Novel aspects of accumulation dynamics and AP composition in transgenic models of AD
NEUROBIOLOGY OF AGING
Authors: Lewis, HD; Beher, D; Smith, D; Hewson, L; Cookson, N; Reynolds, DS; Dawson, GR; Jiang, M; Van der Ploeg, JHX; Qian, S; Rosahl, TW; Kalaria, RN; Shearman, MS
Abstract
A homogeneous time-resolved fluorescence immunoassay for detection of beta-amyloid (Abeta) peptides has been adapted for quantification of Abeta(40) and Abeta(42) accumulation in brains of APP695SWE transgenic mice. These over-express human betaAPP(swe), beta-amyloid precursor protein (beta-APP) containing the K670N/M671L 'Swedish' familial Alzheimer's disease (FAD) mutation. Both peptides start to accumulate in this line from about 260 to 280 days of age. Co-expression of a human presenilin-1 (PS1) transgene containing the A246E FAD mutation accelerates deposition and also favors-at least initially-accumulation of Abeta(42) so that the Abeta(2):Abeta(40) ratio of peptides from 7- to 12-month-old APP695SWE x PS1A246E animals is significantly elevated above that observed throughout the lifetime of APP695SWE mice. These findings, supported by parallel immunohistochemical staining and surface-enhanced laser desorption/ionization time-of-flight (SELDI-TOF) mass spectrometry data, offer important longitudinal characterization of two mouse models of cerebral amyloidosis. Application of the same extraction and quantitation procedures to samples of temporal cortex from AD sufferers indicates however that Abeta(40) is only a minor component of beta-amyloid in humans. (C) 2004 Elsevier Inc. All rights reserved.
Clusterin expression is upregulated following acute head injury and localizes to astrocytes in old head injury
NEUROPATHOLOGY
Authors: Troakes, Claire; Smyth, Rachel; Noor, Farzana; Maekawa, Satomi; Killick, Richard; King, Andrew; Al-Sarraj, Safa
Abstract
There is mounting evidence linking traumatic brain injury (TBI) to neurodegeneration. Clusterin (apolipoprotein J or ApoJ) is a complement inhibitor that appears to have a neuroprotective effect in response to tissue damage and has been reported to be upregulated in Alzheimer's disease. Here we investigated the time course and cellular expression pattern of clusterin in human TBI. Tissue from 32 patients with TBI of varying survival times (from under 30min to 10 months) was examined using immunohistochemistry for clusterin alongside other markers of neurodegeneration and neuroinflammation. TBI cases were compared to ischemic brain damage, Alzheimer's disease and controls. Double immunofluorescence was carried out in order to examine cellular expression. Clusterin was initially expressed in an axonal location less than 30min following TBI and increased in intensity and the frequency of deposits with increasing survival time up to 24h, after which it appeared to reduce in intensity but was still evident several weeks after injury. Clusterin was first evident in astrocytes after 45min, being increasingly seen up to 48h but remaining intense in TBI cases with long survival times. Our results suggest clusterin plays a role in modulating the inflammatory response of acute and chronic TBI and that it is a useful marker for TBI, particularly in cases with short survival times. Its prominent accumulation in astrocytes, alongside a mounting inflammatory response and activation of microglial cells supports a potential role in the neurodegenerative changes that occur as a result of TBI.