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Parida, P.

Publications and source records attributed to Parida, P..

2 recordsLinked to original sources

Novel nanopore sequencing method for determining Human Papillomavirus integrations in tumors without the need for whole genome sequencing

Human papillomaviral (HPV) integrations into host human genome, a key event in cervical carcinogenesis, are currently mapped through laborious and expensive sequencing methodologies. We developed and validated a novel library preparation strategy for nanopore sequencing to generate long targeted reads with HPV and human chimeric sequences. Using this strategy, we validated known HPV integrations in HeLa (HPV18) and SiHa (HPV16) cell lines. We also mapped integration sites in five HPV+ cervical cancer patients, which were confirmed by whole genome and Sanger sequencing. Our nanopore-based method provides a precise and efficient strategy to capture HPV integrations crucial for understanding tumorigenesis.

genomics↗

WNK1 Enhances Migration and Invasion in Breast Cancer Models

Metastasis is the major cause of mortality in breast cancer patients. Many signaling pathways have been linked to cancer invasiveness, but blockade of few protein components has succeeded in reducing metastasis. Thus, identification of proteins contributing to invasion that are manipulable by small molecules may be valuable in inhibiting spread of the disease. The protein kinase WNK1 (with no lysine (K) 1) has been suggested to induce migration of cells representing a range of cancer types. Analyses of mouse models and patient data have implicated WNK1 as one of a handful of genes uniquely linked to invasive breast cancer. Here we present evidence that inhibition of WNK1 slows breast cancer metastasis. We show that depletion or inhibition of WNK1 reduces migration of several breast cancer cell lines in wound healing assays and decreases invasion in collagen matrices. Furthermore, WNK1 depletion suppresses expression of AXL, a tyrosine kinase implicated in metastasis. Finally, we demonstrate that WNK inhibition in mice attenuates tumor progression and metastatic burden. These data showing reduced migration, invasion, and metastasis upon WNK1 depletion in multiple breast cancer models suggest that WNK1 contributes to the metastatic phenotype and that WNK1 inhibition may offer a therapeutic avenue for attenuating progression of invasive breast cancers.

cancer biology↗