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Vishlaghi, N.

Publications and source records attributed to Vishlaghi, N..

2 recordsLinked to original sources

Dicer- and BSC-dependent miRNAs during murine anagen development

MicroRNAs (miRNAs) are a major class of conserved non-coding RNAs that have a wide range of functions during development and disease. Biogenesis of canonical miRNAs depend on the cytoplasmic processing of pre-miRNAs to mature miRNAs by the Dicer endoribonuclease. Once mature miRNAs are generated, the miRNA-induced silencing complex, or miRISC, incorporates one strand of miRNAs as a template for recognizing complementary target messenger RNAs (mRNAs) to dictate post-transcriptional gene expression. Besides regulating miRNA biogenesis, Dicer is also part of miRISC to assist in activation of the complex. Dicer associates with other regulatory miRISC co-factors such as trans-activation responsive RNA-binding protein (Tarbp2) to regulate miRNA-based RNA interference. Although the functional role of miRNAs within epidermal keratinocytes have been extensively studied within embryonic and post-natal mouse skin, its contribution to the normal function of hair follicle bulge stem cells (BSCs) during post-natal hair follicle development is unknown. With this question in mind, we sought to ascertain whether Dicer-Tarpb2 plays a functional role within BSCs during induced anagen development by utilizing conditional knockout mouse models. Our findings suggest that Dicer, but not Tarbp2, functions within BSCs to regulate induced anagen (growth) development of post-natal hair follicles. These findings strengthen our understanding of miRNA-dependency within hair follicle cells to define a boundary for post-transcriptional gene regulation during anagen development.

molecular biology

TGFβ superfamily signaling regulates the state of human stem cell pluripotency and competency to create telencephalic organoids

Telencephalic organoids generated from human pluripotent stem cells (hPSCs) are emerging as an effective system to study the distinct features of the developing human brain and the underlying causes of many neurological disorders. While progress in organoid technology has been steadily advancing, many challenges remain including rampant batch-to-batch and cell line-to-cell line variability and irreproducibility. Here, we demonstrate that a major contributor to successful cortical organoid production is the manner in which hPSCs are maintained prior to differentiation. Optimal results were achieved using fibroblast-feeder-supported hPSCs compared to feeder-independent cells, related to differences in their transcriptomic states. Feeder-supported hPSCs display elevated activation of diverse TGF{beta} superfamily signaling pathways and increased expression of genes associated with naive pluripotency. We further identify combinations of TGF{beta}-related growth factors that are necessary and together sufficient to impart broad telencephalic organoid competency to feeder-free hPSCs and enable reproducible formation of brain structures suitable for disease modeling. HIGHLIGHTSO_LIhPSC maintenance conditions influence outcomes in cortical organoid formation C_LIO_LIIdentification of an intermediate pluripotency state optimal for cortical organoids C_LIO_LIFeeder support involves activation of diverse TGF{beta} signaling pathways C_LIO_LIThe organoid-promoting effects of feeders can be mimicked by a TGF{beta} factor mixture C_LI

developmental biology