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Biology subjects

Sidharta, M.

Publications and source records attributed to Sidharta, M..

5 recordsLinked to original sources

Decoding subtype development and function in human pluripotent stem cell-derived midbrain dopaminergic neurons

Midbrain dopaminergic (mDA) neurons comprise molecularly and functionally distinct subtypes with differential vulnerability in neurodegenerative and psychiatric disorders. However, the mechanisms specifying subtype identity remain poorly understood, and protocols for the selective derivation of human mDA subtypes are lacking. Here we establish a strategy to derive substantia nigra (A9) and ventral tegmental area (A10) mDA neurons from human pluripotent stem cells (hPSCs). A9 identity is specified by dual-SMAD activation through Activin A and BMP7 at the midbrain floor-plate progenitor stage, whereas A10 identity is promoted by BMP inhibition. A9 mDA neurons are purified based on ALDH1A1 expression, and subtype identity is maintained by continued TGF-{beta} modulation and ESRRB activation in vitro and upon transplantation in vivo. Single-cell RNA sequencing and biochemical analyses demonstrate that hPSC-derived A9 neurons exhibit increased oxidative phosphorylation, neuromelanin-like pigmentation, elevated dopamine synthesis and release, and electrophysiological properties characteristic of A9 mDA neurons in vivo. Integration with human fetal midbrain datasets confirms strong transcriptional concordance between in vitro-derived and in vivo mDA subtypes. Neuromelanin-like structures produced by hPSC-derived A9 neurons trigger pro-inflammatory cytokine secretion from hPSC-derived microglia, and A9 neurons are primed to upregulate MHC-I genes in response to interferon-{gamma}, features which may contribute to the selective vulnerability of A9 neurons. Together, these results establish a robust in vitro platform to interrogate human mDA subtype development, function, and selective vulnerability, enabling mechanistic studies relevant to Parkinson's disease and the development of cell-based therapies.

developmental biology↗

A Transcriptional Signature of Induced Neurons Differentiates Virologically Suppressed People Living With HIV from People Without HIV

Neurocognitive impairment is a prevalent and important co-morbidity in virologically suppressed people living with HIV (PLWH), yet the underlying mechanisms remain elusive and treatments lacking. Here, we explored for the first time, use of participant-derived directly induced neurons (iNs) to model neuronal biology and injury in PLWH. iNs retain age-and disease-related features of the donors, providing unique opportunities to reveal novel aspects of neurological disorders. We obtained primary dermal fibroblasts from six virologically suppressed PLWH (range: 27 - 64 years, median: 53); 83% Male; 50% White) and seven matched people without HIV (PWOH) (range: 27 - 66, median: 55); 71% Male; 57% White). iNs were generated using transcription factors NGN2 and ASCL1, and validated by immunocytochemistry and single-cell-RNAseq. Transcriptomic analysis using bulk-RNAseq identified 29 significantly differentially expressed genes between iNs from PLWH and PWOH. Of these, 16 genes were downregulated and 13 upregulated in PLWH iNs. Protein-protein interaction network mapping indicates that iNs from PLWH exhibit differences in extracellular matrix organization and synaptic transmission. IFI27 was upregulated in iNs from PLWH, which complements independent post-mortem studies demonstrating elevated IFI27 expression in PLWH-derived brain tissue, indicating that iN generation reconstitutes this pathway. Finally, we observed that expression of the FOXL2NB-FOXL2-LINC01391 genome locus is reduced in iNs from PLWH and negatively correlates with neurocognitive impairment. Thus, we have identified an iN gene signature of HIV through direct reprogramming of skin fibroblasts into neurons revealing novel mechanisms of neurocognitive impairment in PLWH. One sentence summaryDirect reprogramming of skin fibroblasts into neurons reveals unique gene signatures indicative of HIV infection in the context of viral suppression.

neuroscience↗

Retinoid X Receptor Signaling Mediates Cancer Cell Lipid Metabolism in the Leptomeninges

Cancer cells metastatic to the leptomeninges encounter a metabolically-challenging extreme microenvironment. To understand adaptations to this space, we subjected leptomeningeal-metastatic (LeptoM) mouse breast and lung cancers isolated from either the leptomeninges or orthotopic primary sites to ATAC-and RNA-sequencing. When inhabiting the leptomeninges, the LeptoM cells demonstrated transcription downstream of retinoid-X-receptors (RXRs). We found evidence of local retinoic acid (RA) generation in both human leptomeningeal metastasis and mouse models in the form of elevated spinal fluid retinol and expression of RA-generating dehydrogenases within the leptomeningeal microenvironment. Stimulating LeptoM cells with RA induced expression of transcripts encoding de novo fatty acid synthesis pathway enzymes in vitro. In vivo, while deletion of Stra6 did not alter cancer cell leptomeningeal growth, knockout of Rxra/b/g interrupted cancer cell lipid biosynthesis and arrested cancer growth. These observations illustrate a mechanism whereby metastatic cancer cells awake locally-generated developmental cues for metabolically reprograming, suggesting novel therapeutic approaches.

cancer biology↗

Leveraging CRISPR activation for rapid assessment of gene editing products in human pluripotent stem cells

Verification of genome editing in human pluripotent stem cells (hPSCs), particularly in silent locus is desirable but challenging because it often requires complex and time-intensive lineage-specific or tissue-specific differentiation to induce their expression. Here, we establish a rapid and effective workflow for the verification of hPSC lines with genome editing in unexpressed genes using CRISPR-mediated transcriptional activation (CRISPRa). We systematically compared the efficiency of various CRISPRa systems in hPSCs, identifying the SAM system as the most potent for activating silent genes in hPSCs. Furthermore, we demonstrated enhanced gene activation by combining the SAM system with TET1, a demethylation module. By inducing targeted gene activation in undifferentiated hPSCs using CRISPRa, we successfully verified single and dual reporter hPSC lines and conducted functional tests of dTAG knock-ins and silent gene knockouts within 48 hours. This approach eliminates the need for cell differentiation to access genes only expressed by differentiated cells, offering a handy assay for verifying gene editing in hPSCs.

cell biology↗

A robust and inducible precise genome editing via an all-in-one prime editor in human pluripotent stem cells

Prime editing (PE) allows for precise genome editing in human pluripotent stem cells (hPSCs), such as introducing single nucleotide modifications, small deletions, or insertions at a specific genomic locus, a strategy that shows great promise for creating "Disease in a dish" models. To improve the effectiveness of prime editing in hPSCs, we systematically compared and combined the "inhibition of mismatch repair pathway and p53" on top of the "PEmax" to generate an all-in-one "PE-Plus" prime editor. We show that PE-Plus conducts the most efficient editing among the current PE tools in hPSCs. We further established an inducible prime editing platform in hPSCs by incorporating the all-in-one PE vector into a safe-harbor locus and demonstrated temporal control of precise editing in both hPSCs and differentiated cells. By evaluating disease-associated mutations, we show that this platform allows efficient creation of both monoallelic and biallelic disease-relevant mutations in hPSCs. In addition, this platform enables the efficient introduction of single or multiple edits in one step, demonstrating potential for multiplex editing. Therefore, our method presents an efficient and controllable multiplex prime editing tool in hPSCs and their differentiated progeny.

cell biology↗