| Literature DB >> 26134112 |
Laetitia Lemoine1, Laure Saint-Aubert1, Amelia Marutle1, Gunnar Antoni2,3, Jonas P Eriksson2,3, Bernardino Ghetti4, Nobuyuki Okamura5, Inger Nennesmo6, Per-Göran Gillberg1, Agneta Nordberg7,8.
Abstract
INTRODUCTION: The accumulation of neurofibrillary tangles, composed of aggregated hyperphosphorylated tau protein, starts spreading early in specific regions in the course of Alzheimer's disease (AD), correlating with the progression of memory dysfunction. The non-invasive imaging of tau could therefore facilitate the early diagnosis of AD, differentiate it from other dementing disorders and allow evaluation of tau immunization therapy outcomes. In this study we characterized the in vitro binding properties of THK5117, a tentative radiotracer for positron emission tomography (PET) imaging of tau brain deposits.Entities:
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Year: 2015 PMID: 26134112 PMCID: PMC4489196 DOI: 10.1186/s40478-015-0220-4
Source DB: PubMed Journal: Acta Neuropathol Commun ISSN: 2051-5960 Impact factor: 7.801
Clinical information for binding assay studies
| Age (Years) | Gender (M/F) | ApoE (E/E) | Braak stage | Postmortem delay (hours) | |
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| 66 | F | 4/3 | 5 | 7 | |
| 70 | M | 4/4 | 4 | 4 | |
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| 81 | F | 4/3 | 5 | 6 | |
| 85 | F | 3/3 | 4 | 6 | |
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| Controls | 50 | F | 3/3 | 1 | 17 |
| 62 | M | 3/3 | 1 | 7 | |
| 71 | F | 3/2 | 1 | 7 | |
| 77 | F | 3/3 | 1 | 3 | |
| 78 | M | 3/3 | 1 | 7 | |
| 79 | M | 3/3 | 2 | 9 | |
| 81 | M | 3/3 | 2 | 8 | |
| 84 | F | 3/3 | 1 | 4 | |
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The table presents information for the binding studies cases from which homogenates have been extracted. The age at death, gender, apolipoprotein E (ApoE) genotype, Braak stage at cerebral pathological assessment, and post-mortem delay are given for each patient included in the study
M = male; F = Female. Temporal lobes from AD cases mentioned in bold have been used for the saturation and competition studies, as well as the hippocampus from the 75 years-old AD case
Fig. 1Saturation binding curve (a) and Scatchard plot (b) for 3H-THK5117 (0.04-270 nM) in temporal lobe brain homogenates from four patients with AD. The solid regression line was determined by GraphPad Prism software and corresponds to the low affinity site. The dotted regression line was determined manually and corresponds to the high affinity site. The corresponding Kd and Bmax values are given below the curve. (c) Competition binding curve between THK5117 (10−13-10−5 M) and 3H-THK5117 (3 nM) in temporal lobe brain homogenates from four patients with AD. Analyses from non-linear regression using a least square ordinary fit in GraphPad Prism software showed three binding sites. Ki: inhibitory constant. r2 = regression coefficient
Fig. 2Regional binding distribution of 3H-THK5117 in homogenates from eight patients with AD and eight healthy controls. EOAD = patients with Early onset Alzheimer’s Disease, LOAD = patients with Late Onset Alzheimer’s Disease, Front. =Frontal, Pariet. = Parietal, Hippo = Hippocampus, Temp. = Temporal. Statistical significance is shown for group comparison between patients (EOAD + LOAD) and controls. ** p < 0.01; ***p < 0.001
Fig. 3Autoradiography results from adjacent left frozen hemisphere sections from AD case one and the control case. (a) 3H-THK5117 in AD case one. (b) 3H-THK5117 + 10−5 M of THK5117 in AD case one. (c) 3H-THK5117 in control case. (d) 3H-THK5117 + 10−5 M of THK5117 in control case
Clinical information and regional specific binding of 3H-THK5117 on autoradiography sections from the three Alzheimer cases
| Demographic data | |||
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| Demography | AD Case 1 | AD Case 2 | AD Case 3 |
| Onset | EOAD | LOAD | LOAD |
| Gender (M/F) | F | F | M |
| ApoE alleles (E/E) | 4/4 | 4/4 | 4/4 |
| MMSE at time of last PET | 12 | 26 | 25 |
| Age at death (years) | 60 | 79 | 81 |
| Time between last PET and death (years) | 7 | 7 | 5 |
| 3H-THK5117 specific binding in regions of interest (fmol/mg) | |||
| Regions of interest | AD Case 1 | AD Case 2 | AD Case 3 |
| Hippocampus | 693 | 171 | 112 |
| Entorhinal cortex | 713 | 126 | 53 |
| Fusiform gyrus | 585 | 189 | 52 |
| Inferior temporal gyrus | 764 | 125 | 59 |
| Middle temporal gyrus | 495 | 140 | 48 |
| Superior temporal gyrus | 363 | 114 | 53 |
| Insular cortex | 423 | 68 | 50 |
| Postcentral gyrus | 312 | 77 | 75 |
| Precentral gyrus | 310 | 32 | 102 |
| Middle frontal gyrus | 276 | 55 | 56 |
| Superior frontal gyrus | 344 | 57 | 114 |
| Cingulate gyrus | 292 | 120 | 110 |
| Putamen | 242 | NA | NA |
| Thalamus | 349 | NA | NA |
| Amygdala | 507 | NA | NA |
3H-THK5117 binding values were obtained by subtracting the nonspecific binding values from the total binding values. Regions of interest were defined for each case by manual segmentation of the section
AD = Alzheimer’s Disease; EOAD = Early Onset Alzheimer’s Disease; LOAD = Late Onset Alzheimer’s Disease; M = male; F = Female; NA = not available
Fig. 4Comparison between AT8 staining (a-b) and 3H-THK5117 autoradiography (c-f) performed on paraffin sections from anterior and posterior hippocampus of AD case one’s right hemisphere. (c-d) 3H-THK5117 autoradiography, (e-f) 3H-THK5117 + 10−5 M of THK5117 autoradiography for anterior and posterior hippocampus respectively
Fig. 5Autofluorescence of THK5117 and AT8 immunostaining on Alzheimer’s disease brain sections. (a) Autofluorescence results for THK5117 on paraffin Alzheimer’s disease brain section (bar = 16 μM), (b) Immunostaining with AT8 tau antibody on the adjacent section (scale bar = 12 μM)
Fig. 6Correlations between in vitro 3H-THK5117 autoradiography binding and in vivo 18F-FDG uptake in case one (a), case two (b), and case three (c). All 18F-FDG uptake values are reported as standard uptake value ratios (SUVR) with reference to the grey matter of the cerebellum. Temporal regions are shown in blue, frontal regions in orange, the rest in grey. r and p values from the Spearman test are reported for significant correlations (significance threshold: p < 0.05). Regions were defined by manual segmentation. hippo = hippocampus; inf = inferior; mid = middle; sup = superior