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Automated Imaging and Analysis for the Quantification of Fluorescently Labeled Macropinosomes
Published on: August 24, 2021
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CARMIL1-AA selectively inhibits macropinocytosis while sparing autophagy
Rebecca M Lim1, Alexa Lu2, Brennan M Chuang1
1Department of Developmental and Cell Biology, Charlie Dunlop School of Biological Sciences, University of California, Irvine, CA 92617.
Molecular Biology of the Cell
|November 27, 2024
Summary
Cancer cells use macropinocytosis to grow and resist drugs. A new CARMIL1-AA mutant selectively inhibits macropinocytosis without impacting cell proliferation or autophagy.
Area of Science:
- Cell Biology
- Cancer Research
- Molecular Biology
Background:
- Macropinocytosis fuels tumor growth and drug resistance by enabling cancer cells to internalize extracellular macromolecules.
- Selective inhibition of macropinocytosis is crucial for understanding its precise role in cancer.
- The widely used inhibitor EIPA affects multiple Na+/H+ exchangers (NHE), leading to off-target effects on pH and proliferation.
Purpose of the Study:
- To develop a selective inhibitor of macropinocytosis.
- To evaluate the role of macropinocytosis in cancer progression independently of its inhibitors' side effects.
- To investigate the efficacy of CARMIL1-AA as a selective macropinocytosis inhibitor.
Main Methods:
- CRISPR-Cas9 gene editing to knock down CARMIL1.
- Expression of a CARMIL1-AA mutant to inhibit macropinocytosis.
- Assessing macropinocytosis, proliferation, RAC activation, and autophagy.
- Utilizing the inhibitor EIPA and NHE1 knockdown for comparison.
Main Results:
- EIPA inhibits proliferation more than macropinocytosis and triggers ATG8 conjugation (CASM).
- NHE1 loss did not block macropinocytosis and had off-target pH effects.
- CARMIL1-AA expression selectively inhibited macropinocytosis without affecting proliferation or autophagy.
- CARMIL1-AA demonstrated comparable inhibition to EIPA but without EIPA's side effects.
Conclusions:
- CARMIL1-AA is a selective inhibitor of macropinocytosis, offering a better tool than EIPA for studying cancer.
- Selective inhibition of macropinocytosis via CARMIL1-AA does not impede cell proliferation or autophagy.
- Targeting macropinocytosis with selective inhibitors like CARMIL1-AA is a promising strategy for cancer research.
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