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Janesick, A. S.

Publications and source records attributed to Janesick, A. S..

2 recordsLinked to original sources

Biomarker Quantification in Breast Cancer using Xenium In Situ

Advances in spatial transcriptomics enable high-throughput quantitation of both established and novel biomarkers at single cell resolution, offering the potential to transform diagnostics. Using Xenium in situ technology in FFPE human breast samples, we address two challenges in the cancer field: 1. achieving reliable normalization of gene expression across heterogeneous sample populations; 2. identifying biomarkers that predict invasion or metastasis. We describe a scalable approach to identify low-variation housekeeping (HK) genes within any given sample set, then use those HK genes for cross- and intra-sample normalization of biomarkers. Analyzing 12 FFPE human breast samples-primarily ductal carcinoma in situ (DCIS)-with a custom 280-gene panel, we identified four HK genes (EEF1G, EEF2, MALAT1, and RPLP0) that exhibited minimal variability in tumor cells, four tumor cell biomarkers (LDHA, SDC1, PIGR, SFRP1) that increased or decreased with tumor grade, and one tumor-associated myoepithelial biomarker (LAMC2). Normalizing biomarkers to the four HK genes preserved the dynamic range of expression necessary for distinguishing tumor grades, outperforming HKs from legacy RT-PCR diagnostic panels. Lastly, we employed a cell-agnostic approach in the tumor periphery to quantify MMP11, a biomarker correlated with proliferative and potentially pre-invasive ducts. Our results establish a single cell normalization method for spatial in situ transcriptomics and reveal and quantitate biomarkers relevant to DCIS risk and progression.

cancer biology↗

Chicken Auditory Supporting Cells Express Interferon Response Genes during Regeneration towards Nascent Sensory Hair Cells In Vivo

The avian hearing organ is the basilar papilla that, in sharp contrast to the mammalian cochlea, can regenerate sensory hair cells and thereby recover from complete deafness within weeks. The mechanisms that trigger, sustain, and terminate the regenerative response in vivo are largely unknown. Here, we profile the changes in gene expression in the chicken basilar papilla after aminoglycoside antibiotic-induced hair cell loss using RNA-sequencing. The most prominent changes in gene expression were linked to the upregulation of interferon response genes which occurred in supporting cells, confirmed by single-cell RNA-sequencing and in situ hybridization. We determined that the JAK/STAT signaling pathway is essential for the interferon gene response in supporting cells, set in motion by hair cell loss. Four days after ototoxic damage, we identified newly regenerated, nascent auditory hair cells that express genes linked to termination of the interferon response. These cells are incipient modified neurons that represent a population of hair cells en route towards obtaining their location-specific and fully functional cell identity. The robust, transient expression of immune-related genes in supporting cells suggests a potential functional involvement of JAK/STAT signaling and interferon in sensory hair cell regeneration.

neuroscience↗