, M. R. Hayden, R. L. Margolis, C. A. Ross, J. Dausset, R. J. Ferrante, et al.
The Gln-Ala repeat transcriptional activator CA150 interacts with huntingtin: Neuropathologic and genetic evidence for a role in Huntington's disease pathogenesis
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T. B. Freeman, F. Cicchetti, R. A. Hauser, T. W. Deacon, X.-J. Li, S. M. Hersch, G. M. Nauert, P. R. Sanberg, J. H. Kordower, S. Saporta, et al.
Transplanted fetal striatum in Huntington's disease: Phenotypic development and lack of pathology
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F. Trettel, D. Rigamonti, P. Hilditch-Maguire, V. C. Wheeler, A. H. Sharp, F. Persichetti, E. Cattaneo, and M. E. MacDonald
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S.-H. Li, S. Lam, A. L. Cheng, and X.-J. Li
Intranuclear huntingtin increases the expression of caspase-1 and induces apoptosis
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G. Yvert, K. S. Lindenberg, S. Picaud, G. B. Landwehrmeyer, J.-A. Sahel, and J.-L. Mandel
Expanded polyglutamines induce neurodegeneration and trans-neuronal alterations in cerebellum and retina of SCA7 transgenic mice
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L. A. Passani, M. T. Bedford, P. W. Faber, K. M. McGinnis, A. H. Sharp, J. F. Gusella, J.-P. Vonsattel, and M. E. MacDonald
Huntingtin's WW domain partners in Huntington's disease post-mortem brain fulfill genetic criteria for direct involvement in Huntington's disease pathogenesis
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N. R. Jana, M. Tanaka, G.-h. Wang, and N. Nukina
Polyglutamine length-dependent interaction of Hsp40 and Hsp70 family chaperones with truncated N-terminal huntingtin: their role in suppression of aggregation and cellular toxicity
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K. P. S. J. Murphy, R. J. Carter, L. A. Lione, L. Mangiarini, A. Mahal, G. P. Bates, S. B. Dunnett, and A. J. Morton
Abnormal Synaptic Plasticity and Impaired Spatial Cognition in Mice Transgenic for Exon 1 of the Human Huntington's Disease Mutation
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R. J. Ferrante, O. A. Andreassen, B. G. Jenkins, A. Dedeoglu, S. Kuemmerle, J. K. Kubilus, R. Kaddurah-Daouk, S. M. Hersch, and M. F. Beal
Neuroprotective Effects of Creatine in a Transgenic Mouse Model of Huntington's Disease
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D. Rigamonti, J. H. Bauer, C. De-Fraja, L. Conti, S. Sipione, C. Sciorati, E. Clementi, A. Hackam, M. R. Hayden, Y. Li, et al.
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M. Becker, E. Martin, J. Schneikert, H. F. Krug, and A. C.B. Cato
Cytoplasmic Localization and the Choice of Ligand Determine Aggregate Formation by Androgen Receptor with Amplified Polyglutamine Stretch
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C. J. Cummings and H. Y. Zoghbi
Fourteen and counting: unraveling trinucleotide repeat diseases
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V. C. Wheeler, J. K. White, C.-A. Gutekunst, V. Vrbanac, M. Weaver, X.-J. Li, S.-H. Li, H. Yi, J.-P. Vonsattel, J. F. Gusella, et al.
Long glutamine tracts cause nuclear localization of a novel form of huntingtin in medium spiny striatal neurons in HdhQ92 and HdhQ111 knock-in mice
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J. L. Marsh, H. Walker, H. Theisen, Y.-Z. Zhu, T. Fielder, J. Purcell, and L. M. Thompson
Expanded polyglutamine peptides alone are intrinsically cytotoxic and cause neurodegeneration in Drosophila
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M. D. Kaytor and S. T. Warren
Aberrant Protein Deposition and Neurological Disease
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Y. Chai, S. L. Koppenhafer, N. M. Bonini, and H. L. Paulson
Analysis of the Role of Heat Shock Protein (Hsp) Molecular Chaperones in Polyglutamine Disease
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