| Literature DB >> 30704515 |
Hermeto Gerber1,2,3, Sebastien Mosser1,2, Benjamin Boury-Jamot4, Michael Stumpe3, Alessandra Piersigilli5,6, Christine Goepfert5,6, Joern Dengjel3, Urs Albrecht3, Fulvio Magara4, Patrick C Fraering7,8.
Abstract
The adipocyte plasma membrane-associated protein <span class="Gene">APMAP is expressed in the brain where it associates with γ-secretase, a protease responsible for the generation of the amyloid-β <span class="Chemical">peptides (Aβ) implicated in the pathogenesis of Alzheimer's disease (AD). In this study, behavioral investigations revealed spatial learning and memory deficiencies in our newly generated mouse line lacking the protein APMAP. In a mouse model of AD, the constitutive deletion of APMAP worsened the spatial memory phenotype and led to increased Aβ production and deposition into senile plaques. To investigate at the molecular level the neurobiological functions of APMAP (memory and Aβ formation) and a possible link with the pathological hallmarks of AD (memory impairment and Aβ pathology), we next developed a procedure for the high-grade purification of cellular APMAP protein complexes. The biochemical characterization of these complexes revealed a series of new APMAP interactomers. Among these, the heat shock protein HSPA1A and the cation-dependent mannose-6-phosphate receptor (CD-M6PR) negatively regulated APP processing and Aβ production, while clusterin, calnexin, arginase-1, PTGFRN and the cation-independent mannose-6-phosphate receptor (CI-M6PR/IGF2R) positively regulated APP and Aβ production. Several of the newly identified APMAP interactomers contribute to the autophagy-lysosome system, further supporting an emergent agreement that this pathway can modulate APP metabolism and Aβ generation. Importantly, we have also demonstrated increased alternative splicing of APMAP and lowered levels of the Aβ controllers HSPA1A and CD-M6PR in human brains from neuropathologically verified AD cases.Entities:
Keywords: APMAP interactome; APMAP-KO; Alternative splicing; Alzheimer’s disease; Aβ production; Learning and memory; Neurodegeneration
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Year: 2019 PMID: 30704515 PMCID: PMC6354426 DOI: 10.1186/s40478-019-0660-3
Source DB: PubMed Journal: Acta Neuropathol Commun ISSN: 2051-5960 Impact factor: 7.801
Fig. 1The constitutive deletion of APMAP selectively affects spatial memory but not anxiety, locomotion, fear-related or independent hippocampus memories in WT mice. a, b In the Morris water maze, 9-month-old WT (+/+; n=11; 6 females and 5 males) and APMAP-KO mice (ko/ko; n=13; 6 females and 7 males) show similar escape learning during training trials (repeated measures ANOVA: time effect F3,22=45,224, *** p<0.001 Day 1 versus Day 4) (a). However, in the spatial memory probe test, after 4 days of acquisition training, APMAP-KO mice performed at a chance level in the search for the platform, showing no preference for the target quadrant compared to WT control mice (b). c APMAP-KO mice did not demonstrate a deficit in the acquisition or retention of a fear-conditioning task (repeated measures ANOVA F1, 22=0.112, p>0.05 for genotype). d In an object recognition task, both groups spent more time exploring the novel object and were able to discriminate it from a familiar object (repeated measures ANOVA F(1, 20)=13.175, ** p<0.01 familiar vs novel object, Tukey post hoc test. Genotype effect F(1, 20)=0.660 p>0.05, interaction genotype x object F(1, 20)=1.211 p>0.05). e In the elevated plus maze, WT and APMAP-KO mice exhibited a similar exploration time on the open arms (repeated-measures ANOVA F(1, 19)=3.576, p>0.05 for genotype). f APMAP-KO mice did not exhibit a reduced locomotion activity or an anxiety-related behavior compared to WT mice during an open field test (repeated-measures ANOVA F1,22=0.7, p>0.05 for genotype). Data are expressed as the mean ± SEM
Fig. 2The constitutive deletion of APMAP worsens spatial memory and increases the hippocampal Aβ plaque load in AD mice. a, b In the Morris water maze, 20-month-old Alzheimer’s disease (AD) mice depleted for APMAP (ko/ko AD; n=5; 2 females and 3 males) exhibited poorer escape learning during training trials (repeated measures ANOVA: distance to platform, F3,21=8.426 *p<0.05 Day 1 versus Day 4; treatment effect F1,21=7.290, #p<0.05 +/+ AD versus ko/ko AD at day 4) (a), and spent significantly less time in the target quadrant during probe test (b) compared to AD control mice (+/+ AD; n=4; 1 female and 3 males). c Heat maps describing the spatial distribution of the two groups of animals during the probe trial. Arrows indicate release points; the solid circle indicates the platform position. d Aβ1-40 peptides were estimated by ELISA in whole brain SDS extracts prepared from the right hemispheres of 9-month-old APMAP-KO/AD mice (ko/ko AD; n=7 females) and age-matched wild-type control littermates (+/+ AD; n=4 females). e The detection of Aβ plaques was performed by immunohistochemistry (IHC) in the hippocampi of the left hemispheres of the same mice as in (d). f Representative microscopic images of coronal sections of hippocampi stained by IHC for the detection of Aβ deposits (in black). Student’s t-test was applied for statistical analyses in panels d and e, with * p<0.05
Demographic and diagnostic features of the human brain cortical samples used in this study
Age, gender, post mortem interval (PMI), degree of pathology (Braak stages) and standardized/validated clinical, neuropsychological, neuropathological and behavioral assessments of AD (CERAD) are provided for both control cases (left; non-demented individuals who did not meet pathological diagnostic criteria of AD or any other neurodegenerative diseases), or AD cases (right)
Fig. 3Purification of APMAP protein complexes and identification of APMAP interacting proteins. a Schematic representation of the multistep process designed for the purification of APMAP protein complexes and for the identification of APMAP interactomers. b Affinity purified APMAP protein complexes of different sizes were separated by size exclusion chromatography (SEC) on a Superdex 200 10/300 GL column. The SEC protein elution profile (top) revealed a protein distribution over 12 SEC fractions (A15 to B5), separated under denaturing conditions (SDS-PAGE) and immunostained with an anti-APMAP antibody (middle) or separated by blue native-PAGE (BN-PAGE) on a 4-16% Bis-Tris gel, and immunostained for APMAP (bottom). APMAP protein complexes appeared on the native gel as a low-molecular-weight complex (LMWC) of ~60 kDa and high-molecular-weight complexes (HMWCs) of ~150 to ~650 kDa. c Mass spectrometric identification of APMAP interacting proteins. The APMAP-containing low- and high-molecular-weight complexes from selected SEC fractions A15, B15, B14, B12 and B10 were resolved by native-PAGE on a 4-16% Bis-Tris gel, stained by silver nitrate, and the bands corresponding to eight different protein complexes (CP1 to CP8) were excised for protein content analysis by LC-MS/MS mass spectrometry. d Summary table of APMAP-interacting proteins identified by LC-MS/MS in CP1 to CP8. *Proteins and peptides identified by LC-MS/MS are listed in Additional file 1 Figure S4
Fig. 4APMAP interacting proteins are endogenous modulators of APP processing and Aβ production. a The knockdown of the indicated APMAP-interacting proteins was mediated by siRNA in HEK cells overexpressing APP bearing the Swedish mutation that causes early-onset familial Alzheimer’s disease (HEK-APPSwe). After 3 days of treatment, whole cell extracts from biological triplicates were prepared and analyzed by Western blot for the siRNA protein targets, APP-FL, APP-CTFs and APMAP. Actin served as a protein loading control. Scramble: allstar control siRNA; APP-FL: APP full-length; APP-CTFs: APP-C-terminal fragments. siRNA duplexes are listed in the Materials and Methods section. b The conditioned media of the siRNA-treated cells in (a) were used to quantitatively measure, by ELISA, the secreted peptides Aβ1-40 and Aβ1-42. Note the correlation between APP-CTFs levels estimated by densitometric analysis of the APP-CTFs Western blot bands in (a) and the production of both Aβ1-40 and Aβ1-42. Student’s t-test was applied for statistical analysis; the significance is shown as the mean ± SEM, *P < 0.05; **P < 0.01; ***P < 0.001; Aβ40 and Aβ42: n = 6/group; APP-CTFs: n=3/group
Fig. 5Increased alternative splicing of APMAP and reduced HSPA1A and CD-M6PR in AD brains. a Increased alternative splicing variant APMAP2 in AD brains, as estimated by Western blot analysis of APMAP1 and APMAP2 in cortical lysates of 14 control brains and 14 neuropathologically verified AD brains. Detailed demographic and diagnostic features of the human brain samples are provided in Table 1. Actin served as a loading control. b Densitometric analysis of the APMAP1 and APMAP2 Western blot bands in (a). Student’s t-test with mean ± SEM, **P < 0.01. c Denatured cortical lysates of control and AD brains treated in the presence (+) or absence (-) of PNGase. d Schematic representation of the exons and introns of APMAP1 and APMAP2. The predicted glycosylation site in exon 5 at position N160 is shown. e Reduced HSPA1A and CD-M6PR levels in AD brains, as estimated by Western blot analysis in the same samples as in (a). f Densitometric analysis of HSPA1A and CD-M6PR (e) and other APMAP-interactomers Additional file 1 Figure S9 Western blot bands. Student’s t-test with mean ± SEM, **P < 0.01
Fig. 6Representation of gene ontology enrichment in mice with constitutive depletion of APMAP, according to biological process (a), molecular function (b) and cellular compartment (c). Label-free quantitative proteomics (procedure described in details in the Materials and Methods section) was used to identify proteins differentially expressed in the brains of APMAP-KO mice. Significantly enriched GO terms (p-value < 0.05) were identified by comparing the list of 113 significantly altered proteins (Additional file 2: Table S1) against the whole list of 2747 detected proteins (Additional file 2: Table S1) using the 1D enrichment tool in Perseus