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Hernandez-Padilla, C.

Publications and source records attributed to Hernandez-Padilla, C..

2 recordsLinked to original sources

KEAP1 mutations activate the NRF2 pathway to drive cell growth and migration, and attenuate drug response in thyroid cancer

The KEAP1/NRF2 pathway, a major regulator of the cellular oxidative stress response, is frequently activated in human cancers. Often mediated by loss-of-function mutations in KEAP1, this activation causes increased NRF2 transcriptional activity and constitutive activation of the antioxidant response. While KEAP1 mutations have been well documented in various cancers, their presence and role in thyroid carcinoma have remained largely unexplored. In this study, we sequenced pediatric thyroid tumors and analyzed publicly available datasets, identifying 81 KEAP1 mutations in tumors across a range of histologies. In these tumors, we further identified frequent biallelic loss of KEAP1 via 19p13.2 loss of heterozygosity (LOH). MAPK-activating alterations were found in a subset of KEAP1-mutant cases, but they were mutually exclusive with 19p13.2 LOH. Transcriptome analysis also revealed significant activation of the NRF2 pathway in KEAP1-mutant tumors. Four additional cases with similar transcriptional profiles but lacking mutational data were identified, likely representing putative KEAP1 mutants. Using in vitro cell line models, we then profiled the functional consequences of KEAP1 knockout in cells with and without known driver alterations. In these models, we show that KEAP1 loss leads to an NRF2-dependent upregulation of AKR1C3, GCLC, NQO1, along with increased proliferation and migration, irrespective of MAPK mutational status. We also demonstrate that loss of KEAP1 reduced sensitivity of RET fusion-positive cells to selpercatinib, consistent with previous reports that these alterations promote drug resistance in other malignancies. In this report, we comprehensively profile KEAP1 mutations in thyroid tumors, showing they are more prevalent and functionally significant than previously recognized. These findings position KEAP1 mutations as potential novel oncogenic drivers in thyroid cancer and support the integration of KEAP1/NRF2 pathway profiling into future studies and clinical frameworks.

cancer biology↗

Coiling of cellular protrusions around extracellular fibers

Protrusions at the leading-edge of a cell play an important role in sensing the extracellular cues, during cellular spreading and motility. Recent studies provided indications that these protrusions wrap (coil) around the extra-cellular fibers. The details of this coiling process, and the mechanisms that drive it, are not well understood. We present a combined theoretical and experimental study of the coiling of cellular protrusions on fibers of different geometry. Our theoretical model describes membrane protrusions that are produced by curved membrane proteins that recruit the protrusive forces of actin polymerization, and identifies the role of bending and adhesion energies in orienting the leading-edges of the protrusions along the azimuthal (coiling) direction. Our model predicts that the cells leading-edge coils on round fibers, but the coiling ceases for a fiber of elliptical (flat) cross-section. These predictions are verified by 3D visualization and quantitation of coiling on suspended fibers using Dual-View light-sheet microscopy (diSPIM). Overall, we provide a theoretical framework supported by high spatiotemporal resolution experiments capable of resolving coiling of cellular protrusions around extracellular fibers of varying diameters. Significance StatementCells adhere and migrate in environments that are composed of fibrous structures, such as the thin filaments of the extracellular matrix, or the wider axons and dendrites of neurons. In recent experiments, cells have been observed to form leading edge protrusions on such surfaces, that seem to coil around the extracellular fibers. However, the mechanism responsible for the formation of such coiling protrusions is not understood. Here, we provide a combined experimental and theoretical approach to explain the emergence of coiling protrusions. Our model is based on the self-organization of curved proteins that recruit actin polymerization at the leading edge of the cell, when spreading over an adhesive fiber.

biophysics↗