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Prajapati, A.

Publications and source records attributed to Prajapati, A..

3 recordsLinked to original sources

Ex vivo astrocyte-to-oligodendrocyte conversion in human adult cortical tissue using transcription factor overexpression

Multiple sclerosis (MS) is an autoimmune and neurological disorder characterized by myelin disruption and neuronal degeneration. Currently approved therapies focus on symptom relief but do not promote central nervous system (CNS) repair. In contrast, astrocytes proliferate and repopulate MS-related lesions. Moreover, in active lesions, they hinder regenerative processes such as neural progenitor migration. Here, we propose astrocytes as a potential target for myelin repair in the human diseased brain. To achieve this aim, we investigated whether glial fibrillary acidic protein (GFAP)+ astrocytes can be transdifferentiated into oligodendrocyte lineage cells through forced overexpression of transcription factors both in vitro and ex vivo organotypic cultures of human adult cortex. Our results show that overexpression of OLIG2 and SOX10 in human induced pluripotent stem cell-derived astrocytes gives rise to oligodendrocyte progenitor cells 12 days post-induction, as shown by morphological changes and O4 marker expression. Importantly, transdifferentiation of GFAP-expressing endogenous astrocytes in human adult cortical tissue give rise to mature oligodendrocytes, as shown by expression of CC1, after only 12 days of overexpression of OLIG2 and SOX10. To our knowledge, this is the first study to assess direct astrocyte-to-oligodendrocyte reprogramming in a human platform preserving the native three-dimensional architecture of the brain. Further work will be required to determine whether the reprogrammed cells can myelinate axons and to evaluate the potential of this approach for structural and functional repair in the demyelinated human CNS.

neuroscience↗

Machine Learning Ensemble Reveals Distinct Molecular Pathways of Retinal Damage in Spaceflown Mice

BackgroundSpaceflight-associated neuro-ocular syndrome (SANS) poses significant risks to astronaut visual health during long-duration missions, yet its underlying molecular mechanisms remain incompletely understood. Oxidative stress and apoptosis are candidate molecular drivers, but their transcriptomic signatures in spaceflight-exposed retinal tissue have not been systematically characterized. MethodsWe applied a machine learning ensemble of linear regression models to predict two ocular phenotypes: 4-hydroxynonenal (4-HNE) immunostaining as a marker of lipid peroxidation-mediated oxidative damage; and TUNEL positivity as a marker of apoptotic cell death. In this observational study, we use bulk retinal gene expression data obtained from a controlled experiment with ground control and spaceflown mice to predict these phenotypes. Gene Ontology pathway enrichment was performed on the most predictive gene sets for each phenotype. ResultsThe 4-HNE phenotype was predicted by genes that converge on membrane-associated pathways, photoreceptor protein modification, synaptic dysfunction, and extracellular matrix dysregulation, including B2m, Tf, Cnga1, mt-Nd1, Snap25, and Efemp1. The genes predicting the TUNEL phenotype revealed a distinct signature emphasizing stress-induced apoptosis, rod photoreceptor degeneration, and endoplasmic reticulum dysfunction, with Ddit4, Nrl, Rom1, Reep6, and Gabarapl1 emerging as central regulators. ConclusionsOxidative lipid peroxidation and apoptotic cell death represent complementary and molecularly distinct pathological mechanisms in spaceflight-exposed murine retinal tissue. The gene signatures provide a putative molecular framework for developing noninvasive biomarkers and therapeutic targets to monitor and protect astronaut visual health during long-duration and deep-space missions.

bioinformatics↗

Identification of genetic variation in genes linked to buparvaquone resistance in Theileria sp infecting dairy cattle in India.

Buparvaquone (BQO) is used for treatment of bovine theileriosis, a tickborne disease caused by parasites of the Theileria genus. Studies on T. annulata have linked the mechanism of BQO resistance predominantly to genetic variations in the parasite cytochrome b (cytb) gene. In addition, cryptic mechanisms of resistance involving the parasite peptidyl-prolyl isomerase (pin1) and dihydroorotate dehydrogenase (dhodh) genes require assessment. In India, where bovine theileriosis is endemic, and BQO is widely used for treatment, monitoring and establishing the link between genetic variations in cytb, dhodh and pin1 genes and BQO resistance is essential. In this study, multiplexed PCR amplification and nanopore sequencing approaches were used for genotyping the complete gene loci of the target genes. Analysis of 420 T. annulata field samples collected from seven different states of India revealed the presence of previously reported variations S129G, A146T and P253S in cytb and A53P in pin1, which are linked to BQO resistance. The role of A146T, a highly prevalent variation which mostly co-occurred with I203V, in BQO resistance needs to be evaluated. From 60 samples having T. orientalis infection, the genetic variations identified from the three genes were found to be mostly natural variations based on the reference genotypes and were distinct from T. annulata variations. This study has revealed the presence of BQO resistance-linked cytb gene mutations in T. annulata infecting dairy cattle in India and establishes a nanopore sequencing method for molecular surveillance of genetic variation in field samples. Author SummaryBuparvaquone (BQO) is the most effective drug that is available for the treatment of cattle theileriosis caused by parasites of the Theileria genus. However, treatment failure due to drug resistance is reported, and gene mutations linked to BQO resistance have been reported in African and Middle Eastern countries. These mutations occur in the cytochrome b (cytb) and peptidyl-prolyl isomerase (pin1) genes in the parasite. In this study, genetic variations occurring in these two genes and the parasite dihydroorotate dehydrogenase (dhodh) gene have been mapped using PCR amplification and Nanopore sequencing from field samples collected from seven different states of India. At least three previously reported mutations linked to BQO resistance were found in the T. annulata cytb gene sequence obtained from field samples. While one of these mutations (A146T) was highly prevalent, the other two were found to occur in only a few samples. Similarly, the BQO resistance linked to A53P mutation in the T. annulata pin1 gene was present in only a few samples. Despite their low frequency, the presence of these mutations reveals the existence of BQO resistance due to genetic variations in the parasite population present in India. This is the first comprehensive report of BQO resistance-conferring mutations occurring in Theileria parasites affecting dairy cattle in India and establishes a scalable method for large-scale molecular surveillance studies.

genomics↗