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Published on: February 9, 2021
NOX1 Regulates Collective and Planktonic Cell Migration: Insights From Patients With Pediatric-Onset IBD and NOX1
Razieh Khoshnevisan1,2,3, Michael Anderson4,5, Stephen Babcock4,5
1Dr. von Hauner Children's Hospital, Department of Pediatrics, University Hospital, Ludwig-Maximilians-Universität München, Munich, Germany.
Insights
Genetic defects in NOX1 impact intestinal healing and cell movement in pediatric inflammatory bowel disease (IBD). This study reveals NOX1
Area of Science:
- Molecular biology and genetics
- Gastroenterology
- Cell biology
Background:
- Genetic defects in pediatric-onset inflammatory bowel disease (IBD) offer insights into intestinal homeostasis.
- NOX1 is a key source of reactive oxygen species (ROS) in human colonic epithelial cells.
- This study investigates the role of NOX1 deficiency in pediatric IBD.
Purpose of the Study:
- To assess the functional consequences of human NOX1 deficiency.
- To investigate the impact of NOX1 deficiency on wound healing and epithelial migration.
- To explore the role of NOX1 in pediatric IBD pathogenesis.
Main Methods:
- Exome sequencing identified a stop-gain mutation in NOX1 in pediatric IBD patients.
- Functional characterization included ROS generation assays, wound healing, and migration studies in cell lines.
- Analysis of patient tissue samples using RNA scope and immunohistochemistry.
Main Results:
- Loss-of-function NOX1 mutation abrogated ROS activity and impaired wound healing.
- NOX1 deficiency attenuated 2D collective chemotactic migration with altered cell-cell interactions.
- Microscopy revealed reduced filopodial protrusions and altered focal adhesions in NOX1-deficient cells.
Conclusions:
- Human NOX1 plays a crucial role in regulating epithelial wound healing.
- NOX1 deficiency impacts cytoskeletal dynamics at the cell leading edge.
- NOX1 is involved in directing epithelial cell migration, relevant to IBD.
Background:
Genetic defects of pediatric-onset inflammatory bowel disease (IBD) provide critical insights into molecular factors controlling intestinal homeostasis. NOX1 has been recently recognized as a major source of reactive oxygen species (ROS) in human colonic epithelial cells. Here we assessed the functional consequences of human NOX1 deficiency with respect to wound healing and epithelial migration by studying pediatric IBD patients presenting with a stop-gain mutation in NOX1.
Methods:
Functional characterization of the NOX1 variant included ROS generation, wound healing, 2-dimensional collective chemotactic migration, single-cell planktonic migration in heterologous cell lines, and RNA scope and immunohistochemistry of paraffin-embedded patient tissue samples.
Results:
Using exome sequencing, we identified a stop-gain mutation in NOX1 (c.160C>T, p.54R>*) in patients with pediatric-onset IBD. Our studies confirmed that loss-of-function of NOX1 causes abrogated ROS activity, but they also provided novel mechanistic insights into human NOX1 deficiency. Cells that were NOX1-mutant showed impaired wound healing and attenuated 2-dimensional collective chemotactic migration. High-resolution microscopy of the migrating cell edge revealed a reduced density of filopodial protrusions with altered focal adhesions in NOX1-deficient cells, accompanied by reduced phosphorylation of p190A. Assessment of single-cell planktonic migration toward an epidermal growth factor gradient showed that NOX1 deficiency is associated with altered migration dynamics with loss of directionality and altered cell-cell interactions.
Conclusions:
Our studies on pediatric-onset IBD patients with a rare sequence variant in NOX1 highlight that human NOX1 is involved in regulating wound healing by altering epithelial cytoskeletal dynamics at the leading edge and directing cell migration.
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