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Alzheimer's Disease Neuroimaging Initiative (ADNI)

Publications and source records attributed to Alzheimer's Disease Neuroimaging Initiative (ADNI).

2 recordsLinked to original sources

GWAS of Tau-Neurodegeneration Mismatch Identifies New Risk Loci for Susceptibility to Tau.

BACKGROUND: In Alzheimer's disease (AD), neurodegeneration is primarily attributed to the accumulation of tau neurofibrillary tangles. However, the distribution patterns of both tau pathology and neurodegeneration vary across different brain regions and among individuals. Moreover, multiple factors may influence the relationship between tau burden and neurodegenerative processes. Identifying the genetic architecture associated with deviation in the tau-neurodegeneration relationship can provide deeper mechanistic insights and guide the development of precision medicine strategies. METHODS: Here, I perform a genome-wide association study (GWAS) of cortical tau and thickness quantified by positron emission tomography (PET) and magnetic resonance imaging (MRI) in 794 participants from two cohorts of Alzheimer's disease Neuroimaging Initiative (ADNI) and A4. RESULTS: A GWAS was identified between the Tau/Neurodegeneration residual and two novel loci on chromosomes 7 and 14, with two SNPs (rs9323573 and rs9784993) exceeding the genome-wide significance threshold (p ≤ 5 × 10-8). SNP rs9323573 is located in STXBP6 on chromosome 14, while rs9784993 is in AKAP9 on chromosome 7, both of which were directly genotyped. The minor allele G of both SNPs (rs9323573, MAF = 0.221, p = 2.60 × 10-8; rs9784993, MAF = 0.197, p = 4.92 × 10-8) was associated with lower Tau/Neurodegeneration residuals, indicating higher-than-expected neurodegeneration given tau levels. CONCLUSION: GWAS of tau-related neurodegeneration identified two novel genetic variants in the loci AKAP9 and STXBP6 leading to higher than expected regional neurodegeneration given the tau level. Identifying genetic factors involved in tau-neurodegeneration mismatch may improve our understanding regarding the potential mechanistic downstream leading to susceptibility or resilience to tau pathology.

Humans

Sex and APOE ε4 allele differences in longitudinal white matter microstructure in multiple cohorts of aging and Alzheimer's disease.

INTRODUCTION: The effects of sex and apolipoprotein E (APOE)-Alzheimer's disease (AD) risk factors-on white matter microstructure are not well characterized. METHODS: Diffusion magnetic resonance imaging data from nine well-established longitudinal cohorts of aging were free water (FW)-corrected and harmonized. This dataset included 4741 participants (age = 73.06 ± 9.75) with 9671 imaging sessions over time. FW and FW-corrected fractional anisotropy (FAFWcorr) were used to assess differences in white matter microstructure by sex and APOE ε4 carrier status. RESULTS: Sex differences in FAFWcorr in projection tracts and APOE ε4 differences in FW limbic and occipital transcallosal tracts were most pronounced. DISCUSSION: There are prominent differences in white matter microstructure by sex and APOE ε4 carrier status. This work adds to our understanding of disparities in AD. Additional work to understand the etiology of these differences is warranted. HIGHLIGHTS: Sex and apolipoprotein E (APOE) ε4 carrier status relate to white matter microstructural integrity. Females generally have lower free water-corrected fractional anisotropy compared to males. APOE ε4 carriers tended to have higher free water than non-carriers.

Humans