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Hampikian, G.

Publications and source records attributed to Hampikian, G..

2 recordsLinked to original sources

Spaceflight-relevant microgravity triggers a sublethal Parkinson's-like dopaminergic decline in human neurons and organoids.

Spaceflight stressors may increase Parkinsons disease (PD) risk, but microgravitys specific contribution to human dopaminergic (DA) vulnerability remains undefined. Here, we exposed human iPSC-derived midbrain DA organoids and differentiated SH-SY5Y neurons to simulated microgravity for 72 hours. This exposure reduced neurite outgrowth, eroded DA identity, and activated familial-PD mitochondrial kinases without depleting extracellular dopamine. We observed severe mitochondrial dysfunction--including membrane potential loss and respiratory suppression--coupled with global translational repression. Furthermore, a sublethal, pre-degenerative state emerged, characterized by the selective release of mitochondrial cell-free DNA without apoptotic activation. Proteomic profiling revealed striking convergence with human PD transcriptomes and astronaut blood, highlighting shared suppression of mitochondrial metabolism, ribosomal translation, and altered RNA splicing. Together, these findings establish simulated microgravity as a sufficient, non-toxin trigger of early PD-like DA dysfunction, providing a robust human model for investigating prodromal neurodegeneration.

neuroscience↗

Is a Picture Worth 1,000 SNPs? Effects of User-Submitted Photographs on Ancestry Estimates from Direct-to-Consumer Canine Genetic Tests

ObjectiveTo evaluate whether the breed ancestry predictions of direct-to-consumer (DTC) genetic tests for dogs are influenced by the user-provided photograph. AnimalsTwelve pet dogs considered purebred (i.e., registered with a breed organization) representing twelve different breeds. MethodsSix buccal swabs per dog were collected by the owners and submitted to six DTC genetic testing companies. The experimenters registered each sample with the company. For half of the dogs, the registration included a photograph of the DNA donor. For the other half of the dogs, photographs were swapped between dogs. Analysis of the DNA and breed ancestry prediction was conducted by each company. Each companys breed predictions were evaluated to assess whether the condition (i.e., matching versus shuffled photograph) affected the odds of identifying the DNA donors registered breed. A convolutional neural network was also used to predict breed based solely on the photograph as a positive control. ResultsFive of the six tests always produced results that included the registered breed. One test and the convolutional neural network were unlikely to identify the registered breed and frequently returned results that included the breed in the photograph. This result suggests that one test on the market is relying on the photograph more than the DNA sample. Additionally, differences in the predictions made across all tests underscore the challenge of identifying breed ancestry, even in purebred dogs. Clinical RelevanceVeterinarians are likely to encounter patients who have conducted DTC genetic testing and may find themselves in the position of explaining genetic test results that they did not order. This systematic comparison of tests on the market provides context for interpreting unexpected results from consumer-grade DTC genetic testing kits.

genetics↗