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Yarlagadda, A.

Publications and source records attributed to Yarlagadda, A..

2 recordsLinked to original sources

Engineered extracellular vesicles targeting BACE1 reduces amyloid beta plaque formation in a genetic mouse model of Alzheimer Disease

Alzheimers disease (AD) is a progressive neurodegenerative disorder characterized by the accumulation of amyloid-{beta} (A{beta}) plaques, neurodegeneration, and cognitive decline. {beta}-Site amyloid precursor protein cleaving enzyme 1 (BACE1) catalyzes the rate-limiting step in A{beta} production and remains a therapeutic target for AD. However, effective delivery of RNA therapeutics to the brain remains challenging due to the blood-brain barrier (BBB). Here, we evaluated the feasibility of using clinical-grade mesenchymal stem cell-derived extracellular vesicles (EVs) as systemic carriers for Bace1-targeting small interfering RNA (siRNA) in the 5xFAD mouse model of AD. Engineered EVs crossed the BBB and delivered siRNA cargo to the brain, with uptake observed in both neurons and astrocytes. Systemic therapy with EVs engineered to encapsulate Bace1 siRNA resulted in reduced brain Bace1 protein levels and a decrease in amyloid plaque burden compared with control EVs carrying scrambled siRNA. The reduction was most pronounced in larger, high-intensity plaques, suggesting that Bace1 suppression may preferentially limit plaque growth and maturation. Repeated systemic administration was well tolerated, with no evidence of treatment-associated toxicity. These findings establish a proof-of-concept feasibility for EV-mediated delivery of Bace1-targeting siRNA to the brain and support further development of engineered EVs as a therapeutic platform for neurodegenerative diseases. Future studies incorporating behavioral, molecular, and mechanistic analyses will be required to determine the extent to which Bace1 suppression delivered through EVs can modify disease progression and improve functional outcomes in AD.

cell biology↗

A novel pharmacogenetic testing panel for CYP2C19 genetic polymorphisms

Specific drug metabolism rates are defined by the constituency of the cytochrome P450 (CYP) genome, including polymorphic changes in any of 200+ CYP genes. An example is CYP2C19, where associations of gene polymorphisms with variability in certain drug metabolism rates have been linked to inter-individual and inter-ethnic differences in therapeutic outcomes. While pharmacogenomic screening for these variants prior to drug and dosage prescription has well-defined links to better treatment outcomes, current implementation is limited to complex and costly variant-probing and DNA sequencing protocols, which have limited availability in clinical laboratories, leading to slow turnaround times, impacting effective clinical intervention. Here we describe a novel, cost-effective, multiplex genotyping approach to screening CYP2C19 variants. Fluorescence nested allele-specific (FAS) PCR was used with primers to detect CYP2C19 variants of interest in specific hot spots, including the Tier 1 haplotypes identified by the Association for Molecular Pathology (AMP): CYP2C19*2, *3, and *17. The presence/absence of wild-type and mutant alleles were identified independently as haplotypes, and in a multiplex reaction as diplotypes representing the 10 possible genotype combinations/profiles. FAS-PCR achieved the same genotype calls as a pyrosequencing protocol optimized for validating genotypes, but with a simpler and more sensitive interface. The FAS-PCR method correctly identified the genotypes of both synthesized DNA and a human genomic DNA standard. Uniquely, the FAS-PCR protocol generates patterns using one fluorescently-labeled primer irrespective of the number of variants targeted, establishing it as considerably more cost-effective than other allele-specific PCR-based techniques that involve labeling both the forward and reverse primers.

pharmacology and toxicology↗