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GFP-moesin illuminates actin cytoskeleton dynamics in living tissue and demonstrates cell shape changes during

K A Edwards1, M Demsky, R A Montague

  • 1Department of Cell Biology, Duke University Medical Center, Durham, North Carolina 27710, USA.

Developmental Biology
|November 14, 1997
PubMed

Insights

We developed GFP-moe, a fluorescent marker, to visualize actin cytoskeleton dynamics in live Drosophila. This tool aids in studying cell shape changes during development and tissue morphogenesis.

Area of Science:

  • Cell Biology
  • Developmental Biology
  • Biochemistry

Background:

  • Moesin, ezrin, and radixin (MER) proteins are crucial for actin cytoskeleton organization and membrane structures.
  • These proteins possess an actin-binding domain and self-association capabilities.
  • Understanding MER protein function is key to comprehending cell shape and morphogenesis.

Purpose of the Study:

  • To engineer a novel in vivo fluorescent probe, GFP-moe, for visualizing actin cytoskeleton dynamics.
  • To utilize GFP-moe for analyzing cell shape changes during Drosophila development and morphogenesis.
  • To establish GFP-moe as a reliable marker for dynamic cellular structures in live specimens.

Main Methods:

  • Constructed a fusion protein (GFP-moe) by combining green fluorescent protein (GFP) with the C-terminal domain of Drosophila moesin.
  • Generated transgenic flies expressing GFP-moe under the hsp70 promoter.
  • Analyzed GFP-moe localization and behavior in various tissues and developmental stages following heat shock induction.

Main Results:

  • GFP-moe successfully localized to the cortical actin cytoskeleton and enriched in membrane projections like pseudopods and microvilli.
  • The fusion protein served as an effective in vivo marker for cell shape and pattern during epithelial morphogenesis.
  • Observed dynamic actin-rich structures, including the polar cell proboscis and purse string during dorsal closure, in live specimens.

Conclusions:

  • GFP-moe is a valuable tool for studying dynamic cell behaviors and morphogenesis in live Drosophila.
  • The fusion protein facilitates real-time observation of actin cytoskeleton dynamics and cell shape changes.
  • GFP-moe enhances the study of developmental processes by providing a robust cellular marker.

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