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Ramirez, A. M.

Publications and source records attributed to Ramirez, A. M..

4 recordsLinked to original sources

Disrupted Lipid Homeostasis as a Pathogenic Mechanism in ABCA7-Associated Alzheimers Disease Risk

INTRODUCTIONABCA7 (ATP-binding cassette sub-family A member 7) encodes a lipid transporter linked to Alzheimers disease (AD). While common variants confer modest risk in Europeans, a 44-base pair deletion (rs142076058; p.Arg578Alafs) is a strong risk factor in African Americans (AA). Despite this, the biological consequences of this ancestry-specific variant are not well understood. METHODSWe expressed the truncated ABCA7 protein in HEK and HepG2 cells to assess localization and lipid metabolism. Additionally, induced pluripotent stem cell (iPSC)-derived neurons carrying the deletion were compared with isogenic controls. RESULTSThe truncated ABCA7 localized to the plasma membrane similarly to wild type but induced significant lipid droplet accumulation in HepG2 cells and iPSC-derived neurons. DISCUSSIONThese findings show that the AA-specific ABCA7 deletion disrupts lipid regulation despite normal localization, suggesting a mechanistic link between impaired lipid homeostasis and increased AD risk. This work underscores the importance of ancestry-specific studies in AD research. HighlightsO_LITruncated ABCA7 protein remains stable and correctly localizes to the plasma membrane in HEK293T cells. C_LIO_LITruncated ABCA7 disrupts lipid droplet regulation in HepG2 cells. C_LIO_LIABCA7 shows the highest expression in neurons among brain cell types. C_LIO_LIABCA7 truncation impairs lipid metabolism in neurons. C_LI

neuroscience↗

African origin haplotype protective for Alzheimer's disease in APOEϵ4 carriers: exploring potential mechanisms

APOE{varepsilon}4 is the strongest genetic risk factor for Alzheimers disease (AD) with approximately 50% of AD patients carrying at least one APOE{varepsilon}4 allele. Our group identified a protective interaction between APOE{varepsilon}4 with the African-specific A allele of rs10423769, which reduces the AD risk effect of APOE{varepsilon}4 homozygotes by approximately 75%. The protective variant lies 2Mb from APOE in a region of segmental duplications (SD) of chromosome 19 containing a cluster of pregnancy specific beta-1 glycoprotein genes (PSGs) and a long non-coding RNA. Using both short and long read sequencing, we demonstrate that rs10423769_A allele lies within a unique single haplotype inside this region of segmental duplication. We identified the protective haplotype in all African ancestry populations studied, including both West and East Africans, suggesting the variant has an old origin. Long-read sequencing identified both structural and DNA methylation differences between the protective rs10423769_A allele and non-protective haplotypes. An expanded variable number tandem repeat (VNTR) containing multiple MEF2 family transcription factor binding motifs was found associated with the protective haplotype (p-value = 2.9e-10). These findings provide novel insights into the mechanisms of this African-origin protective variant for AD in APOE{varepsilon}4 carriers and supports the importance of including all ancestries in AD research.

genetics↗

Gene expression and chromatin accessibility comparison in iPSC-derived microglia in African, European, and Amerindian genomes in Alzheimer's patients and controls.

Alzheimers disease (AD) risk differs between population groups, with African Americans and Hispanics being the most affected groups compared to non-Hispanic Whites. Genetic factors contribute significant risk to AD, but the genetic regulatory architectures (GRA) have primarily been studied in Europeans. Many AD genes are expressed in microglia; thus, we explored the impact of genetic ancestry (Amerindian (AI), African (AF), and European (EU)) on the GRA in iPSC-derived microglia from 13 individuals ([~]4 each with high global ancestry, AD and controls) through ATAC-seq and RNA-seq analyses. We identified several differentially accessible and expressed genes (2 and 10 AD-related, respectively) between ancestry groups. We also found a high correlation between the transcriptomes of iPSC-derived and brain microglia, supporting their use in human studies. This study provides valuable insights into genetically diverse microglia beyond the analysis of AD.

genomics↗

The major role of sarA in limiting Staphylococcus aureus extracellular protease production is correlated with decreased virulence in diverse clinical isolates in osteomyelitis

We previously demonstrated that MgrA, SarA, SarR, SarS, SarZ, and Rot bind at least three of the four promoters associated with genes encoding primary extracellular proteases in Staphylococcus aureus. We also showed that mutation of sarA results in a greater increase in protease production, and decrease in biofilm formation, than mutation of the loci encoding any of these other proteins. However, these conclusions were based on in vitro studies. Thus, the goal of the experiments reported here was to determine the relative impact of the regulatory loci encoding these proteins in vivo. To this end, we compared the virulence of mgrA, sarA, sarR, sarS, sarZ, and rot mutants in a murine osteomyelitis model. Mutants were generated in the methicillin-resistant USA300 strain LAC and the methicillin-sensitive USA200 strain UAMS-1. As assessed based on an overall osteomyelitis pathology score derived from the incidence of bone fracture, bacterial burdens in the bone, cortical bone destruction, and reactive bone formation, mutation of mgrA and rot limited virulence to a statistically significant extent in UAMS-1, but not in LAC. In contrast, the sarA mutant exhibited reduced virulence in both strains. This illustrates the importance of considering diverse clinical isolates when evaluating the impact of regulatory mutations on virulence. The reduced virulence of the sarA mutant was correlated with reduced cytotoxicity for osteoblasts and osteoclasts, reduced biofilm formation, and reduced sensitivity to the antimicrobial peptide indolicidin, all of which were directly attributable to increased protease production in both LAC and UAMS-1. This suggests that these in vitro phenotypes, either alone or in combination with each other, may be useful in prioritizing additional mutants for in vivo evaluation. Most importantly, they illustrate the significance of limiting protease production in vivo in S. aureus, and confirm that SarA plays the primary role in this regard. Author SummaryStaphylococcus aureus causes a diverse array of infections due to its ability to produce an arsenal of virulence factors. Among these are extracellular proteases, which serve several purposes on behalf of the bacterium. However, it has become increasingly apparent that it is also critical to limit the production of these proteases to prevent them from compromising the S. aureus virulence factor repertoire. Many regulatory loci have been implicated in this respect, but it is difficult to draw relative conclusions because few reports have made direct comparisons, and fewer still have done so in vivo. We addressed this by assessing the impact on virulence of six regulatory loci previously implicated in protease production. We did this in the clinical context of osteomyelitis using mutants generated in two divergent clinical isolates. Our results confirm significant strain-dependent differences, reinforcing the importance of considering such diverse clinical isolates when evaluating targets for potential therapeutic intervention. In this respect, only mutation of sarA attenuated virulence in both strains. This illustrates the importance of limiting protease production as a means of post-translational regulatory control in S. aureus and confirms that sarA plays a predominant role in this regard.

microbiology↗